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POWER RANGER NOTES ANATOMY OF FINFISH
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ANATOMY OF FINFISH
1. Anatomy of FinFish
1.1 External Anatomy of Finfish
Anatomically (Biologically) speaking a fish is composed of
ten systems of bodily organs that work together to make up
the whole individual. These ten systems cover the fish,
handle its food, carry away wastes, they integrate the life
processes of the fish and relate it to conditions in the
environment. They also provide for breathing and for
protections against injury. They support the body and
enable movement and finally they work to perpetuate fish
as species and through evaluation, as a major group of
animals.
The living species of fish are usually divided into three
classes: the Agnatha, the jawless fishes, comprising the
hagfishes and lampreys; the Chondrichthyes, the
cartilaginous-skeleton fishes, such as sharks and rays; and
the Osteichthyes, the bony-skeleton fishes, comprising all other living fishes. The skeletons of these three groups vary in
fundamental ways. In the hagfishes and lampreys the backbone is basically a notochord, a rod like structure composed of
unique notochordal tissue. In sharks and rays the notochord is surrounded and constructed by spaced rings of cartilage, the
vertebrae, to form a backbone.
1.2. External Anatomy of Fishes
1.2.1. Body forms
Commonly the fish body is Torpedo – shaped (fuci form) and often slightly to strongly avoid in cross section. In a perfectly
“stream lined” body form (if head pointed trunk broadened and gradually tapering towards the tail) the greatest cross
section is about 36% of the length back from the anterior tip and gently sweep back to the tailed.
However, all fishes do not have this typical body form. The shape of the body is variously modified depending on their
habitat and made of living. There changes in shape are Globe shapes (Globiform – pufters of family Tetraodontidae)
Serpentine (Snake like Angulli form – eels of family Anguillidae) Thread like in form (filiform – snipe eel Nemichthyidae).
Some are strongly flattend from side to life (compressed butterfly fishes, chactodentidae and flounders – pleuronectidae)
others flattened but greatly elongated trachipteriform – ribbon fishes, Trachipteridae) and till others flattoned form top to
bottom/ depressed the skates and rays (Rajidae).
In spite of the many variations the ground plan of body organization in fishes is bilaterally symmetry. The left and right
halves of the body are basically mirror images of one another. The tail is an integral part of the body rather than an
appendage only the fins are distinctly peripheral anatomical parts in most fishes.
1.2.2. Body Covering
Fish is generally covered by a tough skin. It is continuous with the lining of all the body of the entire body opening and is
transparent as it runs over the surface of the eye. Much of the diverse coloration of fishes is due to its colour cells and the
slimy coating is due to its mucus cells.
The skin in many fishes is devoid of scales, but in them it is armored by scales that develop in it. Scales range in size from
microscopic to large. In thickness from tissue thin to very thick (in ornamentation from simple to complex in extent of body
coverage from portal to complete). In structure from non-bony to bony loosely attached to very firmly attached. The types
of scales may characterize the major fish groups. Scale morphology and the number of scales rows along or around the
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body frequently serve as specific and genetic characters. Living Agnathaus are scale less, shark and their relatives have
dentinal placoid scales, Bony fishes have various types of bony scales.
1.3. Internal Anatomy of finfish
Internal anatomy of a bony fish: finned aquatic vertebrates animal with skin covered with scales. It lives in water
and is usually oviparous.
Brain: seat of the mental faculties of a fish.
Esophagus: part of the digestive tract connecting the
mouth to the stomach.
Dorsal aorta: vessel in the back that carries blood
from the heart to the organs.
Stomach: part of the digestive tract between the
esophagus and the intestine.
Air bladder: pocket in which urine collects.
Spinal cord: part of the nervous system that connects
the brain to all other parts of a fish.
Kidney: blood-purifying organ.
Urinary orifice: opening for eliminating urine.
Genital Orifice: opening related to the genital organs.
Anus: end of the digestive tract.
Gonad: hormone-secreting sexual gland of a fish.
Intestine: last part of the digestive tract.
Pyloric cecum: cul-de-sac related to the intestine.
Gall bladder: small sac containing the bile.
Liver: bile-producing digestive gland.
Heart: blood-pumping organ.
Gills: respiratory organ of a fish.
Tooth: hard organ of a fish used to shred food.
Eye: sight organ of a fish.
Olfactory bulb: bulging part of the smell organ of smell of a fish
1.4. Structure of fins
Appendages of fishes comprise of fins and cirrti (flaps of flesh) which attain extreme development in the
sargassum fish (pterophryne) and the leafy sea dragan (phyllopteryx). The fins are classified as median or paired.
Median fins (Unpaired fins)
Rayed fins in line with the median axis of a typical fish are these of the back (dorsal fin or fins) the tail (caudal
fin) and the lower edge of the body just behind the vent (Anil fin) Although most commonly all of the median
fins may be present, but some may be modified or absent in same fishes.
Also developed in the median axis may be a rayless fatty adipose fin (as in the trouts – Salmonidae) off fins
reduced to a few disconnected spines as in the stickle backs – Gasterosteidae) The anal fin may be modified into
an intermittent organ, the gonopodium for use in copulation (as in the live bearers – Poecilidae).
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Paired fins
Paired fins are the Pectorals and Peluics (ventral) the pectorals are
supported by the pectoral girdle that joins the skull. Although ordinarily
present in fishes, the pectorals are wanting in such kinds as the lamprey
(Petromyzonidae) and hag fishes (Myxinidae) They are greatly enlarged in
the (Soaring) flying fishes (Exocoetidae) and flying characins
(Gastropelecinae). In some cling fishes (Gobiesocidae) and Asiatic suckerbelly loaches (Gastromyzan) the
pectorals serve as a part of the ventral hold fast organ.
The pelvic fins vary substantially in position and in adoptive modification typically their support is by a pelvic
girdle anchored in the bully musculature.
In soft rayed fishes (Malacopterygians) the peluics are abdominal in position, Eg. Clupeoids, Salmonids,
cypriroids, but they also be situated arterially, just below the pectorals in a thoracic position (as in many spiny
rayed species, the Acanthopterygians) or even under the throat in a jugular position (as in blennies). The pelvic
are lacking in the lampreys and hag fishes and is lost in various other fishes, rlotably the cels (Angullidae etc) In
the sharks and some relatives they are modified into claspers. In cling fishes (Gobiorocidae) sucker belly loaches
(Gastromyzon) and certain other fishes, the pelvic from part of a hold fast organ that resembles a ruction cup on
the belly.
1.5. Skin and Scales
The skin of a fish consists of two layers. The outer layer is epidermis and the inner, the dermis or
corium. The epidermis is composed superficially of several layers of flattened, moist epithelial cells.
The deepest layers are a zone of active cell growth and multiplication. Here cell multiplication goes on
all the time to replace from with in the outermost layers of cells as it is worm off and provide for growth.
These epithelial cells from the epidermis are the first to close a surface wound.
The dermal layer of the skin contains blood vessels nerves and cutaneous sense organs and
connective tissue. The dermis plays the main role in the formation of sales and related integumantory
structure.
Scattered among the flattened cells of the epidermis are numerous openings of the tubular and flask
shaped mucous gland cells that extent into the dermis.
These cells secrete the slippery mucus that cover most fishes. The mucus lessons the drag an a fish
when it swims through water.
As in other vertebrates, the skin of a fish is the envelope for the body and is the first lines of defense
against disease. It also affords protection from, and adjustment to environmental factors that influence
life, for it contains sensory receptors tunes to the surroundings of a fish. Further more, the skin has
respiratory, excretory and osmoregulatory functions.
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1.6. Scalation
Outstanding among the special feature of the skin are the very prominent scales that most fishes have.
However some do not have scales. Examples include the lampreys (petromyzonidae) and a number of
cat fishes North America (F.W) (Ietaluridae). An intermediate structural category have seals only on a
few palces of the body for example: Paddle fish (polydon) three spines stickle bask Gasterosteus
aculeatus and mirror carp. Then there are a few fishes that have very small deeply imbedded scales
that they look scale less for example Fresh Water Eels (Anguilla) Brook trauts (Salvelius fontinalis) and
the barbot (lota) of Cod family (F.W) (Gadidae)
In arrangements scales are most often “imbricated” and thus overlap like roof tiles with free margin
directed towards the tail in a manner that minimize friction with water. In some fishes such as barbot
(lota) and F.W eels (Anguilla) the pattern is mosaic rather than overlapping one another, the scales are
minutely separated or meet their neighbors only at their margins
Scales shapes
Although they comprise only a few basic structural types, Scales exhibit many modifications that are
often characteristic of groups or species on the basis of shape one type is plate like (Placoid), with
each plate carrying a small cusp, as common among the sharks (Elasmobranchil) a Second type is
diamond shaped (rhombic) and found in gars (Lepirosteidae) and the bichirs (pdypterus). A third type
of scale is called Cycloid because it is typically smooth disc like and more or less circular mostly found
in soft rayed fishes. (Malacopterygi). In fourth type is ctenoid the posterior surface or margin is toothed
or comb like and a characteristic of spiny rayed bony fishes (Acunthopterygil)
However, some of the soft rayed fishes have ctenoid like contact organs on their scaes, examples
characins (characid) Killi fishes (cyprinodontidac). Some spiny rayed fishes have cepeloid scales
exclusively. For example the brooke silverside labidestus. Many spiny rayed species exhibit both
cycloid and ctenoid scales.
Example: Common basses (Micropterus).
Structural types
Structurally, there are two types of fish scales, placoid and Non-placoid. Non-placoid scales are
basically of the three kinds – cosmoid, Ganoid and Bony ridged scales.
I) Placoid scale
Placoid scales also called dermal denticles have an ectodermal cap or covering of enamel like
substances (as an human teeth) termed “Vitrodentine” beneath this is a thicker layer of entine with a
pulp cavity and dentinal tubules emanating form it. Each scale has a disc like basal plate in the dermis
with a cusp projecting outward from it though the epidermis. Placoid scales occur among the sharks
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and their relatives (chandrichthyes).
II) Non – Placoid scales
1) Cosmoid scales: The cosmoid scales have a thinner, harder outer layer than the placoid ones. It is
also termed as vitrodentine. The layer below this hard and non cellular and is called cosmine. The
layer beneath is vascularised mid layer of perforated bony substances called “Iropedine” The growth of
the scale is at the edge and beneath no ligivng cell layer covers the scale. The cosmoid scales found
in (latimeria).
2) Ganoid Scale: In ganoid scale the outer layer is a hard inorganic substances called ganoine which
is different from Vitrodentine. The layer below the ganoine is a cosmine like layer. The innermost layer
is a bony layer called isopedine. The growth takes place at the edge, beneath and on the surface.
Three types of scales are found in bichirs (pdypterus) and gars (Lepisosteidae).
3) Bony Ridges Scales: Bony –ridged scales are typically thin and transclucent lacking both dense
enameled and dentinal layers of the three other kinds. Bony ridged scales characterizes the many
living species of bony fishes (Osteichthyes) that have either cycloid or ctenoid scales. The outer layer
of there scales is marked with bony ridges alternate with depression. The inner part or plate of the
scale is made up of layers of criss – crossing fibrous connective tissues. The growth of the scales is
both on the outer surface and from beneath.
For ridges on the scale two terms are used ridges and circuli changes in the growth pattern of the
individuals fish is reflected in the character and distribution of ridges. “Breeding” and “Yearmarks” can
be identified on this basis in many species. In both cycloid and ctenoid scales, a nuclear central zone
can be recognized. This zone may be called as “focus” the scale. However this central position shifts
due to differential growth of fore or after part of the scale, shifting the focus to more posterior and
anterior margin. In many species grooves or radii radiate from or near focus towards one or more
margins of the scale. The ctenoid scales have teeth on its posterior margins.
2.Cell structure, tissue and body organization
2.1. Organization: kind of construction of the body
A cellular or protoplasmic level of organization: Body is not differentiated into cells. Example: Protozoa
(subkingdom: Protozoa); All other animals except Protozoa come under the subkingdom: Metazoa (Body is
composed of numerous cells)
Cellular level of organization: The cells of the body are more or less loose and Independent. Example: Amoeba
Tissue level of organization: In some animals, body cells form tissues. Example: Coelenterata and Ctenophora
Organ system level of organization: In most of the animals, tissues combine into organs, which, in turn,
combine to form organ systems. Example: Animals like Human being, Fish, Reptiles etc.,
Germ Layers:
The fundamental cell layers laid down in an early embryo of the Metazoa are called germ layers. The
Coelenterata have only two layers: Ectoderm and Endoderm. They are termed the diploblastic animals. Most
other Metazoa possess three germ layers: Ectoderm, Mesoderm and Endoderm. They are known as the
triploblastic animals. Example; Animals except Coelenterata
2.2. Symmetry
It refers to the similarity in size, shape and number of parts on the opposite sides of a median line. Parts of an animal
body are often so arranged that it is possible to cut it into two similar halves by one or more planes. Such animals are said
to be symmetrical. Some animals, like Amoeba and Snail, cannot be divided into equal parts by any plane. They are said to
be asymmetrical. The symmetrical animals show one of the three types of symmetry: spherical, radial and bilateral.
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Section – 1 Spherical (universal) symmetry:
Body is divisible into similar halves by any plane passing through the center. Example: Seaurchin
Section – 2 Radial symmetry:
Body is with a number of similar parts radiating out from a central axis. The boy can be split up into equal halves by any
plane passing through the middle from top to bottom. The animals with radial symmetry are called Radiata. Examples:
Sponges and most coelenterates.
In some animals, some parts of the body are single or paired rather than radial, so that only one or two planes through
the longitudinal axis divide the animal into similar halves. Such a symmetry is called biradial. Examples: Comb-jellies,
seanemones and seastars.
Section –3 Bilateral symmetry:
In rest of the Metazoa, chief organs of the body are paired and are arranged on the sides of a central axis connecting the
head with the tail. With the result, the body can be divided into two similar halves only by one plane. Such are termed as
bilateral. The bilaterally symmetrical animals are termed the bilateria.
A plane or section passing dorso-ventrally (vertically) through the middle of the anterior-posterior (longitudinal) axis is
known as the Sagittal plane or section. This is the plane that divides the bilateral animal into similar and right and left
halves.
A plane or section running antero-posteriorly at right angles to the sagittal plane is called the frontal plane or section. It
divides the body into dorsal and ventral halves.
A plane or section passing dorso-ventrally at right angles to the antero-posterior axis is known as transverse plane or
section. It divides the body into anterior and posterior halves.
Section – 4 Digestive tract:
The Mesozoa and parazoa lack a digestive tract. The Eumetazoa possess a digestive tract, and are termed the Enterozoa.
Certain enterozoa, viz., coelenterata,Ctenophora and Platyhelminthes, have incomplete digestive tract, which has a single
external opening, the mouth, that serves for intake of food as well as elimination of faeces. All other enterozoa have
complete digestive tract, which has two external openings, the mouth for intake of food and the anus for elimination of
faeces.
Section – 5 Coelom:
Some bilateria have no cavity in their body, except that in the digestive tract. Such forms are known as the acoelomates.
All others possess a cavity in addition to the one in the digestive tract. The space between the two cavities is called the
body cavity the nature and origin of this cavity varies in different groups. When lined by a mesodermal epithelium, the
peritoneum, it is known as the true coelom, and when unlined by peritoneum, it is termed false coelom or pseudocoel.
The animals with false and true coelom are respectively called the pseudocoelomates end eucoelomates. In Mollusca and
Arthropoda the coelom is greatly reduced, and the blood fills the spaces between the internal organs. Such a body-cavity
is called the haemocoel. The coelom is of great significance in animal evolution. It provides space for the development of
various organ systems.
Section – 6 Metamerism or Segmentation:
Segments occur in three phyla: Annelida, Arthropoda and Chordata. Each segment is called a metamere or somite.
Metamerism affects external and internal structures. It is said to be homonomous, if the somites are similar, as in
earthworm (annelida); and heteronomous, is the segments are dissimilar as in prawn (Arthropoda).The segmentation in
Chordates shows up clearly in the embryonic stage in te segmentally arranged mesodermal somites. In adult chordates
segmentation is largely internal and is seen in their vertebrae, ribs, nerves and blood vessels.
3. Oral region and Associated structures
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3.1. Adaptations for feeding
(The feeding habits or feeding behavior of fishes is the search for and ingesting of food) The diversity in feeding habits
that fishes exhibit is the result of evaluation leading to structural adaptation for getting food from the environments. The
structural adaptation of feeding organs such as 1) position and shape of the mouth 2) Presence or absence of “Teeth”. 3)
Gap of the mouth etc., greatly help in predicting the nature of food and mode of feeding of the fish (in question).
Section 1: Major feeding types :
On the basis, fishes can be classified, according to their feeding habits as 1) Predators 2) Grazers 3) Food strainers 4) Food
suckers and 5) Parasites.
1) Predators
Fishes that feed on macroscopic animals, they usually have well developed grasping and holding teeth as in many sharks
(Elasmobrabch) the Barracuds (Sphyraena), the pikes (Esox) gars (Lepisosteus).
2) Grazers
In Grazing, the food is taken by bites or continual browsing (Grazing characterize many fishes that feed on planktons or on
bottom organisms) (sometimes organisms are taken single or at other times in small groups) may feed on bottom or
column – a bluegill (Lepomis macrochirus), Parrot fishes (scaridae) Butterfly fishes (chaetodontidae) browsing on coral
reef.
3) Strainers (Filter feeders)
Filter the water for plankton, here foods are selected by size and not by kind. Herring clupidae, Gizard, shads (Dorosoma),
Paddle fish (polyodon) whale shark (Rhincodon) also have efficient food straining or filtering adaptation. The principal
adaptation for filter feeding or strainers is the developemt of numerous, closely – set and elongated gill rackers.
4) Suckers
The sucking into the mouth of food or food containing material is taken practiced by bottom feeding fishes such as the
sturgeons (Acipenseridae) and suckers (catostomidae)
5) Parasites
Parasitisum is perhaps the most unusual and highly evolved feeding habits among animals. They suck body fluid after
rasping a hole in the sides of the body. Parasitic lampreys (Petromyzonidae), Sea lamprays (Petromyzon marinus) Pacific
lampreys (Lamptra tridentata)
3.3. Oral adaptation for feeding
Lips
Suctorial feeders have an “inferior mouth” and fleshy modification of lips. Notable among these are the
sturgeons (Acipenseridac) and suckeres (catastomidae). The lips of strurgeons and suckers are mobile and
described as “Plicate” (having folds) or papillose (having small tufts of skin or papillose). Many sectorial feeders
also have well developed barbells bordering the mouth.
Sucker mouth : Moxostoma (Redhorse) suctorial lips of free – living fishes may also serve as holdfast organs in
fast flowing mountain streams. For example (Glyptorternum). In loach – like Gyriocheilid (Gyrinocheilus) has an
extreamly specialized suctorial adaptation, in addition to suctorial lips the opercular structure has separate
inhalent and exhalent device for respiration.
3.3.1. Modifications in the shape of mouth
Among the grazers and suctorial feeders, there exist not only specially developed lips but also adaptations of other mouth
parts. The Trumpet fishes (Aulostomidae) the cornet fishes (Fistularidae) and the pipe fishes (syngnanthidae) as well as
many butterfly fishes (chaetodontidae) of coral reefs, have mouths that resemble elongated beaks. This adaptation is
achieved by a protraction of the hyomandibular bone rather than by a lengthening of the lower jaw bones (denteries)
themselves.
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Among these fishes, the method of feeding may be by suction as in the case of trumpet fishes, cornet fishes and pipe
fishes or it may be a selective grazing action with sharp teeth when the long snout enables the butterfly fish to reach into
small crevices of the coral.
A peculiar structure among mouth modification has arisen in the half beaks (Hemiramphidae) where the lower jaw
projects into a beak often a third of the length of the fish itself, with the mouth opening above it. Half beaks are usually
surface feeding fishes.
3.3.2. Teeth
Outstanding among the obvious oral adaptation for feeding in fishes are the teeth. They are thought to have arisen from
scales covering the lips, as represented in living sharks (squliformies) where the placoid scales of the skin visibly grade
into teeth on the jaws.
In bony fishes (Osteichthyes) Teeth are of three kinds, based on where they are found Jaw, Mouth and Pharyngeal.
Jaw Teeth
Jaw teeth are variously those on the maxillary and premaxillary bones above and on the dentaries below.
In the roof of the oral cavity teeth are variously borne by the median vomer and by the palatine and ectopterygoid bones
on each side. In the floor of the mouth the tongue often has teeth on it. Pharyngeal teeth occur as pads on various gill
arch eolements in many species. In the carps (cyprinedae) and suckers (cjcatastromidae) the only teeth are those in deep
in the pharynx (gut, mouth and eoesophagous) that develoed modification of lower elements after last gill arch, in clarius
and labeo the teeth are modified for grasping, tearing, grinding and razor like cutting teeth have developed in predacious
fishes.
Kinds of jaw teeth
Based on their form major kinds of Jaw teeth are
1) Cardiform 2) Villiform 3) Canine 4) Incisor and 5) Molariform.
Cardiform Teeth
Cardiform teeth are numerous, shrotfine and pointed such dentition with variations is found in many fishes that have
multiple rowed teeth. For example American catfish (Ictaluridae) perches (percidae) and many sea bases (serranidae)
Villiform teeth
Villiform teeth are more or less elongated cardiform teeth. For example : Needlefishes (Belonidae) and Lion fishes as
(Pterois).
Canine teeth
Canines are dog tooth like or fange like (long pointed tooth) they are elongated and subconical, straight or curved and are
adapted for piercing and hodling for example walleyes (Alska pollock) (Stizostediosn). In certain fishes such as moreys
(muraenidae) the canines are hinged (the hook) yield ot backward pressure but lock when moved forward and adaptation
to retain living moving prey inside the mouth.
Incisors teeth
Incisors are sharp edged cutting teeth. In some fishes incisors fuse together in cutting beak as in parrot fishes (scaridae).
Molariform teeth
Molariform teeth are for crushing and grinding thus flat with prodruding denticles on the surface. These teeth are found
in bottom dwelling fishes like skates and rays and some sciaenidae (drums).
With in a single group the diversity of dentition on identical bones may vary largely. For example In carps and minnows
(cyprinidae) the pharyngeal teeth range from sharp in carnivores such as in semotilus to molariform in the common carp
(Cyprinus carpio).
In general teeth are absent in plankton feeders and in some of the more generalized omnivore. They are present in
increasing numbers of bones in more and more relative to its predatory behaviors. The premaxillary bones are toothed
when jaw bones have little or no teeth. This is true for many soft rayed species such as bowfin (Amia) the gars
(lepisosteus) the salmons and trouts (Salmonidae).
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The maxillae are typically toothed in those soft rayed fishes as that carry premaxillary teeth. However tooth less in
otherwise tooth – bearing spiny rayed fishes.
3.4. Gill Rakers
Besides protecting the tender gill filaments form abrasion (a rubbing off or scrap) by ingested materially that are
coarse in texture, gill rakers are specialization in relation to food and feeding habits. They are very stubby (short
and thick) and unornamented in most omnivores for example sunfish (Lepomis cynellus).
In many plankton feeders, the gill rakers are elongated, numerous are variously lamellate or ornamented to
increase efficiency of filtering. Simple but very numerous rakers are possessed by gizzard shads (Dorosoma) and
paddlefish (polyodon) Ornamentation of gill rackers are of taxonomic value. In pleuronectdae the gill rakers
resembles feather having a main axis with lateral processes these lateral processes are branched. The adjacent gill
rakers overlap to form a very fine sieve.
4. Gastro Intestinal Tract OR Digestive system and associated digestive glands
4.1. Gastro Intestinal Tract
Esophagus
Esophagus forms the beginning of the gastro intestinal tract/ In
general the oesophagus is no distensible that it can
accommodate anything the fish can get into the mouth and
sometimes even accommodate the item if it happens to double
on itself two or three times, on its way to the stomesh. The
ocsgtagus is a short and narrow to be in a no. of Herbivorus and
omnivorus fishes. (Cyprinus corpio, L.rohito,Tor tor etc. A
large no. of mucus – secreting cells are scattered in the mucosa
at taste buds are also present in some or species.
4.1.2. Stomach
Frequently in literature the fishes are classified as stomach or
stomach less fishes. 85% telecast have stomach 15% had no stomach.
The stomach too shows various adaptations one of which is shape. In carnivore the stomach typically is straight,
elongate for example in gars (lepisosteus), bowfins (Amia), Pikes (Esox) and barracudas (sphyraena).
In omnivorous species, the stomach is most often sac-shaped. A very special adaptation is the modification of the
stomach into a grinding organ as in the sturgeons (Acipenser) gizzard shads (Dorosoma) and mullets (Mugil).
Here the stomach is reduced in overall size but its wall greatly thickened and muscularized. The lining too is
heavily strengthened with connective tissue and the lumen is very small. The organ is not for storage, mixing and
primary digestion but rather a food grinder.
Great dispensability is the adaptation of the stomach in the predatory deep sea swallowers (saccopharyngidae)
and gulpers (Eurypharyngidae) enabling these fishes to take relatively huge prey.
A remarkable modification of the stomach exists in the puffers (Tetradontidae) which can inflate themselves with
water or air to assume often on almost globular shape. The adaptive value of this modification of the digestive
tract is probably mainly one of defense, for many puffers and porcupine fishes have spines all over the body
which can thus be created.
Not all fishes have a stomach that is a portion of digestive tube with a typically acid secretion and a distinctive
epithelial lining different from that of the intestine.
In most of the herbivores and phytoplankton feeders the epithelial tissue of the esophagus grades directly into
that of the intestine, thus termed stomach less. Though the primary criterian for being without stomach does not
seem to be whether a fish is an herbivore or a carnivore but whether accessory adaptations for trituration and fine
grinding of food exist either in the form of teeth or a grinding apparatus such as a gizzard. Where stomach exist
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most pronouncedly (strongly) in carnivores. They are characterized by a low pH and the prominent presence of
pepsin (enzyme) among other digestive juices.
4.1.3. Intestine
The intestine too has many variations. It is shortened in carnivores such as in the pike (Erox), perhaps because
meaty foods can be digested easily. Where as in herbivores the intestine is highly elongated and several times the
body length of the fish and in carps and certain catfishes. In sharks and other elasmobrachs the intestine has a
coiled layer of absorptive tissue called spiral valve which increase absorptive surfaces for the relatively in short
intestine.
4.1.4. Pyloric caeca
(Fishes are only vertebrates that have appendages (Caeca) at the gastro-intestinal junctions). On the intestine of most
bony fishes at the pyloric end of the stomach. There may be from one to many blind sacs or pylonic caeca or intestinal
caeca. A few groups such as cat fishes (Ictaluridae) topminnows (Cyprinidae) and pikes (Esocidae) lack these structures.
In such groups as flat fishes (Pleuronectiformies) the pyloric caeca are few usually not more than five (5). In others such as
Mackerels (Scombridae), Salmons (Salmonidae) the number of these caeca may range to 200 or more. Generally caeca of
different species vary considerably in size, state of branching and the connection with the gut. In sturgeons
(Acipenseridae) the many caeca forma large mass, but only a single duct leads to the intestine. In salmon, each caecum
communicates directly with the gut, the functions of pyloric caeca probably involve both digestion and absorption.
4.1.5. Rectum
Morphologically there is no distinction between the rectumad intestine, the ilio-rectal valve is present in sciana, tetradon
and muracnosox.
4.1.6. Anus
It is the posterior opening of the alimentary canal or digestive system. The internal surface of the region near the rectum
is covered with an epithelium rich mucous cells. The anus is made up of an inner circular and outer longitudinal muscle
layer. The circular muscle is thick developed forming sphincter. The region of anus facing the anterior has the epithelium
continues with the skin.
4.2.1. Associated digestive glands
Liver
Like other vertebrates, liver is an important organ in fishes which has both “secretary” and “storage” function. This is a
large gland in all fishes, but sharks and rays may have extremely large livers comprising about 20% of the body weight
especially in some pelagic sharks. The liver usually lies over or partially surrounds the stomach. It is typically bilobed, but
may have only one lobe as in salmon or three as in mackerel. In Hag fishes the liver is in two distinct parts, with separate
ducts leading to the gallbladder. Adult lamprey have no bile ducts or gall bladder, gall bladder is also absent in burbot
(lota) but in most other fishes the gall bladder is present and function to store liver secretions. Ordinarily one hepatic
ducts originates from each lobe of the liver and joins the cystic ducts from the gall bladder to form the “bile ducts”
Liver function includes bile secretion and glycogen storage in addition to several other biochemical processes. Apart from
their function fish liver also stores fats, vitamin “A” and “D” and the weary RBCs releasing hemoglobin for recycling into
the body liver also helps production of urea and other nitrogenous compounds.
4.2.2. Pancreas
Hag fishes have a small – pancreas with several ducts that empty into the bile duct. Lampreys have pancreatic tissue
located through out the liver and intertinal wall. Among bony fishes the pancreatic tissue is usually diffused in or around
the liver. This is especially true of spiny rayed fishes, in which the pancrease and liver incorporate in a “hapatapancrease”,
in many of soft rayed bony fishes Pancreas is a distinct organ, in sharks and rays also the pancrease is a compact organ
with two lobes. The pancreatic duct may reach the small intestine separately from the bile duct as in the sharks or may
POWER RANGER NOTES ANATOMY OF FINFISH
11
discharge into the bile duct as in the gar (lepisosteus). The pancreas secrets several enzymes, that are active in digestion.
In addition the pancreatic islets have the endocrine function of producing insulin.
4.2.3: Spleen
The spleen is usually recognized as a dark red structure lying on or behind the stomach to which it attaches by a band like
ligament. Although it is associated with the digestive organs it has no digestive function, but rather is instrumental in
blood cell formation (The function of red blood cell distraction is ascribed to spleen of higher bony fishes). In lampreys
and Hag fishes, which do not have a compact spleen, spleen like tissue is diffused along the intestine.
4.2.4. Gas bladder
The Gas bladder is a thin walled sac typically found in the upper part of the body cavity immediately below the kidney. In
many fishes the shape is simple, usually some what torpedo shaped, but there are many variations, minnows and carps
(cyprinidae) have anterior and posterior chambers, connected by an opening controlled by a splinter. Feather backs
(Notopteridae) have air bladder divided laterally, but two chambers communicate anteriority most croackers (scieanidae)
have unusual air bladders in that variously shaped sacs or branching caeca may be arranged along each side of the organ.
In Herrings (chupeidae) the gas bladder has a posterior opening to the exterior near the anus.
In the embryology of bony fishes the gas bladder originates as an outgrowth of the alimentary canal and remains
attached to the esophagus or stomach via the pneumatic ducts such fishes are known as physostomes. Some groups of
fishes lose the connection to the alimentary tract. These fishes are known as physoclistous. Some of such fishes may
retain the connection till larval or juvenile stages.
Some bottom-dwelling stream fishes such as darter (Etheostoma) and Sculpin (cottus) lack the gas bladder. Various other
bathy pelagic fishes have also lost gas bladder. Agnathus and cartilaginous fishes also lack gas bladder.
5. Circulatory System
5.1. Introduction
Fishes are cold-blooded aquatic vertebrates and can be found in both saline and fresh water. The circulatory system of
fishes is responsible for transporting blood and nutrients throughout the body. It has a closed circulatory system, i.e.
blood travels across the body through the network of blood vessels. Unlike humans, fishes exhibit single cycle circulation,
where the oxygen deprived blood comes to the heart, from where it is pumped to the gills and then circulated to the
entire body. On the other hand, in mammals, the deoxygenated blood enters the heart, from where it is pumped into the
lungs for oxygenation. Then, the oxygenated blood returns to the heart from the lungs, to be transported throughout the
body.
5.1.1. Circulatory System of a Fish
The circulatory system of fish is quite simple. Like mammals, the circulatory system of fish consists of a heart, blood and
blood vessels. The heart of a fish is a simple muscular structure that is located between the posterior gill arches. It is
enclosed by the pericardial membrane or pericardium. In most of the fishes, the heart consists of an atrium, a ventricle, a
sac-like thin walled structure known as sinus venosus and a tube, known as bulbus arteriosus. Inspite of containing four
parts, the heart of a fish is considered two-chambered.
The blood contains plasma (the fluid portion of blood) and the blood cells. The red blood cells or the erythrocytes contain
hemoglobin, a protein that facilitates the transport of oxygen to the entire body, while the white blood cells are an
indispensable part of the immune system. The thrombocytes perform the functions that is equivalent to the role
executed by the platelets in the human body, i.e. they help in blood clotting. Blood is circulated throughout the body with
the help of blood vessels. The blood vessels are of two types, arteries and veins. The arteries are responsible for carrying
oxygenated blood from the heart to the rest of the body, while the veins return deoxygenated blood from the different
parts of the body to the heart.
POWER RANGER NOTES ANATOMY OF FINFISH
12
5.1.2. Heart
The heart is modified blood vessel exhibiting the three layers characteristic of arteries an inner lining (endocardium) of
endothelium and elastic tissue on muscular layer (myocardium) that is very thick, especially in the ventricular region and
an outer fibrous tunic (epicardium) on the surface of which is the visceral pericardium. The heart pulsates as a result of
the response of the muscle cells to the electrolytes (Blood electrolytes) that infuse it. The rhythmicity of the pulsations is
regulated by flexly by the autonomic nervous system except in hag fishes, in which no nerve fibers supply the muscle. The
heart occupies the pericardial cavity (a sub division of the coelom anterior to the septum transversem). The heart of all
vertebrates is built in accordance with a basic architectural pattern. It is demonstrated in its simplest form in hag fishes
where its exhibits a series of four chambers sinus venous, atrium, ventricle and conus arterious through which flood flow
in that sequences.
Chondrychthyes has contractile, muscular and valved base the conus arteriosus to the ventral aorta where it leaves the
ventricle. In higher bony fishes the plan is like that of the shark and its relatives, but the first section of the ventral aorta is
typically thin-walled and valved bulbus arteriosus and not contractile but elastic, alternately enlarging and shrinking in
response to changes in blood pressure from alternate ventricular contraction, systole (contraction) and dia stole
(relaxation)
The ventral aorta in a fish is median in position, beneath the gills from its branch the afferent bronchial arteries to each
gill pouch or arch. With in the gills, afferent bronchial break down into capillaries and collect again in to efferent vessel
that form the dorsal aorta main vessel for distribution of blood to the body.
5.2.2. Arterial System in Elasmobranchs
Afferent branchial arteries
The ventral aorta arises form the conus arteriosus and veins forwards along the ventral surface of the pharynx right upto
the posterior border of the hyoid arch where it bifurcates into two branches each branch divide into first and second
afferent branchial arteries. The first afferent branchial artery runs along the posterior border of the first branchial arch
and supplied arterial branches to anterior and posterior gill lamellac of the first branchial arch of the third, fourth and
fifth afferent branchial arteries arise form the ventral aorta almost equidistant from one another and runs along the outer
border of the second third and fourth branchial arches. This supply the blood to the 3rd 4th and 5th gill arches
POWER RANGER NOTES ANATOMY OF FINFISH
13
respectively.
Efferent branchial arteries
The blood from the capillaries of gill lamellac is collected by a serious of blood vessel called the efferent branchial
arteries. There are nine efferent branchial vessels on each side (may be less depending upon species) of these the first
eight join in pairs to form four complete toops around the 1st four gill clefts. The 9th runs along the anterior border of the
fifth gill cleft.
The four loop and 5th efferent branchial arteries are joined by short longitudinal connectives running across the inter
branchial septa. The efferent branchial subsequently join to form the medium dorsal aorta.
Arteries of the head
The first efferent branchial and a small part from the dorsal aorta supply blood to the head. The first efferent branchial
vessel gives rise to three branches the external carotid afferent spiracular and hyoidean.
The afferent spiracular runs forward and gives rise to ophthalmic artery. This artery moves forward joins with external
carotid to form cerebral artery.
-
5.2.3. Dorsal aorta and its branches
The dorsal aorta runs backwards along the whole length of the body lying beneath the vertebral column. In the tail region
it continues with in the haemal canal as caudal artery. Anteriorly it gives off several small branches to the roof of buccal
cavity. The following arteries that arise from dorsal aorta, the celiac supplies blood to stomach and liver, the anterior
mesenteric supplies the pancreas the intestine and the rectum the posterior mesenteres to the gonad. The parietal to the
body wall the renel to the kidney (and the femoral to the griddle region).
5.2.4. Arterial system in Bony fishes
Heart is similar to that of shark. But there is no “conus arteriosis” . However, the base of the ventral aorta is enlarged to
form a non-contractile “bulbus arteriosis”.
Arterial system
The ventral aorta is comparatively shorter. It gives off 4 pairs of afferent brachial arteries through which venous blood is
supplied to the gills ( 4 pairs) for purification. The blood from the gills is collected by 4 pairs of “efferent branchial
arteries” In the bony fishes each gill arch has a single efferent artery unlike the condition in shark. The four efferent
branchial arteries unite to form the lateral aorta on each side. The two lateral aorta are joined together both anteriorly
and posteriorly forming a ring shaped vessel known as the “circular cephalicus”. In the anterior end, the external and
internal carotids arise on each side form the circular cephalicus posteriorly the two laterial aorta fuse together to produce
the dorsal aorta which supplies all the organs of the abdomen and ends in the tail.
5.2.5. Venous system
The blood distributed to the different parts of the body by the arteries and their braches through capillaries and
returned to the heart by the veins. The veins differ in structure from the arteries in possessing thin walls and in
forming wide irregular spaces called sinuses (during then curve)
The Venus system can be devided into the following systems.
 Anterior cardinal system.
 Posterior cardinal system
 Hepatic portal system
 Ventral sinus
 Cutaneous system.
Anterior cardinal system: the anterior cardinal system consists of the following viens, the internal juglar veins
it has the alfactory sinus, orbital sinus, post orbital sinus and anterior cardinal sinus. The orbital sinus finally
opens into large anterior cardinal sinus. It opens into ductus cuaveri.
The posterior cardinal system: This system consists of medium caudal vein two renal veins and two large
posterior cardinal sinuses. The renal portal vein gives of branches to kidney recollect into renal veins to form the
posterior cardinal sinuses.
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14
Hepatic portal system: This system has the hepatic portal vein anterior and posterior intestinal veins, gastric
vein and the anterior and posterior gastric. These subsequently form hepatic sinuses which open into sinus
venosus.
Ventral veins: The ventral vein comprises two groups. 1) the anterior veins which discharges the blood into
ductus curvier through the inferior jugular sinuses and the posterior veins which empty their blood through the
subclavians.
Cutaneous systems: The cutaneous system includes a dorsal, a ventral and two paired lateral veins. The ventral
joins the abdominal veins. The laterals empties into the branchial vein.
6. Respiratory system in fishes
6.1.1. Gills
Gaseous Respiration in Fish
Just like you and me fish need a constant supply oxygen in the form of O2 in
order to run their metabolism. Without oxygen they can't turn their food into
energy or make any new fish body. All the free oxygen on this planet on this
planet, was, or is being, released into the air by plants, the atmosphere at the
moment is about 21% O2. However oxygen will dissolve in water, in a
similar sort of way that the bubbles in your Coca Cola are dissolved into the
liquid, which is mostly water, that makes up the drink.
Fish could of course breathe air like Seals and Whales, and some do, but if
they wish to stay safe under the water for longer periods of time it would be
much easier if they could get the oxygen they need from the water, and this is exactly what they do. In fact they
were doing this long before any vertebrate animals learned how
to breath the air.
So fish live in the water and they breathe the water, to do this
they have special organs called gills. Gills are wonderfully well
designed, and they have to be because although the water does
hold some oxygen it never holds any where near as much as the
air, and to make things more difficult the amount of oxygen a
body of water can hold decreases the warmer it becomes, and
also, salt water holds less oxygen than fresh water. If the air
above a body of water is 21% O2, this means that 210 parts per
thousand are O2, but if we do the math for one of the figures
below, such as cold salt water we see that it contains only 7.58
parts per thousand O2. What this means to the fish is that their
gills need to be a lot more efficient at extracting O2 from the
water than our lungs need to be at extracting it from the air.
Fish solve the problems of extracting the O2 they need from the water they live in in a variety of ways. Firstly
they have different life styles, obviously a fish that spends most of its life resting on the bottom of the ocean
waiting for its dinner to swim by needs less O2 than a fish which actively chases smaller fish for its dinner.
However most of the problem is solved in the design of the gills.
A fish's gills are situated one set on either side of the body and near the back of the head They are open to the
gullet at the front, and open to the external environment behind. They are designed so that water can flow
continually passed them, coming in through the mouth, and/or the spiracle in sharks and their allies, and passing
out through the single external gill opening in fish or through one of the 5 to 7 gill clefts in sharks and rays. In
fish there is a bony plate protecting the gills, this is called the operculum, and it is hinged and has muscles
attached to it so it can be regularly opened and closed.
This ability to have water continually passing over the gills is one of the major factors making gills more
efficient than lungs. With lungs the air comes in, fills the space, and then has to be expelled before any more O2
POWER RANGER NOTES ANATOMY OF FINFISH
15
rich air can be brought in. With gills there is no time wasted getting rid of the old air/water and no energy wasted
reversing the direction of the flow.
In sharks and rays the number of gills is usually 5, but there are some species with 6 or 7 sets, in fish the number
of gills is 4 on either side of the body. Each gill is supported by a gill arch and protected by gill rakers. Each gill
arch supports one set of paired gill filaments. The gill rakers help make sure that no extraneous material gets into
the gill filaments to clog them up. Each paired gill filament in turn supports numerous lamellae (sing. lamella),
extending out from both sides of the filament body. It's here in the lamellae that the uptake of O2 actually occurs.
The lamellae are very fine structures, however there exact dimensions depend on the normal activity levels of the
fish in question. The more active the fish the thinner they are and the less distance there is between them. Also
the absolute thickness of the individual lamellae walls varies, this is important in considering to facility with
which O2can diffuse from the water to the fish's blood, the thinner the membrane the more quickly. and easily the
O2 can pass across it.
Thus in sluggish fish like
the American Brown
Bullhead (Amerius
nebulosus) the lamellae
are 25 µ thick, 45 µ apart
and the lamellae walls are
10 µ thick giving you 14
lamellae per mm, whereas
in a highly active fish such
as the Atlantic Herring
(Clupea harengus) the
lamellae are 7µ thick, 20
µ apart and the lamellae walls are >1µ in width, giving you 32 lamellae per mm.
The presence of all these lamellae greatly increases the surface area of the gills, meaning that a large amount of
water is available for gaseous exchange at any particular moment of time. In active fish, such as the Atlantic
Mackerel (Scomber scombrus), which has nearly the same gill dimensions as the Atlantic Herring, there may be
as much as 1,000 square mm of lamellae surface for every gram of body weight. Such a fish weighing 1 kg will
have approximately 1 square metre of gill surface area. Having such a large amount of gill area obviously helps
the fish in its battle to extract enough O2 from the water it lives in.
6.2.1. Structure of gills
6.2.2. Gill slits
There are six or seven pairs of gills in cartilaginous fishes while four pairs in bony fishes due to the loss of spiracle. Gill slits
of bony fishes are covered by operculum while operculum is absent in cartilaginous fishes. In sharks gill slits are situated
while in rays they are ventrally placed. A pair of spiracle is present in Elasmobranchii anterior to first gill which
POWER RANGER NOTES ANATOMY OF FINFISH
16
corresponds to a vestigial primitive first gill slit. Although spiracle is absent in bony fishes, in Actinopterygii it is replaced
by a pseudobranch which is free in some fishes but skin covered in others.
6.2.3. Pseudobranch
In carp and rainbow trout the pseudobranch is embedded in submucosal connective tissue of pharyngeal wall and shows
a glandular appearance due to complete conglutination of branchial filaments. In some species, a pseudobranch with
hemibranchs structure is located inside the operculum. However, in eel the pseudobranch is not present. it is also absent
in cat fishes (Siluroidae) and featherback (Notopteridae).
In glandular pseudobranch, abundant distribution of blood capillaries is found in the parenchyma enclosed by connective
tissue. It contains acidophilic cells in mitochondria and endoplasmic reticulum and is rich in enzyme carbonic anhydrase.
The pseudobranch regulates the flow of the arterial blood to the ophthalmic artery to increase the amount of blood
carbon dioxide. In rainbow trout extirpation of pseudobranch indused melanophore expansion and body colour change,
suggesting the secretion of a melanophore-aggregating hormone frome tissue. It also helps in metabolic gas exchange of
retina and filling of gas bladder. Because of its direct vascular connection with choroid gland on the eyeball, the
pseudobranch has been implicated in the regulation of intercellular pressure. The structure of gills has been studied
extensively in Indian fishes by light, transmission and scanning electron microscopy. The gill comprises gill rakers, gill
filaments (primary gill lamellae) and lamellae (Secondary gill lamellae).
A complete gill is known as holobranch. It consists of a bony or cartilaginous arch. The anterior and posterior part of each
gill arch possesses plate like gill filaments. Each holobranch consists of an anterior (oral) and a posterior (aboral)
hemibrnch. The architectural plan of teleostean gills shows hetergenity in their functional unit which is due to varied
osmoregulatory, feeding and respiratory behaviour and to the physcochemical status of their environment.
In teleost fishes, five pairs of branchial arches are present of which first four bear gill lamellae but the fifth is devoid of gill
lamellae and transformed into the pharyngeal bone for mastication of food. It does not play any role in respiration. The
gill arch is an important unit and bears primary (gill filament) and secondary lamellae. The branchial arch typically consists
of paired pharyngobranchials, epibranchials, ceratobranchials, hypobranchials and a median unpaired basibranchial. The
epibranchial and the ceratobranchial elements of each branchial arch bears two rows of gill filaments of the two
hemibranchs of the holobranch., which are the seat gaseous exchange. It encloses afferent and efferent branchialarteries
and veins. It is also provided by nerves. The branches of 9th (glossopharyngeal) cranial nerve innervate the first gill, while
II, III and IV arches are supplied by the branches of vages (10th cranial nerve). It also contains abductor and abductor
muscles. Inside it containes gill rakers, taste buds, mucous gland cells and sensory papillae.
6.2.4. Gill raker
It occurs in two rows on the inner margin of each gill arch. Each gill arch is short stumpy structure supported by bony
elements (fig3, a & b). The gill arch projects across the pharyngeal opening. They are modified in relation to food and
feeding habits. The mucous cells of the epithelium help to remove sediments from the covering epithelium in order to
enable the taste buds to function effectively and to sense the chemical nature of food passing through the gill sieve.
6.2.5. Gill Filaments (Primary gill lamellae)
Each hemibranch consists of both primary and secondary lamellae. The primary gill filaments remain separated from the
branchial septum at their distal end making two hemibranch in opposition which direct the water flow between the gill
filaments. Amongst duel breathers the heterogeneity in the gill system is more pronounced particularly in the swamp eel,
Monopterus, Amphipnous cuchia and climbing perch, Anabas testudineus. In Monopterus gill filaments are stumpy and
are present only in second pair of gill and lack gill lamellae. According to Munshi and Singh (1968,a) and Mnshi et
al,(1990), the remaining three pairs are without functional lamellae. It is the modification for another way of exchange of
gases.
The gill filaments are blad-like structures supported by gill rays. The heads of the gill rays of both the hemibranchs are
connected by ligaments (Yadav et al. 1993). They provided with two types of adductor muscle units in teleosts. The gill
filaments are also lined by epithelium referred to as primary epithelium. The epithelium has glandular and non glandular
part.
POWER RANGER NOTES ANATOMY OF FINFISH
17
6.2.6. Lamellae (secondary lamellae)
The each gill filaments is made up of secondary lamellae which are actual seat of exchange of gases. They are generally
semicircular and lined up along both sides of the gill filaments. The lamellae frequency is directly proportional to the
dimension and resistance of the gill sieve. The secondary lamellae are having two sheets of epithelium which are
separated by space and through these spaces blood circulates. The epithelial sheets are separated by a series of pillar
cells. Each cell consists of a central body and is provided with extension at each end.
6.3.1.Functions of Air bladder or Gas bladder
As a Hydrostatic organ: It is important function of air bladder is hydrostatic. This is because of the fact that the bony fish
can fill up or empties the bladder at will. This help them to maintain their body density closely to that of the surrounding
environment thus the air bladder actually act as “float” in the body cavity. When the
gas content in the bladder is increased, the fish becomes lighter and it rises to higher
levels and conversely when diminished the fish sinks deeper in water.
As a respiratory organ: fishes which have to live in draught condition or foul water,
the bladder sometimes acts as a subsidiary or accessory respiratory organ. In some
deep water marine fishes the air bladder acts as a store house of oxygen. In some gill
breather also store or in their air bladder for emergency purpose.
As a sound, producing organ: A large number of fish species uses the air bladder for
sound production. By producing characteristics sound, the fish probably communicates
with the apart sex. Sound is also produced when fish “apprehends any danger”.
As a sensory organ: It is viewed that the wall of the air bladder is highly sensitive to
water pressure as well as temperature fluctuations. Thus air bladder acts as a
barometer or monometer or a Hydrophone.
7. Nervous system in fishes
7.1. Introduction
As in all vertebrates, the nervous system of fishes is the primary mechanism coordinating body activities, as well as
integrating these activities in the appropriate manner with stimuli from the environment.
The central nervous system, the brain, and spinal cord, are the primary integrating mechanisms. The peripheral nervous
system, consisting of nerves that connect the brain and spinal cord to various body organs, carries sensory information
from special receptor organs such as the eyes, internal ears, nares (sense of smell), taste glands, and others to the
integrating centres of the brain and spinal cord. The peripheral nervous system also carries information via different
nerve cells from the integrating centres of the brain and spinal cord. This coded information is carried to the various
organs and body systems, such as the skeletal muscular system, for appropriate action in response to the original external
or internal stimulus. Another branch of the nervous system, the autonomic system, helps to coordinate the activities of
many glands and organs and is itself closely connected to the integrating centres of the brain.
The nervous system consists of Brain, Spinal Cord and the nervous to co-ordinate various activities (Peripheral nerves and
Autonomic nervous) of the body. Fish brain is an enlarged anterior end of the spinal cord. It is divided into several
anatomical and functional parts, all closely interconnected but each serving as the primary centre of integrating particular
kinds of responses and activities. Several of these centres or parts are primarily associated with one type of sensory
perception such as sight, hearing, or smell (olfaction). Its parts progress linearly from a “forebrain” region (enlarged
cerebral hemisphere and the connecting tween brain), through the “Midbrain” with its swellings (the optic lobes) to the
“hind brain” (cerebellum and medulla) and continue toward the caudal fin with the spinal card (In embryonic) the
forebrain is called “Prosencephalon” the mid brain “mesencephalon” and hind brain – Rhombencephalon, the brain and
spinal cord are whitish and soft. (The brain is housed in cranium of the skull). The spinal cord runs length wise of the fish
in neural canal of the vertebral column. The cerebral hemisphere (forebrain) and cerebellum are more prominent in
sharks and relatives (Chondrichthyes) and bony fishes (Osteichthyes) than in the lampreys and hag fishes (Cyclostomes).
The “mid brain” prominent in the cyclostomes is also prominent in the Chondrichthyens. However, that of the higher
bony fishes (Actinopterygi) is often very large. The cavities of the brain are continuous with that of the spinal cord.
Being highly complex life forms fish need a brain and a nervous system to control their body's actions. The nervous
system of fish, much like ours, is composed of a central co-ordinating brain, a spinal cord and many, many nerves.
POWER RANGER NOTES ANATOMY OF FINFISH
18
7.1.1. The Brain
Generally speaking fish have small brains in relationship to their overall body weight. Elasmobranchs (Sharks and Rays) in
general have a slightly larger brain for the same body mass as Teleosts (Bony Fish), however there is great variety within
the teleosts scientists have learned something quite surprising about the Elephantnose Fish (Gnathonemus petersii).
The brains of cyclostomes (Hagfish and Lampreys) are simple but specifically evolved to suit their lifestyles. For instance
the optic lobe is well developed in the visually oriented Lampreys but indiscernible in the blind Hagfish. In both however
the medulla is large and the cerebellum small. Together the cerebellum and the medulla make up the hind brain.
The medulla controls the operations of the inner organs such as heart rate, blood pressure, digestion and waste disposal.
It is also a relay centre for many nerves sending messages to and from the mid and or forebrain.
The cerebellum controls motor co-ordination (but it does not initiate motor activities). This means it controls the timing
and interaction of muscles once a muscular action has been initiated. The cerebellum is also important in maintaining
equilibrium.
The mid-brain of a fish consists mostly of the optic lobes, which vary greatly in size between species in accordance with
their dependance on sight, and in some species the optic lobes may be so large they completely cover the forebrain. In
fish the mid-brain is important in sorting out incoming information and it is also the main centre of learning (whereas in
mammals it is the forebrain that is the main centre of learning).
The forebrain of fish is dominated by the olfactory lobes which extend forwards and may be placed at the end of stalks.
These olfactory lobes are large in the cyclostomes and very large in the elasmobranchs reflecting the importance of smell
to these to groups of fish. The teleosts, for whom sight is often the most important sense have smaller olfactory lobes.
In many elasmobranchs and some teleosts there exists a cerebrum or pair of cerebral hemispheres These also seem to be
predominantly involved with the sense of smell (in mammals the cerebrum is much larger and involved in planning and
learning). The pituitary also arises out of the forebrain, it plays and important role in the regulation of metabolism.
A fish's brain never completely fills the cranium, the cavity in the skull where it lies protected. The remaining space is
filled up with a gelatinous material. Finally as in all vertebrates the brain, plus the gel, are surrounded by a membrane
that helps keep foreign matter and micro-organisms from contacting this most important organ.
The forebrain in fishes denoted to the reception elaboration and conduction of smell impulses. The mid brain consists of
the optictectum and all vision senses are received here. This optic tedium is great functional importance in the central
nervous system (CNS) and has several layers of nerve cells.
Hind brain controls the swimming equilibrium, maintenance of muscular tomes and orientation in space in the anterior
most regions. The brain divisions have developed as the sensory integrations. It is the centre to which lead the sensory
nerves except those of smell (I) and sight (II)
7.2. Nerves
Apart from the brain and the spinal cord the fish body is supplied with a vast network of nerves, the electric wires of the
body along which messages travel. Nerves are built of of numerous neurons and neurons are a one-way system,
messages either travel to or from the brain or the spinal cord along a particular neuronal path, but never both ways.
Those nerves that arise from the spinal cord are called spinal nerves and those which arise from the brain are called
cranial nerves.
Normally there is one pair of spinal nerves (left and right) for each vertebrae, thus long thin fish with many vertebrae such
as eels will have many more pairs of spinal nerves than a much shorter fish such as a gobi. In fish there are 10 pairs of
cranial nerves all with well defined roles.
7.2.1. Peripheral nervous system
There are two kind of nerves, spinal and cranial nerves. The former take their origin from the spinal cord and are
metamerically arranged, that is to lay, their number is same as that of the vertebrae.
Spinal Cord:
The spinal cord, or nerve cord is similar in all fish. It is a thick sheath of nervous material that runs from the base of the
brain back along the fish's body through, and protected by, the neural canal of the spinal column. Normally it extends the
full length of the fish's body, but a notable exception to this is the giant Sunfish (Mola mola) wherein the spinal cord is
actually shorter than the brain. It serves as the basis of many simple responses and as the major link to the brain for
POWER RANGER NOTES ANATOMY OF FINFISH
19
sensory input and brain-mediated responses.
Cranial nerves
The cranial nerves arise from the brain and Ten (10) pairs of them are typically present in a teleost (twelve in higher
vertebrates).
They are as follows:
1) Olfactory 2) Optic 3) Oculomotor 4) Trochlear 5) Trigeminal 6) Abducens 7) Facial 8) Acoustic or Auditory 9)
Glorrophoryngeal 10) Vagus.
Olfactory nerve: It is purely sensory one connecting nasal organ with olfactory lobe. It is a special sensory nerves
conveying smell impulses to the brain.
Optic nerve: Likewise sensory and supplies to the eyes. In bony fishes, the two crosses each other below the brain
immediately after leaving the optic lobes. The nerve from the left lobe joins to the right eye and vice versa. It supplies the
visual impulses.
Oculomotor nerve: Arises from the lower surface of the brain and innervates four of the six striated muscles of the eye
ball.
Trochlear nerve: Arises form the dorsolateral side of the brain between the optic lobes and the cerebellum and supplies
the superior oblique muscle of the eye ball.
Trigeminal nerve: Arises from the lateral side of the medulla oblongata and supplies the snout and upper and lower jaws.
It is a mixed nerve and is divided into three important branches – the ophthalmic, maxillary and mandibullar.
Abducens nerve: Arise from the ventral side of the medulla oblongata, a little behind the trigeminal nerve. It also enters
the orbit and supplies the posterior rectus muscle that moves the eye ball.
The Facial nerve: has independent origin from the side of medulla oblongata behind the trigeminal, but soon joins the
later to form the trigemino – facial complex which divides into three branches, the supra–orbital, infra orbital and
hyomandibular.
The Auditory nerve or acoustic nerve: Arises form the side of the medulla oblongata behind the facial and supplies
nerves to the “inner ear”.
The Glassopharyngeal nerve: Arises from the ventro – lateral aspect of the medulla oblongata behind the auditory and
enters the first gill slit. It is a mixed nerve and supplies a part of the lateral line system, taste buds in the pharynx and the
muscles of the first gill slit.
The Vagus: The vagus nerve arises behind the glasso-pharyngeal and has an extensive distribution. It divides into branchia
– visceral trunk and a lateralis branch. The branchio visceral trunk divides into three branchiolis nerves and a visceralis
branch. Each branchial branch gives off a slender branch to supply the muscles of the gills. The visceralis branch supplies
various organs of the viscera. The lateralies is a stout nerve that runs up to the end of the tail along the lateral line canal
and innervates it by a several branches.
8. Urino-Genital System
8.1. Introduction
The fish, like most animals, begins life as an egg and as in other invertebrates, the single cell egg can not develop unless it
is fertilized by a sperm produced by a male. Fish sperm is most commonly referred to as milt.
Eggs may be fertilized either externally or internally. External fertilization takes place when the egg is penetrated by the
sperm after the egg leaves the female’s body. Most fish are reproduced by this system. Internal fertilization occurs when
the male introduces the sperm into the female’s body, where it makes contact with and fertilizes the egg. Some sharks
are ovoviviparous; that is, the egg is fertilized internally and held within the female without attachment to her until it is
ready to be extruded alive. In other species, such as some of the sharks and the sculpin, and the skate, the egg is
penetrated by the sperm inside the female’s body, but it does not hatch until some time after being released from the
female. Reproduction and associated activities in fish are generally referred to as spawning. The spawning season, or
POWER RANGER NOTES ANATOMY OF FINFISH
20
breeding period, is that time when the eggs of the female and the milt, or sperm, of the male are ripe. This period may
last only a few days or it may extend into weeks and even months. Fish that live in tropical waters of fairly constant
temperature may spawn year round.
8.2. Reproduction
The reproduction in fishes is bisexual, hermaphrodite or parthenogenic the most predominate process is bisexual
reproduction. In such fishes the sexes are separate. Eg :- The individuals are dioecious. In few fishes both sexes are
present in same individuals i.e., such fishes are hermaphrodite. Eg. Perca, Stizortadian, Micropterus. In some fishes,
juvenile hermaphroditism has been noticed. In Poecillia fermosa parthenogenesis occurs, actually the correct process is
gynogenesis i.e., the development of young without fertilization.
Members belonging to class Pisces show a variety of sexuality from synchronous hermaphroditism, protogynous and
protandrous hermaphroditism (consecutive hermophroditism) to gonochorism (Dioecious).
Types of Reproduction:
Synchronus hermaphroditism :
In synchronus hemophroditism, both testis and ovary mature at the same time with a possibility of self fertilization. Eg.
Scrranus subligirus
Family – Serranidae, Cyprinadontidae, Maenidae, Labridae, Ipoopidae etc.
Consecutive hermaphroditism:
In Consecutive hermaphroditism the fish may be first a female with functional ovaries and consequently a functional
male, such hermaphroditism is called “Protogynous hermaphroditism” and when the fish first a functional male and then
a functional female such hermaphroditism is term “Protandrous hermaphroditism”.
Protandrous - Gonostamatidae, Sparidae, Labridae.
Protogynous – Synbranchidae, Serranidae, Maenidae.
Gonochorism (Dioecious):
Gonochorism means when both the sexes, male and female are two separate functional individuals (unisexual the male
and female reproductive organs born on different individuals).
8.3.Sexual differences
The characteristics of sexual differences or sexual dimorphism that unable identification of the sexes is classified as
primary and secondary. Primary sexual characters are those that are concerned actually with the reproductive processes.
Testis and their ducts in the male and ovaries and their duct in the female constitute primary sexual characters.
The secondary sexual characters themselves are really of two kinds those which have no primary relationship with the
reproductive act at all, and those which are definitely accessory to reproduction. A genital papilla is present in the male
fishes of lampreys (Petromyzonidae) darters (Etheostoma nigrum) white bass (Morone chrysops).
“Tubercles” appear on various areas of the body surface in many males during sexual maturity. For example, smelts
(Ormerus), some minnows (Cyprinidae). The “fins often” provide characteristic distinctive of males: on an average they
are larger than in female. In some fishes, the “caudal fin” may show sexual dimorphism, for example the lower lobe as
greatly extended in the males of the sword tail (Xiphopherus helleri) and somewhat enlarged in white sucker (Catastomus
commersoni).
Obviously “colouration” in fishes often serves as a mark of sexual
distinction and recognition; it is termed sexual dichromatism. In
general, the males are brighter or more intense in colour than the
females. For example, in orange spotted sunfish (Lepomis humilis)
Bowfin (Amia calva), the male has a darker eye spot on the tail
region. Other example are Wrasses (Labridae)and parrot fishes
(Scaridae). Several different head characteristics also serve to
distinguish the sexes among fishes for example, In Salmons and
Trouts (Salmonidae) the breeding makes typically develop a knobby
hook or kype near the tips of both the upper and lower jaw.
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21
An accessory sexual characters marks the males of several species in which the anal fin becomes enlarged into an
“intermittent copulatory organ”. This organ designated as the “gonopodium”, occurs in such fishes as the mosquito fish
(Gambusia affinis) the guppy (Lebistes) and other males of live bearing top minnows (Poecilidae).
Pelvis fins are variously modified in the sharks and their relatives (Elasmobranchi) as intermittent structures, the
“myxopterygia” (Claspers) that help to ensure internal fertilization, which is widespread in this group of fishes. A few
accessory reproductive structures among females serve as sexual
characteristics. An outstanding example is the egg laying tube or
ovipositor in the female of the European betterlings – Rhodeus amarus.
8.4. Reproductive system
Gonads
The gonads of fishes are usually elongated structures suspended by
mesentries from the dorsal aspect of the abdominal cavity. Their
relationship to the kidney and their ducts differs widely among groups.
8.4.1. Lampreys
The gonads are single, suspended from the midline and reach most of the
length of the body cavity. Though no sperm ducts or oviducts are present
at spawning but both the eggs and sperm are shed into the body cavity from which they exit through paired abdominal
pores to the urogenital sinus. A prominent urogenital papilla is developed in mature specimen.
8.4.2. Hag fishes
As in lampreys, a single elongate gonad is present in both sexes; the testis is irregular and lobate, without a sperm duct
and sperm released into the body cavity. Unlike the lampreys, hag fishes produce large eggs with tough shells. There is no
oviduct. Both eggs and sperm reach the exterior through an abdominal pore just behind the anus. In hag fishes the
gonads are suspended by a mesentery from the gut.
8.4.3. Sharks
The testes are paired and usually placed anteriorly in the body cavity suspended dorsally by means of a
“mesorchium”. Often right testis is larger than the left, sperm discharges into a central canal network that
communicates with the anterior part of the kidney through efferent ducts tranversing the mesorchium.
The front part of the kidney is modified into a glandular “epididimis” where the archinephric ducts receives the
efferent ductles and runs down posteriorly. Just behind the testis the kidney is modified into “Leydig gland” in
which the tubules secrete a “seminal fluid” into the archinephric duct.
As the archinephric ducts runs down along the kidney as the vas deferens, it enlarges into a seminal vesicle from
which a sperm sac opens dorsally. The vesicles and sperm sacs open into the urinogenital sinus, which in turn
empties into the cloaca. From the cloaca sperm enter the grooves of the claspers, through which they can be
transferred to the female.
Ovaries are paired, but the left one may be greatly reduced in size in some species. Like the testes, they are
placed well anteriorly in the body cavity; each is suspended by a mesovarium. The oviducts open anteriorly to
the ovaries and usually have a common mouth or funnel. Eggs are released into the coelom, proceed into this
funnel and then traveled down the oviduct to the region of the shellgland (Nidamental gland) where fertilization
POWER RANGER NOTES ANATOMY OF FINFISH
22
occurs and a horney shell or membrane as secreted. In oviparous species, the shell is tough and protects the
developing embryo. In viviparous species, the shell is slight or vestigial and the young develop in the posterior,
uterine portion of the oviducts.
8.4.4. Bony Fishes
In most of the bony fishes testis are whittish, lobulate organs, lying along the gas bladder, although in some groups such
as Salmonids, the organs are smooth and entire without lobules. In most of the forms, there is no connection at all
between the reproductive openings to the exterior for the two systems with the urinary pore posterior to the genital
pore.
In some the sperm ducts connects with the urinary system in a urogenital sinus located at the posterior end of the body
cavity. Ovaries of bony fishes are typically saccular and continue with the oviduct.
Interesting exceptions to this system involves the more primitive forms viz., Acipenser, Polydon and Amia all shed eggs
from the incompletely covered ovaries into the body cavity. Eggs are caught by a coelomic funnel opening partially from
the back of the ovary and conveyed through the oviduct.
Other exceptions are seen in the Smelts, Salmonids, Eels and few others, none of which have saccular (A hallow or bag or
a pouch and a flexible structure in the body). Ovaries continue with oviducts. Smelts have coelomic oviduct with funnels
opening behind the ovaries. Salmonids show incompletely enclosed ovaries and extrude eggs though a very short funnel
leading to a pore just anterior to the urinary pore. Eels have no funnels; the eggs simply pass out through a pore. The
ovaries of fishes are usually well separated, but fusion of the right and left organs can be seen in some Percoids (fishes of
the family Parciformes). In large mouth bars, the ovaries join posteriorly to produce a “V” shaped structure. Ovaries of the
yellow perch, Perca flavaseens are so completely fused so as to give the appearance of a single organ. This ovary is fused
to the body wall just posterior to the anus and eggs are extruded when this area ruptures, so those oviducts are not
functional. The rupture of the body wall heals soon after oviposition.
8.5. Excretory system
The primary excretory organ in fishes, as in other vertebrates, is the kidney. In fishes some excretion also takes place in
the digestive tract, skin, and especially the gills (where ammonia is given off). Compared with land vertebrates, fishes
have a special problem in maintaining their internal environment at a constant concentration of water and dissolved
substances, such as salts. Proper balance of the internal environment (homeostasis) of a fish is in a great part maintained
by the excretory system, especially the kidney.
The kidney, gills, and skin play an important role in maintaining a fish's internal environment and checking the effects of
osmosis. Marine fishes live in an environment in which the water around them has a greater concentration of salts than
they can have inside their body and still maintain life. Freshwater fishes, on the other hand, live in water with a much
lower concentration of salts than they require inside their bodies.
Osmosis tends to promote the loss of water from the body of a marine fish and absorption of water by that of a
freshwater fish. Mucus in the skin tends to slow the process but is not a sufficient barrier to prevent the movement of
fluids through the permeable skin. When solutions on two sides of a permeable membrane have different concentrations
of dissolved substances, water will pass through the membrane into the more concentrated solution, while the dissolved
chemicals move into the area of lower concentration (diffusion).
The kidney of freshwater fishes is often larger in relation to body weight than that of marine fishes. In both groups the
POWER RANGER NOTES ANATOMY OF FINFISH
23
kidney excretes wastes from the body, but that of freshwater fishes also excretes large amounts of water, counteracting
the water absorbed through the skin. Freshwater fishes tend to lose salt to the environment and must replace it. They get
some salt from their food, but the gills and skin inside the mouth actively absorb salt from water passed through the
mouth. This absorption is performed by special cells capable (like those of the kidney) of moving salts against the
diffusion gradient. Freshwater fishes drink very little water and take in little water in their food.
Marine fishes must conserve water, therefore their kidneys excrete little water. To maintain their water balance marine
fishes drink large quantities of seawater, retaining most of the water and excreting the salt. By reabsorption of needed
water in the kidney tubules, they discharge a more concentrated urine than do freshwater fishes. Most nitrogenous waste
in marine fishes appears to be secreted by the gills as ammonia. Some marine fishes, at least, can excrete salt by clusters
of special cells in the gills and intestine.
There are several teleosts-for example, the salmon-that travel between fresh water and seawater and must adjust to the
reversal of osmotic gradients. They adjust their physiological processes by spending time (often surprisingly little time) in
the intermediate brackish environment.
Marine lampreys, hagfishes, sharks, and rays have osmotic concentrations in their blood about equal to that of seawater
so do not have to drink water nor perform much physiological work to maintain their osmotic balance. In sharks and rays
the osmotic concentration is kept high by retention of urea in the blood. Freshwater sharks have a lowered concentration
of urea in the blood.
8.5.1. Structure of Kidney
“Kidney is the organ through which most of the metabolic wastes are excreted”. The kidneys of fishes are
reddish brown, soft elongated paired structures lying ventrally to the vertebral column. Though paired, the two
kidneys show multiple shapes in different fishes due to fusion at various positions. Ventrally the kidneys are
covered by coelomic epithelium. The teleostean kidney may be divided into a “head kidney” and a “trunk
kidney” but this differentiation sometimes is not possible by external observations. Anatomically fish kidney is
of two types – Pronephric and Mesonephric. In fishes with kidney distinguishable to a head and trunk kidney
show the pronephric part in the head region (generally non functional in terms of excretion and mesonephric part
in the trunk region. Generally there are no conspicuous differences in shape between the two sexes. “Ogawa”
(1961a) has classified the marine teleostean kidney into five (5) configurational classes.
 Type I: The two sides of the kidney are completely fused throughout. No clear distinction between trunk
and head kidney. Ex. Clupeidae (Herrings).
 Type 2: The middle and posterior portions only are fused. Clear distinction between head and trunk
kidney. Ex. Plotosidae (Marine catfishes), Angulidae (Eels).
 Type 3: Posterior portion only is fused, anterior portion represented by two slender branches, clear
distinction between head and trunk kidney. Most marine fishes have this type of kidney. Ex. Bellonidae,
Mugilidae, Scombridae, Carringidae and Pleuronectidae.
 Type 4: Extreme posterior portion only is fused and head kidney is not recognizable. Ex. Syngnathidae
(Pike fishes).
 Types 5 : The two kidneys are completely separate. Eg: Lophidae (Angler fishes)
Ogawa has observed that all the freshwater teleost species that he examined can be grouped into the first 3 or the
5 groups described above. Examples are as follows.
Type 1 – Salmonidae – Salmons and trouts.
Type 2 – Cyprinidae – Carps and minnows
Type 3 – Cyprinodontidae (Killi fishes), Gastrostidae and Cottidae.
Generally the anterior part of the kidney (Head kidney) is pronephric and possesses lymphoid, haematopoitic
internal and chromofin tissue. The nephron is generally absent in this region but when present it is devoid of
renal corpusele and glomerulis. In most fishes the pronephrons is traditional and it is taken over by the
mesonephros in the later period of the life (Adult stage). In other words the head kidney in majority of fishes is
not functional and in some other it is functional only in the early stage of the individual (life). Some teleosts,
however, show the extension of posterior kidney (trunk kidney) towards the anterior kidney. In this part of the
kidney typical nephrons are present with glomerulli, renal corpuscle, renal tubule and collecting ducts. The
variable amount of haematopoitic and pigment cells are distributed among the tubules and vascular spaces in the
POWER RANGER NOTES ANATOMY OF FINFISH
24
trunkate region. The two archineptric ducts are always fused. This fusion may occur at the posterior end of the
kidney or at some point between the kidney and the urinary papilla. Dilation of the orchinephric duct may found
a bladder like enlargement (Urinary bladder) in many bony fishes.
9. Endocrine system
9.1. Introduction
The vertebrate endocrine system is present in it essence already in Lampreys and Hag fishes,further similarities
with higher vertebrates appear in both the shark and bony fishes. Fishes possess a well developed endocrine
system comparable to that of other vertebrate .The recent demonstration of tissue with parathyroid like function
(Rasquin and Rosenbloom 1954) has filled a gap formerly thought to exist in the list of fish endocrine organs.
Major contributions in the fish endocrine have also been made in studies of physiology of migration
(Fontain,1954,Oliverean 1954)and reproduction (Bretsch-neider,Wit 1947,Docid 1955,Hoar,1957). Important
Endocrine Glands in Fishes.
Following are important endocrine glands found in fishes
 Pituitary gland.
 Thyroid gland.
 Chromaffin tissue (Supra renal body, medullary tissue represent the adrenal).
 Interrenal tissue (Adrenocortical tissue).
 Gonads.
 Ultimobranchial tissue.
 Intestinal mucosa.
Following are main tissue with possible endocrine function:
 Carpuscles of stanius.
 Pineal organ.
 Thymus
 Urohypophysis
 Pseudobranches.
9.2. Pituitary gland
The arrangement and organizations of the component parts of pituitary gland varies greatly in different
species.Olivereace,1954,has recently discussed the terminology and the homologus of the different area.the
pituitary gland or the hypophysis develops from two parts as follows:
 Neurohypophysis derived from the brain.
 Adenohypophysis which develops as an ectodermal up-growth the roof of the buccal cavity (Rathke’s
pouch).
The Hypophysis of the ventral side of the brain just behind the optic chaisma and is attached to the infundibulam
by means of stalk.In some fishes the stalk is absent and the gland is pressed closely against the floor of the brain.
Adenohyphophysis
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The adenohypophysis is divided into pars distallis and pars intermedia. Of these the parsis further divided into
rostral pars distalis (Pro-adenohypophysis)and posterior distalis (meso adenohyphophysis).the pars intermedia
corresponds to the meta adenohypophysis of the older
terminology.
Neurohypophysis
The region consists of a large number of nerve fibres that
arises from cells bodies in the hypothalamus and enter
the hyphophysis,where they branch repeatedly and
ramify in the pairs intermedia.
Pituitary in Elasmobranch
The neurohypophysis of this group is diffused and
intermingled with the pars intermedia.the two parts are
often been collectively referred to as neurointermediate
lobe.Neurosecretory axons are arose from the paraoptic
nuclei and lateral hypothalamus terminate in the
neurohypophysis but,these are absent from the anterior
infaundibulam floor.a few such fibres termed the saccus vasculosus are folded and highly vascularised structure
laying posterior to the neurohypophysis. The pars distalis lies below the infandibulam and is divisible in the
procentral and rostral zone.the ventral lobe is a peculiar feature of the Elasmobranches adenohypophysis and
varies greatly in size and shape among different species.
9.2.1. Pituitary in teleosts
In teleosts the adenohypophysis consists of a pars intermedia and an intermediate lobe which is sometimes
divisible topographically into a rostral and procentral region.This region of pars destalis appears to contain cell
and the cell types characteristic of the mammalian anterior lobe .some workers have homologues the rostral pars
distalis with the tetradopods pars tuberalis,but it is not certain that this is true. the neurohypophysis of teleost as
in Elasmobranch is diffused and interdigites with the cells of pars intermedia and to a lesser extentwith the cells
of pars distalis.Neurosecretory fibrous axons from the paraoptic nucleus and the lateral tubular nucleus terminate
in all parts of neurohypophysis but their secretions have also been found in both regions of pars distalis. The
Saccus vasculosus is well developed in many teleosts but it does not appear to be supplied by neurosecretory
tract.
9.2.2. Thyroid gland
In elasmobranchs,thyroid is an eucapsulated organ usually located near the point where the afferent branchial arteries
leave the ventral aorta. the thyroid is typically an unpaired organ lying below the pharynx. In teleosts the thyroid follicles
are scatterd along the ventral aorta.thyroid follicles are often found in the head kidneys of the platy fish
(platypolcitus).tyhe number increasing with the age.in a few teleosts such as ‘Bermuda’ Parrot fish, the follicles are
arranged to form a compact unpaired gland.
9.2.3. Chromaffin tissue
Adrenal tissue are present in all vertebrates from cyclostomata to mammals but profound differences are encounted in
the arrangement of the functional components i.e.,steroid producing cells and catecholamine producing cells.in
Elasmobranches the stereo genetic tissue is composed into several well form bodies lying between the caudal ends are
kidneys.these are interregnal glands.paired aggregation of chromaffin pairs are present between kidneys.the two
components of the adrenal are typically separated through small cells of chromaffin cells and have been described in the
interregnal gland of the ray.Great variation is found among actinopterygian fishes(teleost) with respect to the
condensation and dispersion of adrenal tissue.these are generally located within or just anterior to the cephalic kidney
and occur around the post cordinal veins and their branches.
9.2.4. Interrenal tissue
‘Baecker’-1928 and ‘Dettus’-1940 have described the interregnal tissue of many fishes.Abion-1940 has made an
extensive review of the literature.In Elasmobranchs interregnal is located posteriorly in one or more compact
POWER RANGER NOTES ANATOMY OF FINFISH
26
masses between the opisthonephric and is discreate enough to permit surgical removal.In teleosts the interregnal
gland is located historically.here it is confined to the cranial regions of the head kidney.
Inter-renal tissue (a)
9.2.5. Gonads
In fishes, the maturation and possibly also the elaboration of gametes requires the presence of sex harmones in
addition to secondary sex characteristics such as coloration,breeding tubercells and the maturation of
gonopodium depends upon the pressure of endocrine substances from the sex glands.
Testis
Testis is made up of lobular units.in teleost lobular unit may be short and long tubules and internally divided
space with their apex at the center of the organ and their broader ends
directed towards the periphery.In most of fishes however the com-plex
network of elongated and intergreatly divided lobules, and
lobularspaces are bound together forming a compact organ. Septum
and covering contain much elastic but no muscle.the lobules open into
a spermatic duct which may be long and tortuous with a lining of
secretory epitheliumor may be straight and simple.
Interstitial tissue and serotoli cells.Seasonal variation and the amount
of interstitial and connective tissue cells of gonads have been
described in details.in this species the development of interstitial tissue
probably the source of testicular androgen considers with the
appearance of secondary sexual characters and complex breeding
behavior. Sertoli cells have been described in both Elasmobranch and
teleost and show cyclical changes in relation to spermatogenesis.this is
noted sperms are often discharged at the stage.
Ovary
The ovary is made up of numerous ovarian follicles embedded in connective tissue.the arrangement of ovarian
follicles within the supporting tissue varies greatly in different groups.The ovary in most teleost fishes is a
hollow sac-like organ into which extend numerous ovigerous folds lined by germinal epithelium. The germ cells,
the endodermally derived oogonia, multiply mitotically and get transformed into nonyolky primary oocytes
whose, nuclei are arrested at the prophase of the first meiotic division until maturation. These processes can take
place even in the absence of the pituitary (Barr, 1968; Hoar, 1969). Primary oocytes, covered generally by two
layers of follicle cells, an outer thecal layer and an inner granulosa layer, undergo vitellogenesis when yolk is
deposited in the. ooplasm. During maturation, the first polar body is given cut and the second meiotic division is
arrested at metaphase. The eggs are spawned by the fish at this stage and the second polar body is released only
after fertilization. In some fishes, ovulation and- spawning occur almost at the same time, whereas in ethers
POWER RANGER NOTES ANATOMY OF FINFISH
27
(rainbow trout and milkfish) ovulated oocytes are retained
in the ovarian or peritoneal cavity and spawning takes place
much, later.
9.2.6. Islets of Langerhans
Islets of Langerhans, also called islands of Langerhans, irregularly
shaped patches of endocrine tissue located within the pancreas
of most vertebrates. The islets consist of four distinct cell types,
of which three (alpha, beta, and delta cells) produce important
hormones; the fourth component (C cells) has no known
function.Within the pancreas of higher forms of sharks,islets of
Langerhans develop from the tubules of the otherwise called
digestive gland.islets tissue in the actinopterygian fishes tend to be concentrated.There is usually one islet or sometimes
two large islets in the region of the bile duct.in agnathan fishes pancreatic islets have been observed in the lamprey but
not in the Hag fish.The endocrine pancreas is present in most fish as islet of Langerhans and is associated with the
exocrine pancreas. In some species the islets are very large and may be grossly visible (Brockman bodies). During the
spawning season the size and number of islet will increase in some fish.
9.2.7. Thymus
In the actinopterygian fishes a rather massive thymus is observed in the medial wall of the branchial cavity.this
thymns apparently arises from contributions of several of the branchial pouches.the thymus of Latimeria is a
comparable to that of the actinopterygian but is lobular.in the cyclostomes all of the gill pouches give rise to
thymus tissue dorsally.the anterior pouches also have ventral anlagen. In the adult only the dorsal parts remain.
9.2.8. Ultimobranchial Body
An ultimobranchial body is said to be present in the sharks,holocephalans, and some ray-finned fishes.in some of the
teleosts,there is flat discoidal mass lying in the connective tissue between the floor of the oesophagous and the sinus
venosus. This organ secretes calcitonin (lowers serum calcium levels) that acts with hypocalcin (secreted by the
corpuscles of Stannius) to regulate calcium metabolism.
9.2.9. Intestinal mucosa
The intestinal mucosa being producing harmones which join with nervous controls to regulate the pancreatic
secretions.the intestinal harmones are secretin and pancreozymin.secretin produces flow of the enzyme carrying liquids
from the pancreas and pancreozymin enhances flow of the zymogens.both harmones are found in the anterior portion of
the small intestine and other tissue with possible endocrine function.
9.2.10. Corpuscles of Stannius
The Corpuscles of Stannius, which occur in the kidney of many actinopterygian fishes, have often been viewed as
potentially endocrine. these arise as many (40 or) more)diverticulate from the nephric ducts in the anterior part of the
opisthonephros (segments 9 to 12) of Amia and Lepisosteus or, in teleosts, as a few or even a single pair of diverticulae in
the posterior region of the kidney.These are islands of eosinophilic granular cells located in paired organs on the ventral
surface of the kidney. This organ secretes a protein called hypocalcin (teleocalcin) that acts with calcitonin to regulate
calcium metabolism. The parathyroid glands are absent in the sharks and in the actinopterygian fishes; their function is
taken over by other endocrine organs (Corpuscles of Stannius).
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9.2.11. Pineal Gland
The pineal organ,outgrowth from the roof of the brain,is recognized as a photoreceptor in fishes (it is vestigial in the hag
fish), but its glandular structure suggests endocrine
activity.removal of the pineal organ of the guppy (Lebistes) is
followed by reduced growth rate,skeletal abnormalities,are
marked stimulation of both pituitary and thyroid glands.The
pineal gland is a light sensitive neuroendocrine structure that
lies in the anterior brain and is a well-vascularized organ. This
gland secretes melatonin that may play a role in controlling
reproduction, growth, and migration.
10. Skeletal system
10.1. Introduction
The skeletal system of vertebrates is composed of bone and/or cartilage. Bone tissue is found only in the Subphylum
Vertebrata. Some of the lower vertebrates do not possess bone, but all the higher vertebrates do. As such, bone is often
thought of as being typical of vertebrates. In vertebrates, bone functions as a supporting tissue, a calcium reserve and as
a hemopoietic (blood forming) tissue.
The skeleton is the basis of form and support of the vertebrate body. Muscles attach to the skeleton and vital organs are
surrounded and protected by skeletal elements. As you examine the skeletons of the perch and the rat you should note a
number of basic changes that have occurred in the evolution of the vertebrate skeleton. Some of the changes involve a
reduction in the number of bones in the skull and a reduction in the number of ribs. Correlated with the move from an
aquatic to a terrestrial environment are the increase in the complexity of the limbs and limb joints, the development of
the pectoral and pelvic girdles and the strengthening of individual bones to support the weight of the organism on land.
The central structure of support in the lower vertebrates, the notochord, is progressively replaced functionally by
elements of the vertebrae. Although the notochord runs the length of the vertebral column in fish, in many it has been
greatly restricted by the vertebrae. In adult tetrapods, the only remnant of the notochord is the gelatinous material found
in the intervertebral discs between successive vertebrae of the vertebral column.
In the study of the skeletal system in the perch and a more advanced vertebrate, the rat, you should try to determine
which skeletal features are signs of typical evolutionary advancement and which may be specializations due to the
animal’s way of life.
The skeleton of vertebrates is broadly divided into two parts: the axial skeleton consisting of the skull, vertebrae and
ribs; and the appendicular skeleton consisting of the pectoral and pelvic girdles and the bones of the appendages.
10.2.1. The Axial Skeleton
Skull
The skull of the perch is actually a double structure consisting of two “boxes” of bone, one enclosed by the other. The
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outer skull is an armour of dermal bone. Primitive
extinct bony fish had dermal bony armour covering
most of their bodies. In the modern fish, the outer
skull is virtually all that remains of this armour. Dermal
bone forms, as its name implies, in the dermis of the
skin and is not proceeded by a cartilage structure. The
inner skull is composed of endochondral bone.
Endochondral bone develops under the dermis and
replaces existing cartilaginous structures. Hence the
name “endochondral” denotes the bony tissue
develops “within” existing cartilage structures.
Elements of the inner skull form the cranium or brain
case.
The perch skull consists of many small bones. You are
not responsible for knowing the identity of these
bones, but look closely at the skull to see the inner
endochondral skull encased by the outer dermal skull.
10.2.2. Vertebral Column
A series of endochondral bones called vertebrae form the vertebral column. Vertebrae have several common features.
The large spool-shaped central portion of each is the centrum. Extending through the middle of each centrum is a canal
for the passage of the notochord. As mentioned
previously, many fish retain a notochord throughout
life.
Above the centrum, an arch of bone surrounds and
protects the spinal cord. A dorsal projection, the neural
spine, extends outward from the vertebral column.The
fish vertebral column is divided into two subdivisions:
the trunk and the tail (caudal).
Although fish do not have a neck, the first two trunk
vertebrae are modified. These vertebrae lack ribs. The
rest of the trunk vertebrae possess ribs. Caudal (tail)
vertebrae possess a ventral portion which forms a hemal arch which surrounds blood vessels.
10.3. Appendicular Skeleton and Fins
Using the preserved perch and the skeleton, locate the following structures:
Median Fins
The dorsal fins of the perch have fin rays for support. The anterior dorsal fin has ossified fin rays which provide
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stiff support, while the fin rays of the posterior dorsal fin are not ossified and are flexible. Only the first two fin
rays of the anal fin are ossified. The caudal fin is composed entirely of soft, unossified fin rays.
Pectoral Girdle and Fins
The pectoral fins are attached to a bony girdle, the pectoral girdle. The pectoral girdle is composed of a number
of fused elements. The girdle is also fused to the skull (the head and trunk of the perch move as a unit). The fins
are supported by soft fin rays.
Pelvic Girdle and Fins
The pelvic fins are attached to the pelvic girdle, which is composed of two bony pelvic plates. The plates may be
fused along the midline. The pelvic girdle is not attached to the vertebral column nor to the pectoral girdle, but is
free-floating (embedded in muscle only). Only the medial fin rays are bony, the rest are the typical soft
unossified type.
11. Sensory System in fishes
11.1. Introduction
A fish’s eyes are adapted or modified for underwater vision, but they are not very different from human eyes.
Fish do not have true eyelids. Human eyelids prevent the eyes from becoming dry and also protect against dirt. A
fish’s eyes are always covered by water; therefore, they require no lids.
The metallic-looking ring, called the iris, encircling the dark center, or lens, of the fish’s eye cannot move as it
does in the human eye. The human iris can expand or contract, depending upon light conditions. Because light
never attains great intensity underwater, a fish needs no such adaptation. The big difference between a human
eye and the eye of a fish occurs in the lens. In humans it is fairly flat or disc like; in fish, it is spherical or
globular. Human eyes are capable of changing the curvature of the lens to focus at varying distances—flatter for
long-range focusing and more curved for shorter range. Although the eye of a fish has a rigid lens and its
curvature is incapable of change, it can be moved toward or away from the retina (like the focusing action of a
camera).
Fish can distinguish colors. There are indications that some kinds of fish prefer one color to another and also that
water conditions may make one color more easily distinguished than others.
Many kinds of fish have excellent vision at close range. Fish that live in the dusky or dimly lit regions of the sea
commonly have eyes that are comparatively larger than the eyes of any other animal with backbones. Fish that
live in the perpetual darkness of caves or other subterranean waters usually have no eyes, but those inhabiting the
deep sea, far below the depth to which light rays can penetrate, may or may not have eyes. The reason that most
deep-sea fish have well-developed eyes is the prevalence of bioluminescence. Deep-sea squid, shrimp, and other
creatures, as well as fish, are equipped with light-producing organs. The light they produce is used to recognize
enemies or to capture prey.
Many fish with poor vision have well-developed senses of smell, taste, and touch. Improbable as it may seem, a
fish does possess nostrils. Four nostrils are located close to the top of the snout, one pair on each side. Each pair
opens into a small blind sac immediately below the skin. Water, carrying odors, passes through the sacs, which
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are lined with the receptors of smell. Some fish, including sharks, possess an extremely acute sense of smell.
Fish have taste organs located in the skin of their snouts, lips, mouths, and throats. A fish’s tongue, unlike the
human tongue, is flat, rigid, and cartilaginous and moves only when the base below it moves; nevertheless, it
does possess taste buds that indicate to the fish whether to accept or to reject anything taken into its mouth. There
is a close relationship between the senses of smell and taste in fish, just as in humans. Many types of fish are first
drawn to food by its odor.
Although fish obviously do not possess outer ears as humans do, they are still capable of hearing. A fish
possesses only an inner ear, found in the bones of the skull. In many fish, these ear bones are connected to their
air bladders. Vibrations are transmitted to the ear from the air bladder, which acts as a sounding board.
The lateral-line system, a series of sensory cells usually running the length of both sides of the fish’s body,
performs an important function in receiving low-frequency vibrations. Actually, it resembles a “hearing organ”
of greater sensitivity than human ears. The typical lateral line is a mucus-filled tube or canal under the skin; it has
contact with the outside world through pores in the skin or through scales along the line or in-between them. A
nerve situatedmat intervals alongside the canal sends out branches to it. In some cases, the lateral line extends
over the fish’s tail, and in many fish it continues onto their heads and spreads into several branches along the
outer bones of their skulls, where it is not outwardly visible. The fish utilizes its lateral line to determine the
direction of currents of water and the presence of nearby objects, as well as to sense vibrations. The lateral line
helps the fish to determine water temperature and to find its way when traveling at night or through murky
waters. It also assists schooling fish in keeping together and may help a fish to escape enemies.
Many fish are noisy creatures. They make rasping, squeaking, grunting, and squealing noises. Some fish produce
sounds by rubbing together special extensions of the bones of their vertebrae. Others make noises by vibrating
muscles that are connected to their air bladders, which amplify the sounds. Still other fish grind their teeth, their
mouth cavities serving as sound boxes to amplify the noises. Many fish make sounds when they are caught.
Grunts and croakers got their names from this habit.
Since fish have a nervous system and sense organs, it would appear that Smell receptors are located in the
nostrils, and water (carrying odors) is drawn into sacs that are lined with the organs of smell. Olfactory nerves
connect the nostrils and brain. they could feel pain. The fish’s brain is not highly developed, however. There is
no cerebral cortex (the part of the brain in higher animals that stores impressions), and so the fish has little or no
memory. It is not uncommon, for example, for an angler to hook the same fish twice within a short time. Many
fish are caught with lures or hooks already embedded in their jaws. Fish are essentially creatures of reflex, rather
than of action produced or developed by using the brain. In all probability, physical pain in fish is not very acute,
and if any impression of pain is made in the brain, it is quickly lost.
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“A number of highly specialized organs, which receive physical and chemical stimuli from the environment, are
called as sense or sensory organs”. They are associated with the nervous system. Most obvious sense organs are
eyes, nose, ear and skin which receive stimuli for vision, olfaction, audition and touch respectively. Less obvious
are Lateral line, sensory crypts and papillae, ampullae of Lorenzini.
The visual stimuli involve changes in light intensity and quality and acoustical ones are received through the
inner or lateral line. Chemical stimuli are those experienced through either small or taste organs. Pain is probably
not experienced as a strong sensation by fishes, though forceful or noxious physical or chemical stimuli evoke
violent reactions.
11.2. Nares
One or two nares (nostrils) on each side of the snout leading to a build sac represent the organs of smell externally among
fishes. However, in the lampreys and hag fishes the nostril is single and median. Most fishes have the narial openings at
the top and sides of the snout. In other such as the sharks, rays and skates the nares are on ventral surface of the snout.
In dog sharks, the narial apertures by a flap of tissue into incurrent and excurrent pores to complete separation of
incoming and outgoing water through development of a separate pore for each current, in most teleost there is often
value for classification in the fleshy valuular tissue of the teleosts. In living lungfishes (Dipnoi) the external incurrent nares
communicate by passage with excurrent nares that have come to lie in the mouth cavity.
11.3. Eyes
The eye of a fish is basically like that of all other vertebrates, but the eyes of fishes are extremely varied in
structure and adaptation. In general, fishes living in dark and dim water habitats have large eyes, unless they have
specialized in some compensatory way so that another sense (such as smell) is dominant, in which case the eyes
will often be reduced. Fishes living in brightly lighted shallow waters often will have relatively small but
efficient eyes. Cyclostomes have somewhat less elaborate eyes than other fishes, with skin stretched over the
eyeball perhaps making their vision somewhat less effective.
Most fishes have a spherical lens and accommodate their vision to far or near subjects by moving the lens within
the eyeball. A few sharks accommodate by changing the shape of the lens, as in land vertebrates. Those fishes
that are heavily dependent upon the eyes have especially strong muscles for accommodation. Most fishes see
well, despite the restrictions imposed by frequent turbidity of the water and by light refraction. Experimental
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evidence indicates that many shallow-water fishes, if not all, have colour vision and see some colours especially
well, but some bottom-dwelling shore fishes live in areas where the water is sufficiently deep to filter out most if
not all colours, and these fishes apparently never see colours. When tested in shallow water, they apparently are
unable to respond to colour differences.
The essentially lidless eyes that cannot be closed are situated in orbits, one on each side of the midline of the fish
head. Most often the eyes are lateral with partially independent fields of vision and movement. In many bottom
dwellers, including the skates (Rajidae), most Sculpine (Cottidae) and Goosefishes (Lophidae), the eyes are
dorsal in adults of flounders and their relatives both eyes on one side of the head, the eyes are variously reduced
or absent in cave fishes.
Visible through the transparent skin that covers the eye and through the transparent cornea of the eyeball are
a. The opening of the pupil of the eye and through it, the spherical crystalline lens inside the eye ball
b. The colored, washer – shaped iris surrounds the pupil.
11.4. Skin organs
Numerous microscopically small opening of skin sensory organs are developed on the surface of the fish body.
In most fishes a series of these pores, extending along each side in a single row from the head to the caudal fin
comprises the lateral line. The lateral line system forms branches about the head, including one above and one
below the orbit of each eye. In some fishes like Pikes, Esox lucius and Silver sides, the pores and their sensory
organs are not linearly concentrated on the body but are rather widely scattered. In sharks and their relatives,
there are extra and specialized parts of the lateral line system, especially in the snout region. In few fishes taste
buds occur in the skin and intigumentary tactile sensory structures.
A catfish uses taste and touch when examining a food object with its oral barbels. Like most other animals, fishes
have many touch receptors over their body surface. Pain and temperature receptors also are present in fishes and
presumably produce the same kind of information to a fish as to humans. Fishes react in a negative fashion to
stimuli that would be painful to human beings, suggesting that they feel a sensation of pain.
An important sensory system in fishes that is absent in other vertebrates (except some amphibians) is the lateral
line system. This consists of a series of heavily innervated small canals located in the skin and bone around the
eyes, along the lower jaw, over the head and down the midside of the body where it is associated with the scales.
Intermittently along these canals are located tiny sensory organs (pit organs) that apparently detect changes in
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pressure. The system allows a fish to sense changes in water currents and pressure, thereby helping the fish to
orient itself to the various changes that occur in the physical environment.
11.5. Inner ear
The organs of hearing are entirely internal, located
within the skull, on each side of the brain and somewhat
behind the eyes. Sound waves, especially those of low
frequencies, travel readily through water and impinge
directly upon the bones and fluids of the head and body,
to be transmitted to the hearing organs. Fishes readily
respond to sound; for example, a trout conditioned to
escape by the approach of fishermen will take flight
upon perceiving footsteps on a stream bank even if it
cannot see the fisherman. Compared with humans,
however, the range of sound frequencies heard by fishes
is greatly restricted. It is thought that many fishes
communicate with each other in a crude way by
producing sounds in their swim bladders, in their throats by rasping their teeth, and in other ways.
In fishes the middle ear apparatus is absent and only inner ear is present which is concerned with two senses. i.e.,
hearing and balancing. It is contained partly in the auditory capsule.
In sharks the anterior vertical canal joins with horizontal canal to form a “crus”. The pars inferior which receive
sound is composed of two vesicles. The anterior sacculus and posterior legena. In bony fishes, the utriculus,
succulus and legena comprise lapilles sagitta and astericus respectively. These are calcified structure and are
secreted by ectoderm.
Besides the sound detection, the inner ear functions to “orient “or “balance” the animal providing it feeling of
direction in which gravity is acting when suspended in lightless, pelagic habitats.
Minnows, carp, catfishes and other teleosts connects the auditory system to the swim bladder with a chain of
small bones called “Weberian ossicles”., The ossicles connect the pulsating swim bladder wall with Y – shaped
lymph sinus.
11.6. Lateral line system
The lateral line system, found in many fishes and in some aquatic amphibians, is sensitive to differences in water
pressure. These differences may be due to changes in depth or to the currentlike waves caused by approaching
objects. The basic sensory unit of the lateral line system is the neuromast, which is a bundle of sensory and
supporting cells whose projecting hairs are encased in a gelatinous cap. The nueromasts continuously send out
trains of nerve impulses. When pressure waves cause the gelatinous caps of the neuromasts to move, bending the
enclosed hairs, the frequency of the nerve impulses is either increased or decreased, depending on the direction
of bending.
Neuromasts may occur singly, in small groups called pit organs, or in rows within grooves or canals, when they
are referred to as the lateral line system. The lateral line system runs along the sides of the body onto the head,
where it divides into three branches, two to the snout and one to the lower jaw.
A swimming fish sets up a pressure wave in the water that is detectable by the lateral line systems of other fishes.
It also sets up a bow wave in front of itself, the pressure of which is higher than that of the wave flow along its
sides. These near-field differences are registered by its own lateral line system. As the fish approaches an object,
such as a rock or the glass wall of an aquarium, the pressure waves around its body are distorted, and these
changes are quickly detected by the lateral line system, enabling the fish to swerve or to take other suitable
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action. Because sound waves are waves of pressure, the lateral line system is also able to detect very low-
frequency sounds of 100 Hz or less.
An interesting adaptation of the pressure-sensitive systems is seen in the modified groups of neuromasts called
the ampullae of Lorenzini, which are found in sharks and certain bony fishes. The ampullae of Lorenzini act as
electroreceptors and are able to detect electrical charges, or fields, in the water. Most animals, including humans,
emit a DC field when in seawater. This is presumably caused by electrical potential differences between body
fluids and seawater and between different parts of the body. An AC field is also set up by muscular activity
(contractions). A wound, even a scratch, can markedly alter these electrical fields. The cat shark, Scyliorhinus, is
known to catch prey by using its ampullae of Lorenzini to detect the electrical field generated by flatfish (plaice)
buried beneath the sand.
It provides “distinct touch sense” of objects. The lateral line system is an integral part of the acoustico laterials
system which includes ear. It involves sensory lines distributed on the head and body, pit organs and Ampullae
of Lorenzine.
Ampullae of Lorienzine are present in the head region of sharks and rays. They are small sac like structure,
which open outside by small pores. The Ampullae of Lorienzine are sensitive to mechanical and weak electrical
stimuli as well as change in salinity. The receptors of lateralline system are called “neuromast” Each consists of
individual hair cells with an attached “cupula”.
Fig: Diagrammatic comparison of various sensory epithelia of the acoustico - lateralis system
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Most of the lateral line organs of the head region are innervated by sensory fibres of the lateralis anterior root of
cranial ne rves VII (facialis). The rest of the organs of systems are innervated by the laterials posterior root of
the vagus (X).