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[object Object],[object Object],[object Object],[object Object],[object Object],Overview glucose C-C-C-C-C-C fructose-1,6bP P- C-C-C-C-C-C -P DHAP P- C-C-C G3P C-C-C -P pyruvate C-C-C ATP 2 ADP 2 ATP 4 ADP 4 NAD + 2 2 2 P i 2 P i 2 H
Cellular Respiration Stage 2 & 3: Oxidation of Pyruvate Krebs Cycle
Glycolysis is only the start ,[object Object],[object Object],[object Object],[object Object],[object Object],3C 1C pyruvate                   CO 2 2 x 6C 3C glucose                pyruvate
Cellular respiration
Mitochondria — Structure ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],What cells would have a lot of mitochondria? intermembrane space inner membrane  outer membrane  matrix cristae mitochondrial DNA
Mitochondria – Function What does this tell us about the evolution of eukaryotes? Endosymbiosis ! Dividing mitochondria Who else divides like that? Advantage of highly folded inner membrane? More surface area for membrane-bound enzymes & permeases Membrane-bound proteins Enzymes & permeases Oooooh ! Form fits  function ! bacteria !
Oxidation of pyruvate ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],3C 2C 1C Where does the CO 2  go? Exhale ! pyruvate          acetyl CoA + CO 2 NAD [ 2x ]
Pyruvate oxidized to Acetyl CoA  Yield =  2C sugar  +  NADH  +  CO 2 reduction oxidation Coenzyme A Pyruvate Acetyl CoA C-C-C C-C CO 2 NAD + 2 x  [ ]
Krebs cycle ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],1937  |  1953 Hans Krebs 1900-1981
citrate acetyl CoA Count the carbons! pyruvate x 2 oxidation of sugars This happens  twice  for each glucose molecule 4C 6C 4C 4C 4C 2C 6C 5C 4C CO 2 CO 2 3C
citrate acetyl CoA Count the electron carriers! pyruvate reduction of electron carriers This happens twice for each glucose molecule x 2 4C 6C 4C 4C 4C 2C 6C 5C 4C CO 2 CO 2 3C CO 2 NADH NADH NADH NADH FADH 2 ATP
So we fully oxidized glucose  C 6 H 12 O 6  CO 2 & ended up  with  4 ATP ! Whassup? What’s the  point?
[object Object],[object Object],[object Object],[object Object],Electron Carriers = Hydrogen Carriers What’s so  important about  electron carriers?  ATP ADP + P i H + H + H + H + H + H + H + H + H +
Energy accounting of Krebs cycle  ,[object Object],[object Object],ATP pyruvate                            CO 2 3C 1  ADP 1  ATP 2x 4  NAD   +   1  FAD 4  NADH   +   1   FADH 2 3 x 1C
Value of Krebs cycle? ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],like $$ in the  bank
What’s the point? The point is to make ATP ! ATP
And how do we do that? ,[object Object],[object Object],[object Object],[object Object],[object Object],ATP But…  Have we done that yet? ADP H + H + H + H + H + H + H + H + H + P +
NO ! The final chapter to my story is next ! Any Questions?

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Respiration Part3

  • 1.
  • 2. Cellular Respiration Stage 2 & 3: Oxidation of Pyruvate Krebs Cycle
  • 3.
  • 5.
  • 6. Mitochondria – Function What does this tell us about the evolution of eukaryotes? Endosymbiosis ! Dividing mitochondria Who else divides like that? Advantage of highly folded inner membrane? More surface area for membrane-bound enzymes & permeases Membrane-bound proteins Enzymes & permeases Oooooh ! Form fits function ! bacteria !
  • 7.
  • 8. Pyruvate oxidized to Acetyl CoA Yield = 2C sugar + NADH + CO 2 reduction oxidation Coenzyme A Pyruvate Acetyl CoA C-C-C C-C CO 2 NAD + 2 x [ ]
  • 9.
  • 10. citrate acetyl CoA Count the carbons! pyruvate x 2 oxidation of sugars This happens twice for each glucose molecule 4C 6C 4C 4C 4C 2C 6C 5C 4C CO 2 CO 2 3C
  • 11. citrate acetyl CoA Count the electron carriers! pyruvate reduction of electron carriers This happens twice for each glucose molecule x 2 4C 6C 4C 4C 4C 2C 6C 5C 4C CO 2 CO 2 3C CO 2 NADH NADH NADH NADH FADH 2 ATP
  • 12. So we fully oxidized glucose C 6 H 12 O 6  CO 2 & ended up with 4 ATP ! Whassup? What’s the point?
  • 13.
  • 14.
  • 15.
  • 16. What’s the point? The point is to make ATP ! ATP
  • 17.
  • 18. NO ! The final chapter to my story is next ! Any Questions?

Editor's Notes

  1. 1st ATP used is like a match to light a fire… initiation energy / activation energy. Destabilizes glucose enough to split it in two
  2. Can’t stop at pyruvate == not enough energy produced Pyruvate still has a lot of energy in it that has not been captured. It still has 3 carbons! There is still energy stored in those bonds.
  3. Almost all eukaryotic cells have mitochondria there may be 1 very large mitochondrion or 100s to 1000s of individual mitochondria number of mitochondria is correlated with aerobic metabolic activity more activity = more energy needed = more mitochondria What cells would have a lot of mitochondria? Active cells: • muscle cells • nerve cells
  4. CO 2 is fully oxidized carbon == can’t get any more energy out it CH 4 is a fully reduced carbon == good fuel!!!
  5. Release CO 2 because completely oxidized…already released all energy it can release … no longer valuable to cell…. Because what’s the point? The Point is to make ATP!!!
  6. The enzymes of glycolysis are very similar among all organisms. The genes that code for them are highly conserved. They are a good measure for evolutionary studies. Compare eukaryotes, bacteria & archaea using glycolysis enzymes. Bacteria = 3.5 billion years ago glycolysis in cytosol = doesn’t require a membrane-bound organelle O 2 = 2.7 billion years ago photosynthetic bacteria / proto-blue-green algae Eukaryotes = 1.5 billion years ago membrane-bound organelles! Processes that all life/organisms share: Protein synthesis Glycolysis DNA replication
  7. A 2 carbon sugar went into the Krebs cycle and was taken apart completely. Two CO2 molecules were produced from that 2 carbon sugar. Glucose has now been fully oxidized! But where’s all the ATP???
  8. Everytime the carbons are oxidized, an NAD+ is being reduced. But wait…where’s all the ATP??