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3. Oxidative Phosphorylation ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Oxidative Phosphorylation cont.  ,[object Object],[object Object],[object Object],[object Object]
Chemiosmosis ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Chemiosmosis cont.  ,[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],H 2 O O 2 NADH FADH2 FMN Fe‱S Fe‱S Fe‱S O FAD Cyt  b Cyt  c 1 Cyt  c Cyt  a Cyt  a 3 2 H  +  +  1 ï‚€ 2 I II III IV Multiprotein complexes 0 10 20 30 40 50 Free energy ( G ) relative to O 2  (kcl/mol) Figure 9.13
[object Object],[object Object],[object Object],Glycolysis Citric acid cycle Oxidative phosphorylation ATP ATP ATP 2 ATP 4 ATP used formed Glucose 2 ATP + 2  P 4 ADP + 4 P 2 NAD +  + 4 e -  + 4 H  + 2 NADH + 2 H + 2 Pyruvate + 2 H 2 O Energy investment phase Energy payoff phase Glucose 2 Pyruvate + 2 H 2 O 4 ATP formed – 2 ATP used 2 ATP 2 NAD +  + 4 e –  + 4 H  + 2 NADH + 2 H + Figure 9.8
Chemiosmosis: The Energy-Coupling Mechanism ,[object Object],[object Object],INTERMEMBRANE SPACE H + H + H + H + H + H + H + H + P  i + ADP ATP A  rotor  within the  membrane spins  clockwise when H +  flows past  it down the H +  gradient. A  stator  anchored in the membrane holds the knob stationary. A  rod  (for “stalk”) extending into  the knob also spins, activating catalytic sites in the knob. Three catalytic  sites in the  stationary  knob join inorganic  Phosphate to ADP to make ATP.   MITOCHONDRIAL MATRIX Figure 9.14
[object Object],Oxidative phosphorylation. electron transport and chemiosmosis Glycolysis ATP ATP ATP Inner Mitochondrial membrane H + H + H + H + H + ATP P  i Protein complex of electron  carners Cyt  c I II III IV (Carrying electrons from, food) NADH + FADH 2 NAD + FAD + 2 H +  +  1 / 2  O 2 H 2 O ADP + Electron transport chain Electron transport and pumping of protons (H + ), which create an H +  gradient across the membrane Chemiosmosis ATP synthesis powered by the flow Of H +  back across the membrane ATP synthase Q Oxidative phosphorylation Intermembrane space Inner mitochondrial membrane Mitochondrial matrix Figure 9.15
Overview ,[object Object],Electron shuttles span membrane CYTOSOL 2 NADH 2 FADH 2 2 NADH 6 NADH  2 FADH 2 2 NADH Glycolysis Glucose 2 Pyruvate 2 Acetyl CoA Citric acid cycle Oxidative phosphorylation: electron transport and chemiosmosis MITOCHONDRION by substrate-level phosphorylation by substrate-level phosphorylation by oxidative phosphorylation, depending on which shuttle transports electrons from NADH in cytosol  Maximum per glucose: About 36 or 38 ATP + 2 ATP + 2 ATP + about 32 or 34 ATP or Figure 9.16
Anaerobic Pathway of Glycolysis 2 ADP + 2 P 1 2 ATP Glycolysis Glucose 2 NAD + 2 NADH 2 Pyruvate 2 Acetaldehyde 2 Ethanol (a) Alcohol fermentation 2 ADP + 2 P 1 2 ATP Glycolysis Glucose 2 NAD + 2 NADH 2 Lactate (b) Lactic acid fermentation H H OH CH 3 C O  – O C C O CH 3 H C O CH 3 O – C O C O CH 3 O C O C OH H CH 3 CO 2 2 Figure 9.17
Overview ,[object Object],Glucose CYTOSOL Pyruvate No O 2  present Fermentation O 2  present Cellular respiration Ethanol or  lactate Acetyl CoA MITOCHONDRION Citric acid cycle Figure 9.18
Carbohydrates not only source of Energy Use ,[object Object],Amino  acids Sugars Glycerol Fatty acids Glycolysis Glucose Glyceraldehyde-3-  P Pyruvate Acetyl CoA NH 3 Citric acid cycle Oxidative phosphorylation Fats Proteins Carbohydrates Figure 9.19
Regulation of Cellular Respiration ,[object Object],[object Object],Glucose Glycolysis Fructose-6-phosphate Phosphofructokinase Fructose-1,6-bisphosphate Inhibits Inhibits Pyruvate ATP Acetyl CoA Citric acid cycle Citrate Oxidative phosphorylation Stimulates AMP + – – Figure 9.20

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Oxidative Phosphorylation

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  • 10. Anaerobic Pathway of Glycolysis 2 ADP + 2 P 1 2 ATP Glycolysis Glucose 2 NAD + 2 NADH 2 Pyruvate 2 Acetaldehyde 2 Ethanol (a) Alcohol fermentation 2 ADP + 2 P 1 2 ATP Glycolysis Glucose 2 NAD + 2 NADH 2 Lactate (b) Lactic acid fermentation H H OH CH 3 C O – O C C O CH 3 H C O CH 3 O – C O C O CH 3 O C O C OH H CH 3 CO 2 2 Figure 9.17
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