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The process of glucose metabolism, including glycolysis, fermentation, and cellular respiration. It describes the major steps involved in each process and the energy released during glucose metabolism. The document also explains the two types of fermentation, lactate fermentation and alcoholic fermentation. useful for students studying biochemistry and cellular biology.
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Chapter 8: Harvesting Energy: Glycolysis and Cellular Respiration
Chapter 8: Glycolysis and Cellular Respiration
Answer: The breakdown of glucose to release energy from its chemical bonds
6 CO 2 + (^) EnergyLight Carbon Dioxide
= C 6 H 12 O (^6) Glucose
Photosynthesis:
= 6 CO (^2) Carbon Dioxide
C 6 H 12 O (^6) Glucose
Glucose Metabolism:
Glucose
Pyruvate (^) No oxygen present (Anaerobic)
Ethanol Lactate
Oxygen present (Aerobic)
(36 ATP) 3) Cellular Respiration
Carbon Dioxide Water
Cytoplasm
Mitochondria
Chapter 8: Glycolysis and Cellular Respiration Major Steps in Glucose Metabolism:
(Figure 8.1)
Two Major Components: A) Glucose Activation: Initiate the reaction (takes energy)
(Activation Energy)
Glucose
C CC x 2 P Glyceraldehyde 3-phosphate (G3P)
Chapter 8: Glycolysis and Cellular Respiration
Two Major Components: A) Glucose Activation: Initiate the reaction (takes energy) B) Energy Harvesting: Complete the reaction (makes energy)
4 ADP 4 ATP C CC x 2 P Glyceraldehyde 3-phosphate
C CC x 2 Pyruvate
Chapter 8: Glycolysis and Cellular Respiration
Glycolysis in Review:
Net ATP Gain = 2 ATP
(similar to Figure 8.2)
Chapter 8: Glycolysis and Cellular Respiration
Glucose
Pyruvate No oxygen present (Anaerobic)
Ethanol Lactate
Oxygen present (Aerobic)
(36 ATP) 3) Cellular Respiration
Carbon Dioxide Water
Chapter 8: Glycolysis and Cellular Respiration
C CC x 2 Lactate
C CC x 2 Pyruvate
2 NADH 2 NAD^ +^ (Back to glycolysis)
Chapter 8: Glycolysis and Cellular Respiration Lactate Fermentation:
Chapter 8: Glycolysis and Cellular Respiration
C CC x 2 Pyruvate
2 NADH 2 NAD^ +^ (Back to glycolysis) C C x 2 C Ethanol
x 2 Carbon Dioxide
Chapter 8: Glycolysis and Cellular Respiration
A) Formation of Acetyl CoA:
C C- CoA x 2 NAD +^ NADH Acetyl CoA
Coenzyme A CO 2
C CC x 2 Pyruvate
Chapter 8: Glycolysis and Cellular Respiration
C C- CoA^ (x 2) Acetyl CoA
Krebs Cycle
( C C )2 CO (^2) (x 2)
FAD
FADH 2
(x 2)
3 NAD+
3 NADH
(x 2)
ADP
ATP (x 2)
Chapter 8: Glycolysis and Cellular Respiration
The True Story:
DO NOT COPY!
Chapter 8: Glycolysis and Cellular Respiration Review:
(Figure 8.5)
Chapter 8: Glycolysis and Cellular Respiration
What energy molecules have we produced so far:
Chapter 8: Glycolysis and Cellular Respiration
C) Electron Transport System
Inner Membrane
Intermembrane Compartment
Matrix
ETS
NAD+ FAD
NADH FADH 2
2e-
1/2 O 2 + 2 H+^ H 2 O
Chapter 8: Glycolysis and Cellular Respiration
Electron Transport Chain:
(Figure 8.6) cyanide
Chapter 8: Glycolysis and Cellular Respiration Sequence of Events in Cellular Respiration:
Inner Membrane
Intermembrane Compartment
Matrix
ETS
H+^ H+^ H+^ H
H+^ H+ H+
H+ H+
H+ H+
H+ H+ H+
H+ ion channel
H+
ADP ATP 32 ATP
Chapter 8: Glycolysis and Cellular Respiration
(See “A Closer Look - Chemiosmosis: Pg. 142)
Chemiosmosis:
Chapter 8: Glycolysis and Cellular Respiration Final Tally of Energy Production:
(Figure 8.1)
One Molecule of Glucose Yields 36 - 38 ATP
Yippee!
How Various Biomolecules Yield Energy:
(See Health Watch - Pg. 136)
Fats:
Reversal true as well: Glucose → Fats