Metabolism - answerTotal energy expenditure of all cata/anabolic processes (bodies ability to use fuel)
Measured by either direct (calorimetry chamber) or indirect (Douglas bag/metabolic cart) calorimetry
Calorimetry = measure of energy expenditure (kcals = E to heat 1kg water 1°C)
Oxidation-Reduction Reaction - answer- Are always *coupled reactions* (the energy given off by the
exergonic reaction powers the endergonic reaction)
- *Oxidation*: removing an electron
- *Reduction*: addition of an electron
- Often involve the *transfer of hydrogen atoms* rather than free electrons; hydrogen atoms contain
one electron and a molecule that loses a hydrogen atom loses an electron and therefore is oxidized
Bioenergetics - answer- The chemical processes of converting food into energy (glycolysis, citric acid
cycle, etc.)
- Formation of ATP
*3 Pathways*:
1. ATP-PCr or Anaerobic Alactic System
2. Glycolysis or Anaerobic Lactic System or Substrate Level Phosphorylation
3. Aerobic System or Oxidative Phosphorylation or Cellular Respiration (Beta Oxidation/Acetyl CoA, Citric
Acid Cycle/Krebs Cycle, Electron Transport Chain)
Enzymes:
,1. Acetyl CoA
2. Krebs Cycle
3. Lactate --> Pyruvate
4. Glycolysis
5. ATP-PCr
6. Pyruvate --> Lactate
7. Electron Transport Chain - answer1. Pyruvate Dehydrogenase (PDH)
2. Isocitrate Dehydrogenase, Citrate Synthase, SDH
3. Lactate Dehydrogenase H (LDH-H)
4. Phosphofructokinase
5. Creatine Kinase
6. Lactate Dehydrogenase M (LDH-M)
7. Cytochrome Oxidase
ATP-PCr System (Anaerobic Alactic System) - answer- *Exercise*: ATP + Cr --> ADP + PCr
- *Rest* ADP + PCr --> ATP + Cr
- *Creatine Kinase* is the enzyme that catalysis the rephosphorylation of ADP to ATP at rest
1. Gluconeogenesis
2. Glycogenolysis
3. Glycolysis - answer- The formation of glucose from noncarbohydrate sources such as lactate, glycerol
or amino acids
- Breakdown of glycogen to glucose
- Breakdown of glucose to pyruvate
,Glycolysis Energy Investment Phase - answer1. Glucose phosphorylated by ATP (ATP-->ADP) producing
an activated molecule Glucose-6-Phosphate(C6-P) (uses 1 ATP)
2. Rearranged to Fructose-6-Phosphate (C6-P);
Then a second phosphorylation giving you Fructose-1,6-B iphosphate (P-C6-P) (uses 1 ATP)
Catalyzed by phosphofructokinase
3. The 6-C molecule split into two 3-C G3P (C3-P) molecules
*Overall uses 2 ATP*
Glucose
Glucose-6-Phosphate - lose 1 ATP
Fructose-6-Phosphate
Fructose-1,6-Biphosphate - lose 1 ATP
2G3P (C3-P)
Glycolysis Energy Production Phase - answer1. Oxidization (NAD-->NADH) then phosphorylation giving
you 2 higher energy BPG (P-C3-P) molecules (get 2 NADH)
2. Removal of phosphate groups by ADP (2ADP--> 2ATP) leaving 2 3PG (P-C3) (get 2 ATP)
3. Oxidization by removing H20 produces 2 high energy PEP (P-C3) molecules
4. Removal of phosphate groups by ADP (2ADP-->2ATP) gives you pyruvate (get 2 ATP and 2 pyruvate)
, 5. If O2 available it enters mitochondria for further breakdown
If not then it's converted to lactic acid then lactate which goes to liver to made back to glucose
*Get 2 ATP, 2 pyruvate, 2 NADH*
G3P
BPG - get 2 NADH
3PG - get 2 ATP
PEP - removed H20
Pyruvate - get 2 pyruvate
Pyruvate Oxidation - answer1. Pyruvate (3-C) goes to mitochondria from glycolysis
2. Carboxyl group snipped off released as CO2 leaving behind a 2-C molecule (Acetyl)
3. This molecule oxidized (NAD-->NADH) (2 NADH)
4. Acetyl attaches to CoA group making Acetyl CoA (2-C) (2 Acetyl-CoA)
*Gives 2 Acetyl-CoA and 2 NADH*
Pyruvate (3-C)
Acetyl - creates 2 CO2
Acetyl - oxidized - 2 NADH
Acetyl-CoA - 2 Acetyl-CoA