Comprehensive theory, key formulas, diagrams, and memory aids for Carbohydrate Metabolism.
Glycolysis is a universal, cytosolic pathway that breaks down one molecule of glucose ($6\text{C}$) into two molecules of pyruvate ($3\text{C}$), generating net $2\text{ ATP}$ and $2\text{ NADH}$. It occurs in both aerobic and anaerobic conditions.
graph TD
A[Glucose] -->|Hexokinase / ATP| B[Glucose-6-Phosphate]
B --> C[Fructose-6-Phosphate]
C -->|PFK-1 / ATP| D[Fructose-1,6-Bisphosphate]
D --> E[DHAP + GAP]
E --> F[2 x GAP]
F -->|GAPDH / 2 NADH| G[2 x 1,3-BPG]
G -->|Phosphoglycerate Kinase / 2 ATP| H[2 x 3-PG]
H --> I[2 x 2-PG]
I --> J[2 x PEP]
J -->|Pyruvate Kinase / 2 ATP| K[2 x Pyruvate]
Glycolysis is divided into two phases: - Preparatory Phase (energy investment, uses $2\text{ ATP}$): 1. Phosphorylation: Glucose $\rightarrow$ Glucose-6-phosphate (G6P) by Hexokinase (or glucokinase in liver). Irreversible committed step. 2. Isomerization: G6P $\rightarrow$ Fructose-6-phosphate (F6P) by Phosphoglucose isomerase. 3. Phosphorylation: F6P $\rightarrow$ Fructose-1,6-bisphosphate (F1,6BP) by Phosphofructokinase-1 (PFK-1). Key rate-limiting regulatory step. Uses second ATP. 4. Cleavage: F1,6BP is split into Dihydroxyacetone phosphate (DHAP) and Glyceraldehyde-3-phosphate (GAP) by Aldolase. 5. Isomerization: DHAP $\rightarrow$ GAP by Triose phosphate isomerase.
Net Yield: $\text{Glucose} + 2\text{ NAD}^+ + 2\text{ ADP} + 2\text{ P}_i \rightarrow 2\text{ Pyruvate} + 2\text{ NADH} + 2\text{ H}^+ + 2\text{ ATP} + 2\text{ H}_2\text{O}$
Under aerobic conditions, pyruvate enters the mitochondria. First, it is oxidatively decarboxylated to Acetyl-CoA by the Pyruvate Dehydrogenase (PDH) Complex, releasing $CO_2$ and generating $NADH$.
The TCA cycle occurs in the mitochondrial matrix. It oxidizes Acetyl-CoA ($2\text{C}$) to $2\text{ CO}_2$, conserving energy as $NADH$, $FADH_2$, and $GTP$.
Yield per Acetyl-CoA: $3\text{ NADH} + 1\text{ FADH}_2 + 1\text{ GTP} + 2\text{ CO}_2$. (Double this for one glucose molecule).
Gluconeogenesis is the synthesis of glucose from non-carbohydrate precursors (lactate, glycerol, glucogenic amino acids, propionate). It occurs primarily in the liver (and some in the kidneys) during fasting to maintain blood glucose levels.
It is NOT a simple reversal of glycolysis. It bypasses the three irreversible glycolytic steps using four specialized enzymes:
Energetic Cost: Synthesizing 1 glucose from 2 pyruvales requires $4\text{ ATP}$, $2\text{ GTP}$, and $2\text{ NADH}$.
Glycogen is a highly branched polymer of glucose stored in liver and muscle.
Glycogenesis (Synthesis): Glucose $\rightarrow$ G6P $\rightarrow$ G1P. G1P reacts with UTP to form active UDP-Glucose. Glycogen Synthase transfers glucose from UDP-glucose to form $\alpha(1\rightarrow4)$ linkages. Key rate-limiting enzyme. Branching Enzyme transfers segments of 7 residues to create $\alpha(1\rightarrow6)$ branch points.
Glycogenolysis (Breakdown): Glycogen Phosphorylase uses inorganic phosphate to cleave $\alpha(1\rightarrow4)$ bonds, releasing Glucose-1-phosphate. Key rate-limiting enzyme. Debranching Enzyme transfers remaining glucose chains at a branch and hydrolyzes the final $\alpha(1\rightarrow6)$ linkage, releasing free glucose. G1P is converted to G6P by phosphoglucomutase. In the liver, G6P is converted to glucose by Glucose-6-phosphatase to raise blood sugar. Muscle lacks this enzyme; G6P enters glycolysis directly for energy.
Also known as the Hexose Monophosphate (HMP) Shunt, the PPP takes place in the cytosol. It does not generate ATP.
Metabolism is regulated coordinately by allosteric effectors and hormones (insulin, glucagon, epinephrine).
PFK-1 is activated by $AMP$ and Fructose-2,6-bisphosphate (F2,6BP) (the most potent regulator), and inhibited by $ATP$ and $Citrate$. FBPase-1 is inhibited by $AMP$ and $F2,6BP$. This prevents futile cycling.