Learn / Metabolism

Metabolic pathways

Every FMK pathway as a clickable map. Pick one pathway to hammer it — next step, enzyme, regulator, cofactor, and the facts that get tested (NADPH and who needs it, rate-limiting steps, deficiencies) — or set it to all pathways for a mixed drill. Every answer says which enzyme and which pathway.

Pathway
Glycolysis · Cytosol (all cells). Enzymes sit beside the arrows; a ★ marks the rate-limiting step. The map scrolls inside its panel.
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GlucoseGlucoseGlucose-6-phosphateGlucose-6-phosphateFructose-6-phosphateFructose-6-phosphateFructose-1,6-bisphosphateFructose-1,6-bisphosphateDHAPDHAPGlyceraldehyde-3-phosphateGlyceraldehyde-3-phosphate1,3-Bisphosphoglycerate1,3-Bisphosphoglycerate2,3-BPG (RBC)2,3-BPG (RBC)3-Phosphoglycerate3-Phosphoglycerate2-Phosphoglycerate2-PhosphoglyceratePhosphoenolpyruvatePhosphoenolpyruvatePyruvatePyruvateLactateLactateAcetyl-CoA (→ TCA)Acetyl-CoA (→ TCA)Hexokinase / GlucokinasePhosphoglucose isomerasePhosphofructokinase-1 (PFK-1) ★Aldolase AAldolase ATriose phosphate isomeraseGlyceraldehyde-3-phosphatedehydrogenaseBisphosphoglycerate mutase (RBC)Phosphoglycerate kinasePhosphoglycerate mutaseEnolasePyruvate kinaseLactate dehydrogenasePyruvate dehydrogenase complex

Glycolysis

Glucose → 2 pyruvate. Net 2 ATP + 2 NADH per glucose. Three irreversible steps (hexokinase/glucokinase, PFK-1 ★, pyruvate kinase); PFK-1 is rate-limiting. RBCs depend on it entirely — no mitochondria.

Click any metabolite on the map for its reactions. Source: FMK-02.1 Glycolysis & TCA.

Reactions

StepEnzymeCofactorsRegulation
Glucose → Glucose-6-phosphate Hexokinase / Glucokinase
Hexokinase deficiency — rare hemolytic anemia (RBCs lose their only ATP source)
Hexokinase deficiency →
ATP → ADP
Glucose-6-phosphate (hexokinase only)
Glucose-6-phosphate → Fructose-6-phosphate Phosphoglucose isomerase
Fructose-6-phosphate → Fructose-1,6-bisphosphate Phosphofructokinase-1 (PFK-1)
PFK-1 deficiency (Tarui disease) — exercise cramps/myopathy, hemolytic anemia, hyperuricemia
PFK-1 deficiency (Tarui disease, GSD VII) →
ATP → ADP
+ AMP; ADP; Fructose-2,6-bisphosphate (most potent; made by PFK-2)
ATP; Citrate
Fructose-1,6-bisphosphate → DHAP Aldolase A
Fructose-1,6-bisphosphate → Glyceraldehyde-3-phosphate Aldolase A
DHAP → Glyceraldehyde-3-phosphate Triose phosphate isomerase
Glyceraldehyde-3-phosphate → 1,3-Bisphosphoglycerate Glyceraldehyde-3-phosphate dehydrogenase NAD⁺ → NADH, Pi
1,3-Bisphosphoglycerate → 3-Phosphoglycerate Phosphoglycerate kinase ADP → ATP (substrate-level)
1,3-Bisphosphoglycerate → 2,3-BPG (RBC) Bisphosphoglycerate mutase (RBC)
3-Phosphoglycerate → 2-Phosphoglycerate Phosphoglycerate mutase
2-Phosphoglycerate → Phosphoenolpyruvate Enolase
Fluoride
Phosphoenolpyruvate → Pyruvate Pyruvate kinase
Pyruvate kinase deficiency — most common glycolytic enzyme defect; chronic hemolytic anemia with echinocytes (burr cells), splenomegaly, ↑ reticulocytes; heterozygotes resist P. falciparum
Pyruvate kinase (PK) deficiency →
ADP → ATP (substrate-level)
+ Fructose-1,6-bisphosphate (feed-forward)
ATP; Alanine; Glucagon (phosphorylation via PKA, liver isoform)
Pyruvate → Lactate Lactate dehydrogenaseWarburg effect (cancer aerobic glycolysis) → NADH → NAD⁺
Pyruvate → Acetyl-CoA (→ TCA) Pyruvate dehydrogenase complex TPP (B₁), Lipoic acid, CoA (B₅), FAD (B₂), NAD⁺ (B₃)

Conditions that live on this map

Arsenic poisoningFanconi-Bickel syndrome (GLUT2 deficiency)GLUT1 deficiency (epileptic disorder)Hexokinase deficiencyPFK-1 deficiency (Tarui disease, GSD VII)Pyruvate kinase (PK) deficiencySGLT-2 inhibitors (gliflozins: empagliflozin, dapagliflozin)Type 2 diabetes / insulin resistanceWarburg effect (cancer aerobic glycolysis)

Blue pills sit on one specific arrow; grey ones are whole-pathway problems. Each opens the full condition card, which links back here with the arrow lit.

Facts worth knowing

Yield

  • Net ATP per glucose from glycolysis alone (anaerobic) — 2 ATP (4 made − 2 spent)
  • NADH produced per glucose in glycolysis — 2 NADH (at the GAPDH step)
  • Total aerobic ATP per glucose (glycolysis + PDH + TCA + OXPHOS) — ~30–32 ATP (2.5 per NADH, 1.5 per FADH₂; shuttle-dependent)

Transporter

  • Insulin-dependent glucose transporter (muscle & adipose) — GLUT-4 (Fails to translocate in T2DM / insulin deficiency → glucose stays in blood.)
  • Bidirectional, low-affinity (Km 15–20 mM) transporter of liver, kidney & β-cells — GLUT-2 (Lets the liver and β-cell 'sense' glucose only when it's high.)
  • Basal uptake transporter of most tissues and the blood-brain barrier — GLUT-1 (GLUT-1 deficiency: low CSF glucose with normal blood glucose, infantile seizures; treat with ketogenic diet.)
  • High-affinity neuronal glucose transporter — GLUT-3
  • Fructose transporter of the small intestine — GLUT-5
  • Na⁺-coupled renal transporter blocked by gliflozins — SGLT-2 (Reabsorbs ~90% of filtered glucose; blocking it → glucosuria, weight loss, cardioprotection.)

Toxin

  • Arsenite (As³⁺) inactivates which cofactor? — Lipoic acid (→ PDH, α-KG DH and branched-chain α-keto acid DH fail)
  • Arsenate (As⁵⁺) competes with which substrate? — Inorganic phosphate at the GAPDH step (uncouples glycolysis from ATP synthesis)

Enzyme deficiency

  • Deficiency of Hexokinase / Glucokinase causes… — Hexokinase deficiency — rare hemolytic anemia (RBCs lose their only ATP source) (Hexokinase (HK I–III): all tissues, high affinity (Km ~0.1 mM), low Vmax, feedback-inhibited by G6P. Glucokinase (HK IV): liver & β-cells, low affinity (Km ~10 mM), high Vmax, induced by insulin — a glucose sensor that only works after a meal.)
  • Deficiency of Phosphofructokinase-1 (PFK-1) causes… — PFK-1 deficiency (Tarui disease) — exercise cramps/myopathy, hemolytic anemia, hyperuricemia (The committed, rate-limiting step. Fed state: insulin → PFK-2 dephosphorylated & active → ↑F2,6-BP → PFK-1 on. Fasting: glucagon → PKA phosphorylates the bifunctional enzyme → FBPase-2 active → ↓F2,6-BP → PFK-1 off (liver).)
  • Deficiency of Pyruvate kinase causes… — Pyruvate kinase deficiency — most common glycolytic enzyme defect; chronic hemolytic anemia with echinocytes (burr cells), splenomegaly, ↑ reticulocytes; heterozygotes resist P. falciparum (Second substrate-level phosphorylation. Hepatic isoform is switched off by glucagon so PEP is diverted to gluconeogenesis.)

Rate-limiting step

  • Rate-limiting enzyme of glycolysis — Phosphofructokinase-1 (PFK-1) (The committed, rate-limiting step. Fed state: insulin → PFK-2 dephosphorylated & active → ↑F2,6-BP → PFK-1 on. Fasting: glucagon → PKA phosphorylates the bifunctional enzyme → FBPase-2 active → ↓F2,6-BP → PFK-1 off (liver).)
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