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PW-001 Carbohydrate Metabolism Catabolic unreviewed

Glycolysis

Glucose 2 Pyruvate (or 2 lactate anaerobically)
Compartment
Cytosol
Main tissue
All cells; esp. RBC, muscle, brain
Rate-limiting
Phosphofructokinase-1 (PFK-1)
Steps
10

Reaction steps

In source order, 10 total

showing 1–10
  1. 1

    Glucose + ATP -> glucose-6-phosphate + ADP

    Notes

    Hexokinase I–III in most tissues, or glucokinase (hexokinase IV) in liver and pancreatic beta cells, transfers the terminal phosphate of ATP to glucose; Mg2+ is required. This is an irreversible trapping step; it is not the committed step because glucose-6-phosphate can enter glycogenesis or the pentose phosphate pathway. Hexokinase is product-inhibited by glucose-6-phosphate, whereas glucokinase has a high Km and high Vmax and is regulated by glucokinase regulatory protein in hepatocytes.

  2. 2

    Glucose-6-phosphate → fructose-6-phosphate

    Notes

    Phosphoglucose isomerase catalyzes reversible aldose–ketose isomerization through an enediol intermediate; no nucleotide cofactor is consumed. This reversible reaction prepares the molecule for symmetrical cleavage after a second phosphorylation.

  3. 3

    Fructose-6-phosphate + ATP -> fructose-1,6-bisphosphate + ADP

    Phosphofructokinase-1 (PFK-1) 2.7.1.11 ST-0003 Irreversible rate-limiting ATP Mg2+
    Notes

    Phosphofructokinase-1 (PFK-1) uses ATP and Mg2+. This is the principal rate-limiting, committed, and irreversible step of glycolysis; fructose-1,6-bisphosphate is committed to glycolytic cleavage rather than glucose-6-phosphate-dependent alternative pathways.

  4. 4

    Fructose-1,6-bisphosphate → glyceraldehyde-3-phosphate + dihydroxyacetone phosphate

    Notes

    Fructose-bisphosphate aldolase reversibly cleaves the six-carbon ketose bisphosphate into two phosphorylated trioses. No redox cofactor or ATP is required.

  5. 5

    Dihydroxyacetone phosphate → glyceraldehyde-3-phosphate

    Notes

    Triose phosphate isomerase reversibly interconverts the two trioses through an enediol intermediate. Only glyceraldehyde-3-phosphate continues directly through the payoff reactions, so one glucose yields two glyceraldehyde-3-phosphate molecules from this point onward.

  6. 6

    Glyceraldehyde-3-phosphate + inorganic phosphate + NAD+ → 1,3-bisphosphoglycerate + NADH + H+

    Notes

    Glyceraldehyde-3-phosphate dehydrogenase oxidizes the aldehyde and captures the energy in an acyl-phosphate bond; it requires NAD+ and free inorganic phosphate (Pi). The reaction is reversible. Because it occurs twice per glucose, it generates two cytosolic NADH.

  7. 7

    1,3-Bisphosphoglycerate + ADP → 3-phosphoglycerate + ATP

    Notes

    Phosphoglycerate kinase requires Mg2+ and catalyzes reversible substrate-level phosphorylation. Occurring twice per glucose, this first payoff reaction produces two ATP and thereby repays the two ATP invested in steps 1 and 3.

  8. 8

    3-Phosphoglycerate → 2-phosphoglycerate

    Notes

    Phosphoglycerate mutase reversibly shifts the phosphate from carbon 3 to carbon 2; the 2,3-bisphosphoglycerate-dependent isoenzyme requires a catalytic phosphohistidine and 2,3-bisphosphoglycerate for priming. No ATP is consumed.

  9. 9

    2-Phosphoglycerate → phosphoenolpyruvate + H2O

    Enolase 4.2.1.11 ST-0009 Reversible Mg2+ Mn2+ H2O
    Notes

    Enolase requires Mg2+ (or Mn2+) and reversibly dehydrates 2-phosphoglycerate to form phosphoenolpyruvate (PEP), a compound with high phosphoryl-transfer potential. Fluoride inhibits enolase and is used to limit glycolysis in some blood collection tubes.

  10. 10

    Phosphoenolpyruvate + ADP → pyruvate + ATP

    Notes

    Pyruvate kinase requires K+ and Mg2+ (or Mn2+) and performs the second substrate-level phosphorylation. This step is irreversible; in liver it is an important regulatory point and is activated feed-forward by fructose-1,6-bisphosphate. It occurs twice per glucose and yields two additional ATP.

Showing all 10 steps.

Regulation

What speeds each enzyme up and what slows it down

Hexokinase I–III

Accelerated by

Availability of glucose

Inhibited by

Glucose-6-phosphate

Hormonal

No major acute direct hormonal regulation

Glucokinase (liver)

Accelerated by

High portal glucose; release from glucokinase regulatory protein by fructose-1-phosphate

Inhibited by

Fructose-6-phosphate promotes nuclear sequestration through glucokinase regulatory protein

Hormonal

Insulin induces expression; glucagon lowers expression during fasting

Phosphofructokinase-1

Accelerated by

AMP, ADP, fructose-2,6-bisphosphate

Inhibited by

ATP, citrate, low pH (especially muscle)

Hormonal

Insulin increases hepatic fructose-2,6-bisphosphate through dephosphorylated PFK-2/FBPase-2; glucagon lowers it via protein kinase A

Pyruvate kinase (liver isoform)

Accelerated by

Fructose-1,6-bisphosphate

Inhibited by

ATP, alanine; phosphorylation

Hormonal

Insulin promotes dephosphorylation and activity; glucagon/epinephrine activate protein kinase A, phosphorylating and inhibiting the liver isoform

Overview

Glycolysis is the cytosolic sequence that converts one molecule of glucose to two molecules of pyruvate (or, when mitochondrial oxidation is limited, lactate), conserving energy as ATP and NADH. It supplies rapid ATP in every cell and is indispensable in cells without mitochondria, notably erythrocytes; its intermediates also feed biosynthetic pathways. The pathway has an energy-investment phase (steps 1–5) and an energy-payoff phase (steps 6–10).

Cellular location

All ten reactions occur in the cytosol. Glycolytic flux is especially high in exercising skeletal muscle, erythrocytes, renal medulla, brain, leukocytes, and many proliferating cells; hepatocytes use glycolysis prominently in the fed, insulinized state. Cytosolic NADH produced by glycolysis is reoxidized through the malate–aspartate or glycerol 3-phosphate shuttle under aerobic conditions, or by lactate dehydrogenase under anaerobic conditions.

Net energetics

Per glucose converted to two pyruvate, glycolysis consumes 2 ATP (steps 1 and 3) and forms 4 ATP (steps 7 and 10), for net 2 ATP by substrate-level phosphorylation. It also produces 2 NADH + 2 H+ and 2 H2O; no NADPH, FADH2, or GTP is produced. The net reaction is: glucose + 2 ADP + 2 Pi + 2 NAD+ → 2 pyruvate + 2 ATP + 2 NADH + 2 H+ + 2 H2O; under anaerobic conditions, pyruvate + NADH → lactate + NAD+ regenerates NAD+ without additional ATP.

Clinical significance

Glycolysis is the sole ATP-producing pathway available to mature erythrocytes and a major rapid-energy source in hypoxic or intensely exercising tissue. Aerobic tumor cells frequently exhibit high glycolytic flux and lactate formation despite oxygen availability (the Warburg effect), which supports anabolic precursor generation and is the basis of fluorodeoxyglucose positron-emission tomography. Pyruvate kinase deficiency reduces erythrocyte ATP, causing chronic nonspherocytic hemolytic anemia; phosphofructokinase deficiency (Tarui disease) causes exercise intolerance and hemolysis.

Recent literature

Live Europe PMC search

Europe PMC · from cache · sorted by publication date

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    Qufeng xuanbi formula attenuates HDM-induced allergic asthma by targeting the STING/HIF-1α/glycolysis axis.

    Ye W, Wang B, Ye J, Qiao Z, Guan Q, Ruan Y, Xu Y, Zhang C. · 2026-06-29

    unreviewed
  5. 5
  6. 6
    The RNA binding protein ZFP36L2 displays tissue-selective mRNA targeting in mice.

    Stephenson GS, Fleifel D, Cook JG, Laederach A, Ramos SBV. · 2026-06-21

    open access unreviewed
  7. 7
    A four-gene signature for diagnosis of acute kidney injury following kidney transplantation.

    Feng J, Zhang X, Liu J, Sun Q, Peng F, Ren T, Zou Z, Liu Q, Ding X, Jia P. · 2026-06-18

    open access unreviewed
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External claims. These come from an index outside this database and are not checked against it. Treat them as leads.