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PW-006 Carbohydrate Metabolism Anabolic / reducing power unreviewed

Pentose Phosphate Pathway (Oxidative and Non-oxidative phases)

Glucose-6-phosphate NADPH + ribose-5-phosphate (or glycolytic intermediates)
Compartment
Cytosol
Main tissue
Liver, adrenal cortex, RBC, lactating breast, gonads
Rate-limiting
Glucose-6-phosphate dehydrogenase (G6PD)
Steps
8

Reaction steps

In source order, 8 total

showing 1–8
  1. 1

    Glucose-6-phosphate + NADP+ → 6-phosphoglucono-delta-lactone + NADPH + H+

    Notes

    Glucose-6-phosphate dehydrogenase (G6PD) uses NADP+ and is the first, rate-limiting, committed, and irreversible oxidative PPP reaction. It generates the first NADPH and is stimulated by a high NADP+/NADPH ratio.

  2. 2

    6-Phosphoglucono-delta-lactone + H2O → 6-phosphogluconate

    Notes

    6-Phosphogluconolactonase hydrolyzes the lactone using water. This reaction is not a redox step and is effectively irreversible under cellular conditions.

  3. 3

    6-Phosphogluconate + NADP+ → ribulose-5-phosphate + CO2 + NADPH + H+

    Notes

    6-Phosphogluconate dehydrogenase requires NADP+ and a divalent cation such as Mg2+ or Mn2+. Oxidative decarboxylation yields the second NADPH; this is the second irreversible reaction of the oxidative phase.

  4. 4

    Ribulose-5-phosphate ↔ ribose-5-phosphate

    Notes

    Ribose-5-phosphate isomerase reversibly converts the ketopentose to the aldopentose needed for phosphoribosyl pyrophosphate and nucleotide synthesis. No nucleotide cofactor is used.

  5. 5

    Ribulose-5-phosphate ↔ xylulose-5-phosphate

    Notes

    Ribulose-5-phosphate 3-epimerase reversibly epimerizes carbon 3 to form xylulose-5-phosphate. A divalent metal ion is required.

  6. 6

    Xylulose-5-phosphate + ribose-5-phosphate → glyceraldehyde-3-phosphate + sedoheptulose-7-phosphate

    Notes

    Transketolase transfers a two-carbon glycolaldehyde unit and requires thiamine pyrophosphate (TPP) and Mg2+. This reversible non-oxidative reaction forms a three-carbon and a seven-carbon sugar phosphate.

  7. 7

    Sedoheptulose-7-phosphate + glyceraldehyde-3-phosphate → fructose-6-phosphate + erythrose-4-phosphate

    Notes

    Transaldolase transfers a three-carbon dihydroxyacetone unit through a Schiff-base lysine intermediate; no TPP is required. This reversible reaction yields a glycolytic hexose phosphate and a tetrose phosphate.

  8. 8

    Xylulose-5-phosphate + erythrose-4-phosphate → glyceraldehyde-3-phosphate + fructose-6-phosphate

    Notes

    A second transketolase reaction, again requiring TPP and Mg2+, transfers two carbons to form another fructose-6-phosphate and glyceraldehyde-3-phosphate. The reversible non-oxidative phase therefore converts three pentose phosphates into two fructose-6-phosphate and one glyceraldehyde-3-phosphate.

Showing all 8 steps.

Regulation

What speeds each enzyme up and what slows it down

Glucose-6-phosphate dehydrogenase

Accelerated by

NADP+, glucose-6-phosphate; increased NADP+/NADPH ratio

Inhibited by

NADPH

Hormonal

Insulin induces expression in liver and adipose tissue during lipogenesis

6-Phosphogluconate dehydrogenase

Accelerated by

NADP+, 6-phosphogluconate

Inhibited by

NADPH (product/redox-state dependent)

Hormonal

Insulin can increase lipogenic PPP enzyme expression

Transketolase

Accelerated by

Substrate availability; adequate TPP

Inhibited by

Thiamine deficiency limits activity

Hormonal

No major acute direct hormonal control; flux follows pentose and glycolytic-intermediate demand

Overview

The pentose phosphate pathway (PPP; hexose monophosphate shunt) diverts glucose-6-phosphate to generate NADPH and pentose phosphates. Its oxidative phase is irreversible and produces NADPH; its non-oxidative phase reversibly rearranges carbon skeletons to connect pentoses with glycolytic intermediates. NADPH supports reductive biosynthesis and antioxidant defense, whereas ribose-5-phosphate is required for nucleotide and nucleic-acid synthesis.

Cellular location

All PPP reactions occur in the cytosol. Flux is high in liver, adipose tissue, lactating mammary gland, adrenal cortex, gonads, and other tissues undertaking fatty-acid, cholesterol, or steroid synthesis, as well as in erythrocytes where NADPH maintains reduced glutathione. The pathway is also active in proliferating cells that need ribose-5-phosphate.

Net energetics

The oxidative phase per glucose-6-phosphate is: glucose-6-phosphate + 2 NADP+ + H2O → ribulose-5-phosphate + CO2 + 2 NADPH + 2 H+. It produces 2 NADPH, releases one CO2, and neither consumes nor produces ATP, NADH, FADH2, or GTP. The non-oxidative phase produces no net redox equivalents or ATP; for three pentose phosphates, its net rearrangement is 3 pentose-5-phosphate ↔ 2 fructose-6-phosphate + glyceraldehyde-3-phosphate.

Clinical significance

NADPH is needed for fatty-acid synthesis, cholesterol/steroid synthesis, cytochrome P450 reactions, nitric-oxide synthesis, phagocyte respiratory burst, and maintenance of reduced glutathione by glutathione reductase. Erythrocytes depend strongly on PPP-derived NADPH because they have no mitochondria and must neutralize oxidants through the glutathione system. G6PD deficiency, the most common human enzyme deficiency, predisposes to episodic hemolytic anemia after oxidant drugs, infection, or fava-bean exposure; transketolase activity is reduced in thiamine deficiency and may contribute to neurologic complications of alcohol-use disorder.

Recent literature

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  2. 2
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    Ling Y, Gu L, Feng S, Dong M, Li L, Zhang X, Zhang X, Ma R, Chen M, Tong L. · 2026-06-11

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  4. 4
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    Szurek EA, Ngo VL, Abo H, Cebula A, Chassaing B, Howard RA, Hart M, Hori S, Weaver CT, Gewirtz AT, Ignatowicz… · 2026-05-24

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