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MS
PW-008 Carbohydrate Metabolism Catabolic unreviewed

Galactose Metabolism

Lactose / galactose Glucose-6-phosphate (via UDP-glucose)
Compartment
Cytosol
Main tissue
Liver, RBC
Rate-limiting
Galactose-1-phosphate uridylyltransferase (GALT)
Steps
7

Reaction steps

In source order, 7 total

showing 1–7
  1. 1

    Lactose + H2O → glucose + galactose

    Notes

    Brush-border lactase-phlorizin hydrolase (beta-galactosidase) hydrolyzes dietary lactose in the small-intestinal lumen/brush border. This digestive precursor reaction requires water; lactase deficiency impairs galactose generation from lactose but is distinct from inherited Leloir-pathway disorders.

  2. 2

    Alpha-D-galactose ↔ beta-D-galactose

    Notes

    Galactose mutarotase (aldose 1-epimerase; GALM) interconverts galactose anomers so that alpha-D-galactose is available for galactokinase. No ATP or redox cofactor is required.

  3. 3

    Galactose + ATP → galactose-1-phosphate + ADP

    Notes

    Galactokinase (GALK1) requires ATP and Mg2+ and phosphorylates galactose at carbon 1. This is effectively irreversible and traps galactose intracellularly.

  4. 4

    Galactose-1-phosphate + UDP-glucose → glucose-1-phosphate + UDP-galactose

    Notes

    Galactose-1-phosphate uridylyltransferase (GALT) exchanges uridyl groups. This central Leloir reaction requires the activated-sugar substrate UDP-glucose; it is reversible, but physiologic flux is directed toward glucose-1-phosphate formation. It is the critical/committed processing step for galactose-1-phosphate.

  5. 5

    UDP-galactose ↔ UDP-glucose

    Notes

    UDP-galactose 4-epimerase (GALE) requires tightly bound NAD+ as a catalytic cofactor and reversibly epimerizes carbon 4. It regenerates UDP-glucose for step 4 and also supports UDP-galactose production for glycosylation reactions.

  6. 6

    Glucose-1-phosphate ↔ glucose-6-phosphate

    Phosphoglucomutase ST-0058 Reversible
    Notes

    Phosphoglucomutase reversibly forms glucose-6-phosphate through a glucose-1,6-bisphosphate intermediate. The product can enter glycolysis, glycogenesis, or, in liver, be converted to free glucose by glucose-6-phosphatase.

  7. 7

    Galactose + NADPH + H+ → galactitol + NADP+

    Aldose reductase (AKR1B1) 1.1.1.21 ST-0059 Irreversible/directional NADP+ NADPH
    Notes

    Aldose reductase reduces excess galactose to galactitol using NADPH. This is a side pathway rather than a normal energy-yielding Leloir step; galactitol is poorly metabolized and can accumulate, particularly in the lens.

Showing all 7 steps.

Regulation

What speeds each enzyme up and what slows it down

Galactokinase

Accelerated by

Galactose availability

Inhibited by

No established major physiological allosteric inhibitor

Hormonal

No major acute hormonal control

Galactose-1-phosphate uridylyltransferase

Accelerated by

Galactose-1-phosphate and UDP-glucose availability

Inhibited by

Product accumulation; inherited loss causes substrate trapping

Hormonal

No major acute hormonal control

UDP-galactose 4-epimerase

Accelerated by

UDP-galactose/UDP-glucose demand

Inhibited by

Severe NAD+ cofactor or enzyme deficiency

Hormonal

No dominant acute hormonal control; flux reflects glycosylation and galactose load

Overview

Galactose metabolism converts dietary galactose, principally derived from lactose, into glucose-1-phosphate through the Leloir pathway. This permits galactose carbon to enter glycogen metabolism, glycolysis, or hepatic glucose production. Galactose is also required in activated forms for synthesis of glycoproteins, glycolipids, and proteoglycans.

Cellular location

The Leloir pathway occurs in the cytosol, particularly in liver, but is present in many tissues. Intestinal lactase first hydrolyzes lactose at the brush border to glucose and galactose; absorbed galactose travels through portal blood to liver. The lens is clinically important because aldose reductase can reduce excess galactose to galactitol, which accumulates in this osmotically sensitive tissue.

Net energetics

Conversion of galactose to glucose-6-phosphate through the Leloir pathway consumes 1 ATP at galactokinase and has no direct net production of NADH, NADPH, FADH2, or GTP; UDP-glucose is regenerated by GALE during catalytic cycling. When the resulting glucose-6-phosphate enters glycolysis, it bypasses the hexokinase ATP cost, so conversion to two pyruvate yields net 3 ATP and 2 NADH per galactose (assuming no additional diversion). Reduction of galactose to galactitol consumes NADPH and does not generate ATP.

Clinical significance

The Leloir pathway makes galactose nutritionally usable while maintaining UDP-galactose for glycosylation, so defects can affect both energy metabolism and protein/lipid glycosylation. Classic galactosemia due to GALT deficiency causes accumulation of galactose-1-phosphate and galactitol, with neonatal vomiting, jaundice, hepatomegaly, failure to thrive, *Escherichia coli* sepsis risk, cataracts, and later neurodevelopmental or ovarian complications without early dietary restriction. Galactokinase deficiency more selectively causes infantile cataracts from galactitol accumulation, whereas GALE deficiency ranges from benign peripheral forms to severe generalized disease. Lipid metabolism governs the synthesis, storage, breakdown, and transport of fatty acids, triacylglycerols, cholesterol, and lipoproteins, providing the body’s most energy-dense fuel reserve and the structural and signaling lipids required by every cell membrane. These pathways interconvert with carbohydrate and amino acid metabolism through shared intermediates such as acetyl-CoA, and their dysregulation contributes to obesity, atherosclerosis, and metabolic syndrome. Understanding lipid handling is therefore essential to both basic physiology and cardiovascular medicine.

Recent literature

Live Europe PMC search

Europe PMC · from cache · sorted by publication date

  1. 1
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  3. 3
    Metabolic engineering of <i>Saccharomyces cerevisiae</i> for co-production of ergothioneine, salidroside and gadusol.

    Zhang L, Xiao S, Wang D, Zhang P, Xu R, Hu L, Kang Z. · 2026-06-10

    open access unreviewed
  4. 4
  5. 5
    Monochromatic light reprograms transcription, metabolism, and rhizosphere microbial communities in <i>Salvia miltiorrhiza</i>.

    Chen X, Ding S, Tang H, Yang Q, Yuan L, Zhang A, Li Y, Wang Q, Yan X, Wang Z, Wang M, Zheng Z. · 2026-06-15

    open access unreviewed
  6. 6
    Contrasting dietary patterns remodel gut microbial function and generate multi-omic signatures associated with cardiometabolic markers.

    Stanford J, Hoedt EC, Gómez-Martín M, Clarke ED, Duncanson K, Burrows T, Collins CE. · 2026-06-11

    open access unreviewed
  7. 7
    <i>Limousia</i> bacteria encode mucinolysome for mucin utilization in animal gut microbiomes.

    Akresi JE, Do TVT, Cui Z, Shanmugam NRS, Moraïs S, Mizrahi I, Bayer EA, Auchtung JM, Yin Y. · 2026-03-17

    open access unreviewed
  8. 8
  9. 9
    Melatonin-enabled omics: understanding plant responses to single and combined abiotic stresses for climate-smart agriculture.

    Raza A, Li Y, Charagh S, Guo C, Zhao M, Hu Z. · 2026-01-27

    cited 5× open access unreviewed
  10. 10
    Disparate plasma metabolomic profiles in late-life depression and amnestic mild cognitive impairment: A <sup>1</sup>H NMR metabolomics study.

    Gao Y, Hu JZ, Zhao MY, Wang D, Xue KY, Du XZ, Wang X, Hu XD, Li JH, Zhang JH, Liu S. · 2026-06-04

    unreviewed

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