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Ascorbate-dependent hydroxylase

Molecular classification
Enzyme, Oxidoreductase, Dioxygenase (for 2-oxoglutarate-dependent subtypes), Monooxygenase (for copper-dependent subtypes), Transmembrane enzyme (for cytochrome b561 family)
01

Overview

Ascorbate-dependent hydroxylases and oxidoreductases are a functionally diverse group of enzymes that require ascorbic acid (vitamin C) as an electron donor, typically to maintain a reduced metal cofactor (such as Fe²⁺ or Cu²⁺) within the enzyme’s active site[2][5][6]. Key families include 2-oxoglutarate-dependent dioxygenases (2-OGDDs), which hydroxylate proline or lysine residues in collagen, regulate hypoxia responses (e.g., HIF prolyl hydroxylases), and mediate epigenetic modifications (e.g., DNA and histone demethylation by TET enzymes)[3][4][6]; and copper type II ascorbate-dependent monooxygenases, like dopamine β-monooxygenase (for catecholamine synthesis)[5]. Ascorbate is essential for these reactions, and deficiency impairs enzyme activity, affecting tissue integrity, gene regulation, and metabolic pathways[2][4]. The grouping “ascorbate-dependent hydroxylases/oxidoreductases” is broad and not a single molecular entity but represents a mechanistic category containing several distinct, clinically relevant enzymes.\n\nNote: \n- The term "ascorbate-dependent hydroxylases/oxidoreductases" is not a canonical molecular entity but describes a class of enzymes sharing this chemical dependence. For specific entries, use precise enzyme names (e.g., "Prolyl 4-hydroxylase," "TET1") for structured databases. This entry is too broad for most therapeutic target databases and should be split into sub-entities where possible.\n- Many but not all of these enzymes are considered therapeutic targets; some have direct inhibitors or modulators in clinical use or development, especially HIF-prolyl hydroxylases and TET demethylases[6].

Other names
Ascorbate-dependent oxidoreductase2-oxoglutarate-dependent dioxygenase (for a major subclass)Copper type II, ascorbate-dependent monooxygenase (for a subclass)Prolyl hydroxylase, lysyl hydroxylase, dopamine β-hydroxylase, ascorbate peroxidase, cytochrome b561 (examples of family members, not general aliases)
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Mechanism of action

Ascorbate donates electrons to maintain enzyme active-site metals in reduced state, enabling hydroxylation or monooxygenation of substrates[2][5][6]\nAscorbate can act as a reducing cofactor for the Fe(II) or Cu(II) center, preventing oxidative inactivation of the enzyme[5][6]\nFor HIF-PHD inhibitors: stabilize HIF by blocking its hydroxylation and thus proteasomal degradation[6]

03

Biological functions

Collagen biosynthesisRegulation of gene expression (via DNA/histone demethylation)Neurotransmitter biosynthesis (e.g., dopamine to norepinephrine)Photoprotection in plants (violaxanthin de-epoxidase)Antioxidant defense/redox homeostasisIron metabolism and absorption (iron reduction for uptake)Hypoxia sensing (HIF hydroxylases)
04

Disease associations

Cancer (e.g., through TET/histone demethylase dysregulation)Connective tissue disorders (e.g., scurvy from impaired collagen biosynthesis)Cardiovascular disease (collagen dysfunction)Neurological disorders (dopamine β-hydroxylase deficiency)Developmental defects (via epigenetic dysregulation)Other (redox balance disorders, rare inborn errors)
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Safety considerations

Ascorbate deficiency (scurvy, impaired tissue formation, epigenetic and developmental defects)Off-target inhibition of family members (e.g., prolyl hydroxylase inhibitors might impact collagen modification)Redox imbalance or oxidative stress from inappropriate ascorbate supplementation
06

Interacting drugs

Ascorbic acid (vitamin C) (cofactor)

2 more in the full profile.

07

Biomarkers

Serum ascorbate levels (general functional capacity indicator)Collagen hydroxylation status (for connective tissue disorders)5-hydroxymethylcytosine (5hmC) (TET activity biomarker in epigenetic studies)Hydroxyproline (marker of collagen formation/function)

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