Back to discover

Protein / target

Aldo-keto reductase family 1 member C3

Encoded byAKR1C3P42330Homo sapiensSwiss-Prot
Small-molecule tractable
Druggability
Structure with Ligand
1
Research papers

Protein at a glance

Biological role

Androstan-3-alpha,17-beta-diol dehydrogenase (NAD+)

Strongest disease association

Prostatic Neoplasms

Via encoding gene AKR1C3 · Literature evidence · score 0.13

Research activity

Emerging research

1 papers · latest 2024

Derived from structured UniProt, Open Targets and literature data on this page.

Protein profile

UniProt 2026_02

Canonical identity and biological annotation from UniProt.

Function overview

Cytosolic aldo-keto reductase that catalyzes NADPH-dependent reduction of ketosteroids to hydroxysteroids.

View complete UniProt function annotation

Cytosolic aldo-keto reductase that catalyzes NADPH-dependent reduction of ketosteroids to hydroxysteroids. Displays broad substrate specificity with distinct positional and stereochemistry, primarily generating 17beta-hydroxysteroids, but also 3alpha- and 20alpha-hydroxysteroids (PubMed:10998348, PubMed:11165022, PubMed:20036328, PubMed:9415401, PubMed:9927279, PubMed:10998348, PubMed:9927279). Produces potent androgens via classical and 'backdoor'/alternative pathways. In the classical androgen metabolic pathway (biosynthesis of 5alpha-dihydrotestosterone (5alpha-DHT) via testosterone), catalyzes the reduction of delta4-androstenedione to form testosterone (PubMed:10998348, PubMed:11165022, PubMed:20036328, PubMed:9415401, PubMed:9927279). In the 'backdoor' androgen metabolic pathway (biosynthesis of 5alpha-dihydrotestosterone (5alpha-DHT) via pregnanes), reduces androsterone to 5alpha-androstane-3alpha,17beta-diol preceding 5alpha-DHT secretion (PubMed:10557352, PubMed:10998348, PubMed:9415401). Reduces 5alpha-DHT to less potent androgen 5alpha-androstane-3alpha,17beta-diol, likely regulating ligand availability for androgen receptors (PubMed:10557352, PubMed:10998348, PubMed:11165022, PubMed:14672942, PubMed:7650035, PubMed:9415401). May contribute to the metabolism of adrenal-derived androgen precursors. Reduces 11-keto-4-androstene-3,17-dione (11KA4) and 11-keto-5alpha-androstane-3,17-dione (11K-Adione) into potent androgens 11-ketotestosterone (11KT) and 11-ketodihydrotestosterone (11KDHT), respectively (PubMed:31926269). In estrogen metabolism, catalyzes the conversion of estrone to potent estrogen 17beta-estradiol (PubMed:10998348, PubMed:11165022, PubMed:20036328). Acts as a prostaglandin (PG) F2alpha synthase. Displays 11-ketoreductase and 9,11-endoperoxide reductase activities and reduces PGD2 to 11beta-PGF2alpha and PGH2 to PGF2alpha (PubMed:10622721, PubMed:11165022, PubMed:15047184, PubMed:19010934, PubMed:20036328, PubMed:7650035, PubMed:9415401, PubMed:9927279). Also displays retinaldehyde reductase activity toward 9-cis-retinal (PubMed:21851338). In vitro can efficiently catalyze bidirectional conversion between ketosteroids and hydroxysteroids using NADPH/NADP(+) or NADH/NAD(+) as cofactors. In vivo however, the reductase activity prevails since the major reducing cofactor NADPH inhibits NAD(+)-dependent oxidase activity (PubMed:11165022, PubMed:14672942). In addition, it is able to reduce in vitro various carbonyl compounds like menadione, phenanthrenequinone and nitrobenzaldehyde (By similarity)

Subcellular location

Cytoplasm
Domains and Gene Ontology detail (55)

Gene Ontology

  • Ccytoplasm
  • Ccytosol
  • Cextracellular exosome
  • Cnucleus
  • F15-hydroxyprostaglandin-D dehydrogenase (NADP+) activity
  • F3-alpha-hydroxysteroid 3-dehydrogenase [NAD(P)+] activity
  • F5-alpha-androstane-3-beta,17-beta-diol dehydrogenase (NADP+) activity
  • Falcohol dehydrogenase (NADP+) activity
  • Faldose reductase (NADPH) activity
  • Fall-trans-retinol dehydrogenase (NAD+) activity
  • Fall-trans-retinol dehydrogenase (NADP+) activity
  • Fandrostan-3-alpha,17-beta-diol dehydrogenase (NAD+) activity

323 aa · 37 kDa · 2 isoforms

Biological roles

What this protein does, drawn together from its UniProt function, Gene Ontology terms and Reactome pathways.

Cell proliferation & survivalGOMetabolic enzyme activityGO
View supporting evidence

Cell proliferation & survival

  • ·positive regulation of cell population proliferation

Metabolic enzyme activity

  • ·15-hydroxyprostaglandin-D dehydrogenase (NADP+) activity
  • ·3-alpha-hydroxysteroid 3-dehydrogenase [NAD(P)+] activity
  • ·5-alpha-androstane-3-beta,17-beta-diol dehydrogenase (NADP+) activity
  • ·alcohol dehydrogenase (NADP+) activity

Concepts derived from UniProt GO Reactome — each badge above shows which sources supported that role.

Translational evidence

Open Targets 26

Why this target matters therapeutically, strongest evidence first. Disease associations are gene-level (via the gene that encodes this protein) and open into the full confidence synthesis; the development universe, tractability and safety annotations are target-level, from Open Targets.

Strongest disease associations · via encoding gene AKR1C3

Gene-level evidence surfaced through the gene AKR1C3that encodes this protein — not a direct protein–disease relationship. Ranked by Forefront's causal-directness weighting, so genetically- and clinically-evidenced diseases lead over ones that merely share the literature.

Prostatic Neoplasms
0.20Preliminary

Somatic mutation evidence dominant · Open Targets 0.13

Familial prostate cancer
0.20Preliminary

Somatic mutation evidence dominant · Open Targets 0.13

Carcinoma, Hepatocellular
0.14Preliminary

Literature evidence dominant · Open Targets 0.11 · no direct causal or clinical evidence

Neoplasms
0.12Preliminary

Literature evidence dominant · Open Targets 0.10 · no direct causal or clinical evidence

Stomach Neoplasms
0.11Preliminary

Literature evidence dominant · Open Targets 0.09 · no direct causal or clinical evidence

View evidence synthesis (5)
Prostatic NeoplasmsPreliminary
0.20
agreement 0.040.36
Somatic mutation58%Literature42%

Open Targets aggregate 0.13 · 2 independent evidence families

Familial prostate cancerPreliminary
0.20
agreement 0.040.36
Somatic mutation58%Literature42%

Open Targets aggregate 0.13 · 2 independent evidence families

Carcinoma, HepatocellularPreliminary
0.14
agreement 0.000.34
Literature96%RNA expression4%

Open Targets aggregate 0.11 · 2 independent evidence families · no direct causal or clinical evidence

NeoplasmsPreliminary
0.12
agreement 0.000.39
Literature100%

Open Targets aggregate 0.10 · 1 independent evidence family · no direct causal or clinical evidence

Stomach NeoplasmsPreliminary
0.11
agreement 0.000.38
Literature100%

Open Targets aggregate 0.09 · 1 independent evidence family · no direct causal or clinical evidence

The evidence agreement range shows how closely the independent evidence families agree — it is not a statistical confidence interval, and nothing here is fitted to outcome data. Derived from Open Targets evidence types under Forefront weighting; the per-type scores above show the calculation.

Show all associations
Prostatic Neoplasms0.13
Familial prostate cancer0.13
Carcinoma, Hepatocellular0.11
Neoplasms0.10
Stomach Neoplasms0.09
Liver Neoplasms0.08
Small Cell Lung Carcinoma0.08
Polycystic Ovary Syndrome0.07
Prostate carcinoma0.07

Tractability

Small moleculesEmerging

Feasibility evidence (structure with ligand and high-quality ligand) — no clinical-stage drug of this modality recorded.

Protein degradersEmerging

Feasibility evidence (database ubiquitination and half-life data) — no clinical-stage drug of this modality recorded.

View underlying tractability evidence (7)
SM · Structure with LigandSM · High-Quality LigandSM · High-Quality PocketSM · Druggable FamilyPR · Database UbiquitinationPR · Half-life DataPR · Small Molecule Binder

Raw Open Targets tractability assessment buckets, by modality.

Research activity

1 papers · to 2024

Papers linked directly to this protein. This is the protein's own literature — descriptor-derived papers are kept separate below.

Most cited

Recent

Europe PMC papers linked directly to this protein.