Target intelligence / Profile preview

N-acetyltransferase (NAT)

Target
NAT
Molecular classification
Enzyme, Transferase, GCN5-related N-acetyltransferase superfamily (GNAT superfamily), Cytosolic enzyme
01

Overview

N-acetyltransferases (NATs) are a family of cytosolic enzymes that catalyze the transfer of acetyl groups from acetyl-CoA to arylamines, arylhydroxylamines, and arylhydrazines, contributing to the biotransformation and detoxification of a wide range of drugs and environmental chemicals (xenobiotics)[1][2]. The two primary human isoforms, N-acetyltransferase 1 (NAT1) and N-acetyltransferase 2 (NAT2), differ in substrate specificity and tissue distribution[1]. NAT2 is well-known in pharmacogenetics because its genetic polymorphisms result in different acetylator phenotypes, which impact individual susceptibility to drug toxicity and some cancers, especially when exposed to aromatic and heterocyclic amines (such as those in cigarette smoke and certain drugs)[1][2]. Variants in NAT genes have also been genetically associated with insulin resistance and possibly diabetes[1]. In addition to drug metabolism, specific NAT enzymes (such as arylalkylamine N-acetyltransferase in the brain) are crucial for the synthesis of important neurotransmitters like melatonin, showing additional roles in circadian rhythm regulation[3]. Due to its diversity and the existence of multiple homologs and pseudogenes, "N-acetyltransferase" should be specified by isoenzyme (such as NAT1, NAT2, or aaNAT) for precise targeting and clinical interpretation[1][2][3].

Other names
arylamine N-acetyltransferasearylalkylamine N-acetyltransferase (aaNAT)NAT1NAT2GNAT (GCN5-related N-acetyltransferase)acetyltransferasetimezyme (for aaNAT in circadian function)
02

Mechanism of action

Acetylation/inactivation of drugs and xenobiotics (phase II metabolism); Modulation of drug and metabolite toxicity; Metabolism of endogenous amines and hormones (e.g., melatonin from serotonin via aaNAT)

03

Biological functions

Drug metabolismAcetylation of xenobioticsMetabolism of arylamines and arylhydrazinesEndogenous metabolism (e.g., folate degradation by NAT1)Melatonin synthesis (for arylalkylamine N-acetyltransferase/aaNAT)Circadian regulation (for aaNAT/timezyme)Neurotransmitter metabolism (especially in invertebrates and insects)
04

Disease associations

Cancer (especially bladder, breast, and other cancers linked to NAT2 polymorphisms)Pharmacogenetic variation in drug response (notably isoniazid and hydralazine)Diabetes and insulin resistance (NAT2 associated marker)Other: Possible role in birth defects and other diseases via metabolic polymorphisms
05

Safety considerations

Drug toxicity in slow acetylators (e.g., isoniazid-induced neuropathy or hydralazine-induced lupus)Carcinogenesis risk with inefficient detoxification of aromatic amines (higher in slow acetylators)Polymorphic variability complicates dosing and adverse reaction risk
06

Interacting drugs

Isoniazid (anti-tubercular)

11 more in the full profile.

07

Biomarkers

NAT2 acetylator phenotype (slow, intermediate, rapid) for drug selection/dose adjustmentGenetic polymorphisms (NAT1, NAT2 genotyping)Possibly NAT1 overexpression (as a breast cancer biomarker)

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