Target intelligence / Profile preview

Mycobacterium tuberculosis enoyl-[acyl-carrier-protein] reductase (InhA) (InhA)

Target
InhA
Molecular classification
Enzyme, Oxidoreductase, Short-chain dehydrogenase/reductase (SDR) family
01

Overview

Mycobacterium tuberculosis enoyl-[acyl-carrier-protein] reductase, commonly known as InhA, is a vital enzyme within the Type II fatty acid biosynthesis (FAS-II) system of M. tuberculosis [1]. It catalyzes the NADH-dependent reduction of long-chain trans-2-enoyl-acyl carrier proteins, which is a rate-limiting step in the synthesis of mycolic acids [1, 3]. Mycolic acids are high-molecular-weight alpha-branched, beta-hydroxy fatty acids that constitute a major and essential component of the mycobacterial cell wall, providing a permeability barrier against many antibiotics [3, 4]. InhA is the primary target for the frontline antibiotic isoniazid (INH) and the second-line drug ethionamide [2, 4]. These drugs act as prodrugs that, upon activation by bacterial enzymes like KatG or EthA, form covalent adducts with NAD; these adducts then bind to the active site of InhA with high affinity, inhibiting its activity and leading to bacterial cell death [3, 4]. Due to its essentiality and the lack of a human homolog, InhA remains a focal point for the development of new antitubercular agents, especially those that can bypass the need for activation to overcome resistance [4]. Sources: [1] UniProt (P9WGR1); [2] PubChem (Isoniazid); [3] PubMed (PMID: 7832855); [4] PubMed (PMID: 28254952).

Other names
InhAEnoyl-ACP reductaseNADH-dependent enoyl-ACP reductase2-trans-enoyl-ACP reductaseFabI
02

Mechanism of action

Inhibition of the NADH-dependent reduction of long-chain trans-2-enoyl-ACP substrates in the FAS-II pathway, leading to the disruption of mycolic acid biosynthesis and bacterial cell wall collapse.

03

Biological functions

Fatty acid biosynthesisMycolic acid synthesisCell wall assembly
04

Disease associations

InfectionTuberculosis
05

Safety considerations

Development of multidrug-resistant tuberculosis (MDR-TB)Cross-resistance between isoniazid and ethionamideHepatotoxicity associated with prodrug activationNarrow therapeutic window for certain inhibitors
06

Interacting drugs

Isoniazid

4 more in the full profile.

07

Biomarkers

inhA promoter mutationsinhA structural gene mutationsKatG mutationsMycolic acid levels

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