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Deciphering the biosynthesis of a novel lipid in Mycobacterium tuberculosis expands the known roles of the nitroreductase superfamily

Mycobacterium tuberculosis’s (Mtb) success as a pathogen is due in part to its sophisticated lipid metabolic programs, both catabolic and biosynthetic. Several of Mtb lipids have specific roles in pathogenesis, but the identity and roles of many are unknown. Here, we demonstrated that the tyz gene c...

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Autores principales: Grigg, Jason C., Copp, Janine N., Krekhno, Jessica M.C., Liu, Jie, Ibrahimova, Aygun, Eltis, Lindsay D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10404671/
https://www.ncbi.nlm.nih.gov/pubmed/37328106
http://dx.doi.org/10.1016/j.jbc.2023.104924
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author Grigg, Jason C.
Copp, Janine N.
Krekhno, Jessica M.C.
Liu, Jie
Ibrahimova, Aygun
Eltis, Lindsay D.
author_facet Grigg, Jason C.
Copp, Janine N.
Krekhno, Jessica M.C.
Liu, Jie
Ibrahimova, Aygun
Eltis, Lindsay D.
author_sort Grigg, Jason C.
collection PubMed
description Mycobacterium tuberculosis’s (Mtb) success as a pathogen is due in part to its sophisticated lipid metabolic programs, both catabolic and biosynthetic. Several of Mtb lipids have specific roles in pathogenesis, but the identity and roles of many are unknown. Here, we demonstrated that the tyz gene cluster in Mtb, previously implicated in resistance to oxidative stress and survival in macrophages, encodes the biosynthesis of acyl-oxazolones. Heterologous expression of tyzA (Rv2336), tyzB (Rv2338c) and tyzC (Rv2337c) resulted in the biosynthesis of C(12:0)-tyrazolone as the predominant compound, and the C(12:0)-tyrazolone was identified in Mtb lipid extracts. TyzA catalyzed the N-acylation of l-amino acids, with highest specificity for l-Tyr and l-Phe and lauroyl-CoA (k(cat)/K(M) = 5.9 ± 0.8 × 10(3) M(−1)s(−1)). In cell extracts, TyzC, a flavin-dependent oxidase (FDO) of the nitroreductase (NTR) superfamily, catalyzed the O(2)-dependent desaturation of the N-acyl-L-Tyr produced by TyzA, while TyzB, a ThiF homolog, catalyzed its ATP-dependent cyclization. The substrate preference of TyzB and TyzC appear to determine the identity of the acyl-oxazolone. Phylogenetic analyses revealed that the NTR superfamily includes a large number of broadly distributed FDOs, including five in Mtb that likely catalyze the desaturation of lipid species. Finally, TCA1, a molecule with activity against drug-resistant and persistent tuberculosis, failed to inhibit the cyclization activity of TyzB, the proposed secondary target of TCA1. Overall, this study identifies a novel class of Mtb lipids, clarifies the role of a potential drug target, and expands our understanding of the NTR superfamily.
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spelling pubmed-104046712023-08-08 Deciphering the biosynthesis of a novel lipid in Mycobacterium tuberculosis expands the known roles of the nitroreductase superfamily Grigg, Jason C. Copp, Janine N. Krekhno, Jessica M.C. Liu, Jie Ibrahimova, Aygun Eltis, Lindsay D. J Biol Chem Research Article Mycobacterium tuberculosis’s (Mtb) success as a pathogen is due in part to its sophisticated lipid metabolic programs, both catabolic and biosynthetic. Several of Mtb lipids have specific roles in pathogenesis, but the identity and roles of many are unknown. Here, we demonstrated that the tyz gene cluster in Mtb, previously implicated in resistance to oxidative stress and survival in macrophages, encodes the biosynthesis of acyl-oxazolones. Heterologous expression of tyzA (Rv2336), tyzB (Rv2338c) and tyzC (Rv2337c) resulted in the biosynthesis of C(12:0)-tyrazolone as the predominant compound, and the C(12:0)-tyrazolone was identified in Mtb lipid extracts. TyzA catalyzed the N-acylation of l-amino acids, with highest specificity for l-Tyr and l-Phe and lauroyl-CoA (k(cat)/K(M) = 5.9 ± 0.8 × 10(3) M(−1)s(−1)). In cell extracts, TyzC, a flavin-dependent oxidase (FDO) of the nitroreductase (NTR) superfamily, catalyzed the O(2)-dependent desaturation of the N-acyl-L-Tyr produced by TyzA, while TyzB, a ThiF homolog, catalyzed its ATP-dependent cyclization. The substrate preference of TyzB and TyzC appear to determine the identity of the acyl-oxazolone. Phylogenetic analyses revealed that the NTR superfamily includes a large number of broadly distributed FDOs, including five in Mtb that likely catalyze the desaturation of lipid species. Finally, TCA1, a molecule with activity against drug-resistant and persistent tuberculosis, failed to inhibit the cyclization activity of TyzB, the proposed secondary target of TCA1. Overall, this study identifies a novel class of Mtb lipids, clarifies the role of a potential drug target, and expands our understanding of the NTR superfamily. American Society for Biochemistry and Molecular Biology 2023-06-14 /pmc/articles/PMC10404671/ /pubmed/37328106 http://dx.doi.org/10.1016/j.jbc.2023.104924 Text en © 2023 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Grigg, Jason C.
Copp, Janine N.
Krekhno, Jessica M.C.
Liu, Jie
Ibrahimova, Aygun
Eltis, Lindsay D.
Deciphering the biosynthesis of a novel lipid in Mycobacterium tuberculosis expands the known roles of the nitroreductase superfamily
title Deciphering the biosynthesis of a novel lipid in Mycobacterium tuberculosis expands the known roles of the nitroreductase superfamily
title_full Deciphering the biosynthesis of a novel lipid in Mycobacterium tuberculosis expands the known roles of the nitroreductase superfamily
title_fullStr Deciphering the biosynthesis of a novel lipid in Mycobacterium tuberculosis expands the known roles of the nitroreductase superfamily
title_full_unstemmed Deciphering the biosynthesis of a novel lipid in Mycobacterium tuberculosis expands the known roles of the nitroreductase superfamily
title_short Deciphering the biosynthesis of a novel lipid in Mycobacterium tuberculosis expands the known roles of the nitroreductase superfamily
title_sort deciphering the biosynthesis of a novel lipid in mycobacterium tuberculosis expands the known roles of the nitroreductase superfamily
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10404671/
https://www.ncbi.nlm.nih.gov/pubmed/37328106
http://dx.doi.org/10.1016/j.jbc.2023.104924
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