Targeting Mycobacterium tuberculosis response to environmental cues for the development of effective antitubercular drugs

Lavin, Richard C. and Johnson, Calvin and Ahn, Yong-Mo and Kremiller, Kyle M. and Sherwood, Matthew and Patel, Jimmy S. and Pan, Yan and Russo, Riccardo and MacGilvary, Nathan J. and Giacalone, David and Kevorkian, Yuzo L. and Zimmerman, Matthew D. and Glickman, J. Fraser and Freundlich, Joel S. and Tan, Shumin and Khosla, Chaitan (2021) Targeting Mycobacterium tuberculosis response to environmental cues for the development of effective antitubercular drugs. PLOS Biology, 19 (7). e3001355. ISSN 1545-7885

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Abstract

Sensing and response to environmental cues, such as pH and chloride (Cl−), is critical in enabling Mycobacterium tuberculosis (Mtb) colonization of its host. Utilizing a fluorescent reporter Mtb strain in a chemical screen, we have identified compounds that dysregulate Mtb response to high Cl− levels, with a subset of the hits also inhibiting Mtb growth in host macrophages. Structure–activity relationship studies on the hit compound “C6,” or 2-(4-((2-(ethylthio)pyrimidin-5-yl)methyl)piperazin-1-yl)benzo[d]oxazole, demonstrated a correlation between compound perturbation of Mtb Cl− response and inhibition of bacterial growth in macrophages. C6 accumulated in both bacterial and host cells, and inhibited Mtb growth in cholesterol media, but not in rich media. Subsequent examination of the Cl− response of Mtb revealed an intriguing link with bacterial growth in cholesterol, with increased transcription of several Cl−-responsive genes in the simultaneous presence of cholesterol and high external Cl− concentration, versus transcript levels observed during exposure to high external Cl− concentration alone. Strikingly, oral administration of C6 was able to inhibit Mtb growth in vivo in a C3HeB/FeJ murine infection model. Our work illustrates how Mtb response to environmental cues can intersect with its metabolism and be exploited in antitubercular drug discovery.

Item Type: Article
Subjects: Euro Archives > Biological Science
Depositing User: Managing Editor
Date Deposited: 16 Jan 2023 06:13
Last Modified: 02 Jun 2024 05:10
URI: http://publish7promo.com/id/eprint/1030

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