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Structure and inhibition mechanisms of Mycobacterium tuberculosis essential transporter efflux protein A.

Publication ,  Journal Article
Khandelwal, NK; Gupta, M; Gomez, JE; Barkho, S; Guan, Z; Eng, AY; Kawate, T; Balasubramani, SG; Sali, A; Hung, DT; Stroud, RM
Published in: bioRxiv
September 5, 2024

A broad chemical genetics screen in Mycobacterium tuberculosis (Mtb) to identify inhibitors of established or previously untapped targets for therapeutic development yielded compounds (BRD-8000.3 and BRD-9327) that inhibit the essential efflux pump EfpA. To understand the mechanisms of inhibition by these compounds, we determined the structures of EfpA with inhibitors bound at 2.7 - 3.4 Å resolution. Our structures reveal different mechanisms of inhibition for the two inhibitors. BRD-8000.3 binds in a tunnel making contact with the lipid bilayer and extending toward the central cavity to displace the fatty acid chain of a lipid molecule bound in the apo structure, suggesting its blocking of an access route for a natural lipidic substrate, in contrast to its uncompetitive mechanism for the small molecule substrate ethidium bromide which likely enters through an alternative tunnel. Meanwhile, BRD-9327 binds in the outer vestibule without complete blockade of the substrate path to the outside, suggesting its possible inhibition of the dynamical motion necessary for "alternate access" to the two different sides of the membrane, as is characteristic of major facilitator superfamily (MFS) transporters. Both inhibitors may have a role in inhibiting the "alternate access" mechanism that could account for the uncompetitive nature of their efflux of some substrates. Our results explain the basis of the synergy of these inhibitors and their potential for combination in a multi drug strategy for anti-tuberculosis therapy. They also potentially point to a possible function for this essential efflux pump as a lipid transporter. The structures provide a foundation for rational modification of these inhibitors to increase potency.

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Published In

bioRxiv

DOI

EISSN

2692-8205

Publication Date

September 5, 2024

Location

United States
 

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Khandelwal, N. K., Gupta, M., Gomez, J. E., Barkho, S., Guan, Z., Eng, A. Y., … Stroud, R. M. (2024). Structure and inhibition mechanisms of Mycobacterium tuberculosis essential transporter efflux protein A. BioRxiv. https://doi.org/10.1101/2024.09.04.611325
Khandelwal, Nitesh Kumar, Meghna Gupta, James E. Gomez, Sulyman Barkho, Ziqiang Guan, Ashley Y. Eng, Tomo Kawate, et al. “Structure and inhibition mechanisms of Mycobacterium tuberculosis essential transporter efflux protein A.BioRxiv, September 5, 2024. https://doi.org/10.1101/2024.09.04.611325.
Khandelwal NK, Gupta M, Gomez JE, Barkho S, Guan Z, Eng AY, et al. Structure and inhibition mechanisms of Mycobacterium tuberculosis essential transporter efflux protein A. bioRxiv. 2024 Sep 5;
Khandelwal, Nitesh Kumar, et al. “Structure and inhibition mechanisms of Mycobacterium tuberculosis essential transporter efflux protein A.BioRxiv, Sept. 2024. Pubmed, doi:10.1101/2024.09.04.611325.
Khandelwal NK, Gupta M, Gomez JE, Barkho S, Guan Z, Eng AY, Kawate T, Balasubramani SG, Sali A, Hung DT, Stroud RM. Structure and inhibition mechanisms of Mycobacterium tuberculosis essential transporter efflux protein A. bioRxiv. 2024 Sep 5;

Published In

bioRxiv

DOI

EISSN

2692-8205

Publication Date

September 5, 2024

Location

United States