A small-molecule inhibitor of BamA impervious to efflux and the outer membrane permeability barrier

Author:

Hart Elizabeth M.,Mitchell Angela M.,Konovalova AnnaORCID,Grabowicz Marcin,Sheng Jessica,Han Xiaoqing,Rodriguez-Rivera Frances P.,Schwaid Adam G.,Malinverni Juliana C.,Balibar Carl J.,Bodea Smaranda,Si Qian,Wang Hao,Homsher Michelle F.,Painter Ronald E.,Ogawa Anthony K.,Sutterlin Holly,Roemer Terry,Black Todd A.,Rothman Deborah M.,Walker Scott S.,Silhavy Thomas J.

Abstract

The development of new antimicrobial drugs is a priority to combat the increasing spread of multidrug-resistant bacteria. This development is especially problematic in gram-negative bacteria due to the outer membrane (OM) permeability barrier and multidrug efflux pumps. Therefore, we screened for compounds that target essential, nonredundant, surface-exposed processes in gram-negative bacteria. We identified a compound, MRL-494, that inhibits assembly of OM proteins (OMPs) by the β-barrel assembly machine (BAM complex). The BAM complex contains one essential surface-exposed protein, BamA. We constructed abamAmutagenesis library, screened for resistance to MRL-494, and identified the mutationbamAE470K. BamAE470Krestores OMP biogenesis in the presence of MRL-494. The mutant protein has both altered conformation and activity, suggesting it could either inhibit MRL-494 binding or allow BamA to function in the presence of MRL-494. By cellular thermal shift assay (CETSA), we determined that MRL-494 stabilizes BamA and BamAE470Kfrom thermally induced aggregation, indicating direct or proximal binding to both BamA and BamAE470K. Thus, it is the altered activity of BamAE470Kresponsible for resistance to MRL-494. Strikingly, MRL-494 possesses a second mechanism of action that kills gram-positive organisms. In microbes lacking an OM, MRL-494 lethally disrupts the cytoplasmic membrane. We suggest that the compound cannot disrupt the cytoplasmic membrane of gram-negative bacteria because it cannot penetrate the OM. Instead, MRL-494 inhibits OMP biogenesis from outside the OM by targeting BamA. The identification of a small molecule that inhibits OMP biogenesis at the cell surface represents a distinct class of antibacterial agents.

Funder

HHS | NIH | National Institute of General Medical Sciences

Merck

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

Reference59 articles.

1. World Health Organization , Antimicrobial Resistance: Global Report on Surveillance (World Health Organization, Geneva, Switzerland, 2014), pp. xxii–7.

2. The concept of an ideal antibiotic: Implications for drug design;Gajdács;Molecules,2019

3. The Bacterial Cell Envelope

4. Size restriction on peptide utilization in Escherichia coli;Payne;J. Biol. Chem.,1968

5. Molecular Basis of Bacterial Outer Membrane Permeability Revisited

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