Development of a natural product optimization strategy for inhibitors against MraY, a promising antibacterial target

Author:

Yamamoto KazukiORCID,Sato Toyotaka,Hao AiliORCID,Asao Kenta,Kaguchi RintaroORCID,Kusaka Shintaro,Ruddarraju Radhakrishnam Raju,Kazamori Daichi,Seo Kiki,Takahashi Satoshi,Horiuchi Motohiro,Yokota Shin-ichiORCID,Lee Seok-YongORCID,Ichikawa SatoshiORCID

Abstract

AbstractMraY (phospho-N-acetylmuramoyl-pentapeptide-transferase) inhibitory natural products are attractive molecules as candidates for a new class of antibacterial agents to combat antimicrobial-resistant bacteria. Structural optimization of these natural products is required to improve their drug-like properties for therapeutic use. However, chemical modifications of these natural products are painstaking tasks due to complex synthetic processes, which is a bottleneck in advancing natural products to the clinic. Here, we develop a strategy for a comprehensive in situ evaluation of the build-up library, which enables us to streamline the preparation of the analogue library and directly assess its biological activities. We apply this approach to a series of MraY inhibitory natural products. Through construction and evaluation of the 686-compound library, we identify promising analogues that exhibit potent and broad-spectrum antibacterial activity against highly drug-resistant strains in vitro as well as in vivo in an acute thigh infection model. Structures of the MraY-analogue complexes reveal distinct interaction patterns, suggesting that these analogues represent MraY inhibitors with unique binding modes. We further demonstrate the generality of our strategy by applying it to tubulin-binding natural products to modulate their tubulin polymerization activities.

Publisher

Springer Science and Business Media LLC

Reference71 articles.

1. Murray, C. J. L. et al. Global burden of bacterial antimicrobial resistance in 2019: a systematic analysis. Lancet 399, 629–655 (2022).

2. O’Neill, J. Antimicrobial resistance: tackling a crisis for the health and wealth of nations. (Review on Antimicrobial Resistance, London, 2014), https://wellcomecollection.org/works/rdpck35v.

3. Lloyd, A. J., Brandish, P. E., Gilbey, A. M. & Bugg, T. D. H. Phospho-N-acetyl-muramyl-pentapeptide translocase from Escherichia coli: Catalytic role of conserved aspartic acid residues. J. Bacteriol. 186, 1747–1757 (2014).

4. Bouhss, A., Crouvoisier, M., Bnot, D. & Mengin-Lecreulx, D. Purification and characterization of the bacterial MraY translocase catalyzing the first membrane step of peptidoglycan biosynthesis. J. Bacteriol. Chem. 279, 29974–29980 (2004).

5. Boyle, D. S. & Donachie, W. D. mraY is essential gene for cell growth in Escherichia coli. J. Bacteriol. 180, 6429–6432 (1998).

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