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Genome-encoded ABCF factors implicated in intrinsic antibiotic resistance in Gram-positive bacteria: VmlR2, Ard1 and CplR

View ORCID ProfileNozomu Obana, View ORCID ProfileHiraku Takada, View ORCID ProfileCaillan Crowe-McAuliffe, Mizuki Iwamoto, View ORCID ProfileArtyom A. Egorov, View ORCID ProfileKelvin J.Y. Wu, View ORCID ProfileVictoriia Murina, View ORCID ProfileHelge Paternoga, Ben I.C. Tresco, View ORCID ProfileNobuhiko Nomura, View ORCID ProfileAndrew G. Myers, View ORCID ProfileGemma C. Atkinson, View ORCID ProfileDaniel N. Wilson, View ORCID ProfileVasili Hauryliuk
doi: https://doi.org/10.1101/2022.12.05.519065
Nozomu Obana
1Transborder Medical Research Center, Faculty of Medicine, University of Tsukuba, Tsukuba, Japan
2Microbiology Research Center for Sustainability (MiCS), University of Tsukuba, Tsukuba, Japan
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  • For correspondence: obana.nozomu.gb@u.tsukuba.ac.jp daniel.wilson@chemie.uni-hamburg.de vasili.hauryliuk@med.lu.se
Hiraku Takada
3Faculty of Life Sciences, Kyoto Sangyo University, Motoyama, Kamigamo, Kita-Ku, Kyoto, 603-8555, Japan
4Department of Experimental Medical Science, Lund University, Lund, Sweden
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Caillan Crowe-McAuliffe
5Institute for Biochemistry and Molecular Biology, University of Hamburg, Martin-Luther-King-Platz 6, 20146 Hamburg, Germany
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Mizuki Iwamoto
6Faculty of Life and Environmental Sciences, University of Tsukuba, Tsukuba, Japan
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Artyom A. Egorov
4Department of Experimental Medical Science, Lund University, Lund, Sweden
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Kelvin J.Y. Wu
7Department of Chemistry and Chemical Biology, Harvard University, Cambridge, MA, USA
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Victoriia Murina
8Department of Molecular Biology, Umeå University, Building 6K, 6L University Hospital Area, 90187 Umeå, Sweden
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Helge Paternoga
5Institute for Biochemistry and Molecular Biology, University of Hamburg, Martin-Luther-King-Platz 6, 20146 Hamburg, Germany
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Ben I.C. Tresco
7Department of Chemistry and Chemical Biology, Harvard University, Cambridge, MA, USA
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Nobuhiko Nomura
2Microbiology Research Center for Sustainability (MiCS), University of Tsukuba, Tsukuba, Japan
6Faculty of Life and Environmental Sciences, University of Tsukuba, Tsukuba, Japan
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Andrew G. Myers
7Department of Chemistry and Chemical Biology, Harvard University, Cambridge, MA, USA
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Gemma C. Atkinson
4Department of Experimental Medical Science, Lund University, Lund, Sweden
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Daniel N. Wilson
5Institute for Biochemistry and Molecular Biology, University of Hamburg, Martin-Luther-King-Platz 6, 20146 Hamburg, Germany
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  • For correspondence: obana.nozomu.gb@u.tsukuba.ac.jp daniel.wilson@chemie.uni-hamburg.de vasili.hauryliuk@med.lu.se
Vasili Hauryliuk
4Department of Experimental Medical Science, Lund University, Lund, Sweden
9University of Tartu, Institute of Technology, Tartu, Estonia
10Science for Life Laboratory, Lund, Sweden
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  • For correspondence: obana.nozomu.gb@u.tsukuba.ac.jp daniel.wilson@chemie.uni-hamburg.de vasili.hauryliuk@med.lu.se
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ABSTRACT

Genome-encoded antibiotic resistance (ARE) ATP-binding cassette (ABC) proteins of the F subfamily (ARE-ABCFs) mediate intrinsic resistance in diverse Gram-positive bacteria. The diversity of chromosomally-encoded ARE-ABCFs is far from being fully experimentally explored. Here we characterise phylogenetically diverse genome-encoded ABCFs from Actinomycetia (Ard1 from Streptomyces capreolus, producer of the nucleoside antibiotic A201A), Bacilli (VmlR2 from soil bacterium Neobacillus vireti) and Clostridia (CplR from Clostridium perfringens, Clostridium sporogenes and Clostridioides difficile). We demonstrate that Ard1 is a narrow spectrum ARE-ABCF that specifically mediates self-resistance against nucleoside antibiotics. The single-particle cryo-EM structure of a VmlR2-ribosome complex allows us to rationalise the resistance spectrum of this ARE-ABCF that is equipped with an unusually long antibiotic resistance determinant (ARD) subdomain. We show that CplR contributes to intrinsic pleuromutilin, lincosamide and streptogramin A resistance in Clostridioides, and demonstrate that C. difficile CplR (CDIF630_02847) synergises with the transposon-encoded 23S ribosomal RNA methyltransferase Erm to grant high levels of antibiotic resistance to the C. difficile 630 clinical isolate. Finally, assisted by our novel tool for detection of upstream open reading frames, we dissect the translational attenuation mechanism that controls the induction of cplR expression upon an antibiotic challenge.

Competing Interest Statement

A.G.M. is an inventor in a provisional patent application submitted by the President and Fellows of Harvard College covering oxepanoprolinamide antibiotics described in this work. A.G.M. has filed the following international patent applications: WO/2019/032936 Lincosamide Antibiotics and Uses Thereof and WO/2019/032956 Lincosamide Antibiotics and Uses Thereof. All other authors: none to declare.

Copyright 
The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under a CC-BY 4.0 International license.
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Posted December 05, 2022.
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Genome-encoded ABCF factors implicated in intrinsic antibiotic resistance in Gram-positive bacteria: VmlR2, Ard1 and CplR
Nozomu Obana, Hiraku Takada, Caillan Crowe-McAuliffe, Mizuki Iwamoto, Artyom A. Egorov, Kelvin J.Y. Wu, Victoriia Murina, Helge Paternoga, Ben I.C. Tresco, Nobuhiko Nomura, Andrew G. Myers, Gemma C. Atkinson, Daniel N. Wilson, Vasili Hauryliuk
bioRxiv 2022.12.05.519065; doi: https://doi.org/10.1101/2022.12.05.519065
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Genome-encoded ABCF factors implicated in intrinsic antibiotic resistance in Gram-positive bacteria: VmlR2, Ard1 and CplR
Nozomu Obana, Hiraku Takada, Caillan Crowe-McAuliffe, Mizuki Iwamoto, Artyom A. Egorov, Kelvin J.Y. Wu, Victoriia Murina, Helge Paternoga, Ben I.C. Tresco, Nobuhiko Nomura, Andrew G. Myers, Gemma C. Atkinson, Daniel N. Wilson, Vasili Hauryliuk
bioRxiv 2022.12.05.519065; doi: https://doi.org/10.1101/2022.12.05.519065

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