Evolutionary paths to macrolide resistance in a Neisseria commensal converge on ribosomal genes through short sequence duplications

Author:

Raisman Jordan C.,Fiore Michael A.,Tomin Lucille,Adjei Joseph K. O.ORCID,Aswad Virginia X.,Chu Jonathan,Domondon Christina J.,Donahue Ben A.,Masciotti Claudia A.,McGrath Connor G.,Melita Jo,Podbielski Paul A.,Schreiner Madelyn R.,Trumpore Lauren J.,Wengert Peter C.,Wrightstone Emalee A.,Hudson André O.ORCID,Wadsworth Crista B.ORCID

Abstract

Neisseria commensals are an indisputable source of resistance for their pathogenic relatives. However, the evolutionary paths commensal species take to reduced susceptibility in this genus have been relatively underexplored. Here, we leverage in vitro selection as a powerful screen to identify the genetic adaptations that produce azithromycin resistance (≥ 2 μg/mL) in the Neisseria commensal, N. elongata. Across multiple lineages (n = 7/16), we find mutations that reduce susceptibility to azithromycin converge on the locus encoding the 50S ribosomal L34 protein (rpmH) and the intergenic region proximal to the 30S ribosomal S3 protein (rpsC) through short tandem duplication events. Interestingly, one of the laboratory evolved mutations in rpmH is identical (7LKRTYQ12), and two nearly identical, to those recently reported to contribute to high-level azithromycin resistance in N. gonorrhoeae. Transformations into the ancestral N. elongata lineage confirmed the causality of both rpmH and rpsC mutations. Though most lineages inheriting duplications suffered in vitro fitness costs, one variant showed no growth defect, suggesting the possibility that it may be sustained in natural populations. Ultimately, studies like this will be critical for predicting commensal alleles that could rapidly disseminate into pathogen populations via allelic exchange across recombinogenic microbial genera.

Funder

College of Science, Rochester Institute of Technology

Publisher

Public Library of Science (PLoS)

Subject

Multidisciplinary

Reference59 articles.

1. High prevalence of antibiotic resistance in commensal Escherichia coli from healthy human sources in community settings;E Nji;Sci Rep,2021

2. Dissemination of antimicrobial resistance in microbial ecosystems through horizontal gene transfer;CJ Von Wintersdorff;Front Microbiol,2016

3. Rapid dissemination and diversity of CTX-M extended-spectrum β-lactamase genes in commensal Escherichia coli isolates from healthy children from low-resource settings in Latin America;L Pallecchi;Antimicrob Agents Ch,2007

4. The human gut resistome;W. Van Schaik;Philos T Roy Soc B,2015

5. Non-clinical settings–the understudied facet of antimicrobial drug resistance;S Castillo-Ramírez;Environ Microbiol,2021

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