Transcriptomic analysis of induced resistance to polymyxin in carbapenem-resistant Enterobacter cloacae complex

Jiming Wu1, Longjin Liu1, Jianmin Wang1

  • 1Department of Microbiology, Yongchuan Hospital of Chongqing Medical University, Chongqing, China.

Abstract

Insights

Polymyxin resistance in carbapenem-resistant Enterobacter cloacae complex (CRECC) is exacerbated by mcr-9 gene expression. High mcr-9 expression and the PhoPQ system are crucial for polymyxin resistance in CRECC.

Area of Science:

  • Microbiology
  • Genetics
  • Biochemistry

Background:

  • Polymyxins are critical last-resort antibiotics against multidrug-resistant Gram-negative bacteria.
  • The emergence of plasmid-mediated mobile polymyxin resistance genes (mcr) poses a significant threat to polymyxin efficacy, particularly in carbapenem-resistant Enterobacter cloacae complex (CRECC).

Purpose of the Study:

  • To elucidate the mechanisms underlying polymyxin-induced bacterial resistance.
  • To investigate the impact of mcr-9 gene overexpression on polymyxin resistance in CRECC.

Main Methods:

  • A clinical CRECC strain (CRECC414) harboring the mcr-9 gene was subjected to polymyxin treatment.
  • Minimum inhibitory concentration (MIC) was determined using broth microdilution.
  • Gene expression levels, including mcr-9, were assessed via RT-qPCR.
  • Whole genome sequencing (WGS) and transcriptome sequencing were employed to identify genetic and transcriptomic alterations associated with resistance.
  • Metabolic network analysis was performed at the genomic level.

Main Results:

  • Polymyxin treatment led to increased mcr-9 expression and a significant elevation in MIC.
  • WGS and transcriptomic data revealed substantial upregulation of the arnBCADTEF gene cassette, indicating Arn/PhoPQ system-mediated L-Ara4N modification as a key resistance mechanism.
  • Significant changes in gene expression were observed in multidrug efflux pumps, oxidative stress and repair pathways, cell membrane biosynthesis, and carbohydrate metabolism.

Conclusions:

  • Polymyxin treatment profoundly disrupts essential bacterial cellular pathways.
  • A functional PhoPQ two-component system is indispensable for polymyxin resistance in Enterobacter cloacae, irrespective of high mcr-9 expression.
  • These findings offer critical insights into polymyxin resistance mechanisms in CRECC, guiding future research and therapeutic strategies.

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