Deciphering the genetic network and programmed regulation of antimicrobial resistance in bacterial pathogens

Thandavarayan Ramamurthy1, Amit Ghosh1, Goutam Chowdhury1

  • 1Division of Bacteriology, ICMR-National Institute of Cholera and Enteric Diseases, Kolkata, India.

Insights

Antimicrobial resistance (AMR) is a global health threat. Understanding bacterial defense mechanisms and mobile genetic elements (MGEs) is crucial for controlling the spread of antimicrobial resistance genes (ARGs).

Area of Science:

  • Microbiology
  • Genetics
  • Public Health

Background:

  • Antimicrobial resistance (AMR) poses a significant global health challenge, impacting human, animal, and environmental health within the 'one health' framework.
  • Antibiotic misuse in any sector can compromise the integrity of others, driving bacterial resistance.
  • Bacteria develop diverse defense mechanisms against antibiotics, including outer membrane alterations, enzymatic inactivation, gene regulation, and biofilm formation.

Purpose of the Study:

  • To provide an overview of the genetic networks and regulatory mechanisms underlying bacterial antimicrobial resistance.
  • To highlight the role of mobile genetic elements (MGEs) in the dissemination of antimicrobial resistance genes (ARGs).
  • To emphasize the need for understanding the interplay between selection pressures and bacterial resistance strategies.

Main Methods:

  • Review of existing literature on bacterial resistance mechanisms.
  • Analysis of the role of mobile genetic elements (MGEs) such as ICEs, ISs, and transposons in ARG dissemination.
  • Examination of various bacterial functional attributes involved in acquiring and regulating ARGs.

Main Results:

  • Mobile genetic elements (MGEs), including integrative and conjugative elements (ICEs), insertion sequence elements (ISs), and transposons, are key carriers of antimicrobial resistance genes (ARGs).
  • Phage-bacterial networks and various bacterial systems (e.g., efflux pumps, CRISPR) contribute significantly to ARG transmission and regulation.
  • The complex network associations between antimicrobial selection pressures and bacterial resistance components are not fully understood.

Conclusions:

  • Understanding the genetic regulation of AMR is essential for developing effective control strategies.
  • The interconnectedness of AMR across human, animal, and environmental sectors necessitates a 'one health' approach.
  • Further research into the intricate genetic networks governing bacterial resistance is critical for combating the AMR crisis.

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