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Updated: Aug 17, 2025

A Fluorescence-based Method to Study Bacterial Gene Regulation in Infected Tissues
Published on: February 19, 2019
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.
Abstract:
Antimicrobial resistance (AMR) in bacteria is an important global health problem affecting humans, animals, and the environment. AMR is considered as one of the major components in the "global one health". Misuse/overuse of antibiotics in any one of the segments can impact the integrity of the others. In the presence of antibiotic selective pressure, bacteria tend to develop several defense mechanisms, which include structural changes of the bacterial outer membrane, enzymatic processes, gene upregulation, mutations, adaptive resistance, and biofilm formation. Several components of mobile genetic elements (MGEs) play an important role in the dissemination of AMR. Each one of these components has a specific function that lasts long, irrespective of any antibiotic pressure. Integrative and conjugative elements (ICEs), insertion sequence elements (ISs), and transposons carry the antimicrobial resistance genes (ARGs) on different genetic backbones. Successful transfer of ARGs depends on the class of plasmids, regulons, ISs proximity, and type of recombination systems. Additionally, phage-bacterial networks play a major role in the transmission of ARGs, especially in bacteria from the environment and foods of animal origin. Several other functional attributes of bacteria also get successfully modified to acquire ARGs. These include efflux pumps, toxin-antitoxin systems, regulatory small RNAs, guanosine pentaphosphate signaling, quorum sensing, two-component system, and clustered regularly interspaced short palindromic repeats (CRISPR) systems. The metabolic and virulence state of bacteria is also associated with a range of genetic and phenotypic resistance mechanisms. In spite of the availability of a considerable information on AMR, the network associations between selection pressures and several of the components mentioned above are poorly understood. Understanding how a pathogen resists and regulates the ARGs in response to antimicrobials can help in controlling the development of resistance. Here, we provide an overview of the importance of genetic network and regulation of AMR in bacterial pathogens.
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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