Differential Drivers of Antimicrobial Resistance across the World

Peter Vikesland1,2, Emily Garner1, Suraj Gupta1

  • 1Department of Civil and Environmental Engineering , Virginia Tech , Blacksburg , Virginia 24061 , United States.

Insights

Antimicrobial resistance (AMR) is a global threat amplified by socioeconomic factors. Understanding environmental dissemination, especially in low-income countries, is crucial for effective AMR strategies.

Area of Science:

  • Environmental science and microbiology, focusing on antimicrobial resistance (AMR).
  • Public health and global health security, addressing the spread of antibiotic-resistant bacteria (ARB) and antibiotic resistance genes (ARGs).
  • Socioeconomic factors influencing health outcomes and environmental contamination.

Background:

  • Antimicrobial resistance (AMR) is a significant global health threat, with resistance development documented since early antibiotic use.
  • Environmental dissemination of ARB and ARGs across air, water, soil, and food is increasingly recognized.
  • Factors influencing resistance spread, including water/air quality, antibiotic use, urbanization, and sanitation, require further understanding.

Purpose of the Study:

  • To discuss how interconnected socioeconomic factors drive global AMR perpetuation.
  • To highlight the importance of considering country development status in global AMR strategies.
  • To differentiate AMR challenges and antibiotic use patterns between low-to-middle-income countries (LMICs) and high-income countries (HICs).

Main Methods:

  • Review and synthesis of existing literature on AMR mechanisms, dissemination, and influencing factors.
  • Comparative analysis of antibiotic use volumes and environmental fate in LMICs versus HICs.
  • Identification of key physical, social, and economic factors in LMICs that may favor AMR dissemination, such as population density and sanitation.

Main Results:

  • Antibiotic resistance disseminates through vertical (VGT) and horizontal gene transfer (HGT), with environmental bacteria ('resistomes') posing a threat.
  • Antibiotic use has increased substantially in LMICs due to economic improvements, unlike in HICs where it has plateaued.
  • Poor sanitation and solid-waste disposal in densely populated urban areas of LMICs can exacerbate AMR dissemination.

Conclusions:

  • Global AMR is driven by socioeconomic factors, necessitating tailored strategies that consider development status.
  • Differences in antibiotic use and environmental conditions between LMICs and HICs significantly impact local and global AMR spread.
  • Monitoring approaches, including culture-based, molecular, and nanotechnology-based methods, are needed to quantify AMR spread in all country types.

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