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.
Abstract:
Antimicrobial resistance (AMR) is one of the greatest threats faced by humankind. The development of resistance in clinical and hospital settings has been well documented ever since the initial discovery of penicillin and the subsequent introduction of sulfonamides as clinical antibiotics. In contrast, the environmental (i.e., community-acquired) dimensions of resistance dissemination have been only more recently delineated. The global spread of antibiotic resistant bacteria (ARB) and antibiotic resistance genes (ARGs) between air, water, soil, and food is now well documented, while the factors that affect ARB and ARG dissemination (e.g., water and air quality, antibiotic fluxes, urbanization, sanitation practices) in these and other environmental matrices are just now beginning to be more fully appreciated. In this Account, we discuss how the global perpetuation of resistance is dictated by highly interconnected socioeconomic risk factors and illustrate that development status should be more fully considered when developing global strategies to address AMR. We first differentiate low to middle income countries (LMICs) and high-income countries (HICs), then we summarize the modes of action of commercially available antibiotics, and then discuss the four primary mechanisms by which bacteria develop resistance to those antibiotics. Resistance is disseminated via both vertical gene transfer (VGT; parent to offspring) as well as by horizontal gene transfer (HGT; cell to cell transference of genetic material). A key challenge hindering attempts to control resistance dissemination is the presence of native, environmental bacteria that can harbor ARGs. Such environmental "resistomes" have potential to transfer resistance to pathogens via HGT. Of particular concern is the development of resistance to antibiotics of last-resort such as the cephalosporins, carbapenems, and polymyxins. We then illustrate how antibiotic use differs in LMICs relative to HICs in terms of the volumes of antibiotics used and their fate within local environments. Antibiotic use in HICs has remained flat over the past 15 years, while in LMICs use over the same period has increased substantially as a result of economic improvements and changes in diet. These use and fate differences impact local citizens and thus the local dissemination of AMR. Various physical, social, and economic circumstances within LMICs potentially favor AMR dissemination. We focus on three physical factors: changing population density, sanitation infrastructure, and solid-waste disposal. We show that high population densities in cities within LMICs that suffer from poor sanitation and solid-waste disposal can potentially impact the dissemination of resistance. In the final section, we discuss potential monitoring approaches to quantify the spread of resistance both within LMICs as well as in HICs. We posit that culture-based approaches, molecular approaches, and cutting-edge nanotechnology-based methods for monitoring ARB and ARGs should be considered both within HICs and, as appropriate, within LMICs.
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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