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The plastisphere paradox: microplastics as engines of antimicrobial resistance and hosts for polymer degraders
1Symbiosis Centre for Waste Resource Management, Symbiosis International (Deemed University), Lavale, Pune, 412115, India.
Abstract:
Microplastics (MPs) have emerged as serious ecological pollutants that harbor diverse microbial communities in their biofilm ecosystem termed as plastisphere. This community serves as a reservoir for antibiotic resistance genes (ARGs), antimicrobial resistant bacteria (ARB) as well as other microorganisms involved in pollutant degradation. However, the dynamic interactions between antimicrobial resistance (AMR) and bioremediation in the plastisphere community are not well deciphered. This review examines the dual role of MPs as ARG vectors as well as emerging platforms for microplastic and other pollutant bioremediation. Plastisphere biofilms act as a hub for horizontal gene transfer (HGT), driven by active microbial interfaces, extracellular polymeric matrices, and co-selection pressures exerted due to antibiotics, heavy metals, and biocides. Metagenomics and metatranscriptomics approaches reveal the cohabitation of functional genes associated with both AMR and microplastic degradation, mediated by enzymes and multifunctional molecules such as biosurfactants. However, bioaugmentation using plastisphere derived microbial population risks HGT of ARGs or virulence factors to non-native and indigenous microorganisms. Hence, such applications call for stringent biosafety assessments to prevent inadvertent and unwanted ARG dissemination. By integrating ecological perils with advanced biotechnological opportunities, this review underlines the plastisphere paradox and highlights the demand for multiomics-driven One Health approaches to bring forth the interconnected challenges of MPs pollution, AMR, and bioremediation. This exploration yields promising avenues for developing integrated strategies that can address both persistent microplastic pollution and AMR spread concomitantly.
Insights
Microplastics (MPs) create a plastisphere, a microbial community that can spread antibiotic resistance genes (ARGs) and also aid in pollutant bioremediation. This review explores this dual role and the need for biosafety assessments.
Area of Science:
- Environmental Science
- Microbiology
- Biotechnology
Background:
- Microplastics (MPs) are significant environmental pollutants.
- The plastisphere, a biofilm on MPs, hosts diverse microbes, including those carrying antibiotic resistance genes (ARGs) and capable of pollutant degradation.
- The interplay between antimicrobial resistance (AMR) and bioremediation within the plastisphere is not fully understood.
Purpose of the Study:
- To review the dual role of MPs as vectors for ARGs and as platforms for bioremediation.
- To investigate the mechanisms driving horizontal gene transfer (HGT) of ARGs in plastisphere communities.
- To highlight the need for multiomics-driven One Health approaches to address MP pollution and AMR.
Main Methods:
- Literature review synthesizing current research on MPs, plastisphere, AMR, and bioremediation.
- Analysis of metagenomics and metatranscriptomics data on microbial communities associated with MPs.
- Examination of gene functions related to AMR and pollutant degradation in plastisphere biofilms.
Main Results:
- Plastisphere biofilms facilitate HGT of ARGs through microbial interactions and co-selection pressures (antibiotics, heavy metals).
- Genes for AMR and MP degradation coexist in the plastisphere, mediated by enzymes and biosurfactants.
- Bioaugmentation with plastisphere microbes carries risks of ARG dissemination, necessitating biosafety evaluations.
Conclusions:
- MPs present a paradox: they harbor AMR but also offer bioremediation potential.
- Integrated strategies and multiomics approaches are crucial for managing MP pollution and AMR spread.
- Stringent biosafety assessments are required for any biotechnological applications involving plastisphere microbes.
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