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Impact of microplastics on riverine greenhouse gas emissions: a view point

Environmental Science and Pollution Research 2022 34 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 40 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Amit Kumar Amit Kumar Amit Kumar Amit Kumar Amit Kumar Amit Kumar Pooja Upadhyay, Pooja Upadhyay, Pooja Upadhyay, Sanjeev Kumar Prajapati, Sanjeev Kumar Prajapati, Amit Kumar Amit Kumar Amit Kumar Amit Kumar Pooja Upadhyay, Pooja Upadhyay, Pooja Upadhyay, Sanjeev Kumar Prajapati, Amit Kumar Amit Kumar Amit Kumar Amit Kumar Amit Kumar Sanjeev Kumar Prajapati, Sanjeev Kumar Prajapati, Amit Kumar Sanjeev Kumar Prajapati, Sanjeev Kumar Prajapati, Amit Kumar Amit Kumar

Summary

This viewpoint examines how microplastic accumulation in rivers may alter microbial communities and disrupt biogeochemical cycles, potentially increasing greenhouse gas emissions such as methane and nitrous oxide from riverine ecosystems, identifying this as a critical but underexplored consequence of freshwater microplastic pollution.

In recent decades, microplastics (MPs < 5 mm) are ubiquitous and considered a serious emerging environmental problem. However, due to the limited recovery and long-lasting durability MPs, debris is frequently accumulating in riverine ecosystems, thereby impacting microbial activity and its communities. The presence of MPs may alter the microbial richness, variety, and population, thereby impacting the transformation of biogeochemical cycles. The occurrence, fate, and transport of MPs in marine and terrestrial ecosystems and their impact on biogeochemical or nutrient cycling are reported in the scientific fraternity. Yet, the global scientific community is conspicuously devoid of research on impact of MPs on riverine greenhouse gas (GHG) emissions. The presented view point provides a novel idea about the fate of MPs in the riverine system and its impact on GHG emissions potential. Literature reveals that DO and nutrients (organic carbon, NH, NO) concentrations play an important role in potential of GHG emission in riverine ecosystems. The proposed mechanism and research gaps provided will be highly helpful to the hydrologist, environmentalist, biotechnologist, and policymakers to think about the strategic mitigation measure to resolve the future climatic risk.

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