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Insight into the role of niche concept in deciphering the ecological drivers of MPs-associated bacterial communities in mangrove forest

Water Research 2023 22 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count.
Yijin Wang, Jiao Meng, Zhen Zhao, Yinghui Wang, Tiezhu Li, Yihua Wei, Ruilong Li, Fei Yang

Summary

This study investigated how environmental factors shape the bacterial communities colonizing microplastics (the plastisphere) in mangrove forests, examining niche partitioning and ecological drivers. Results revealed that local environmental gradients strongly influenced plastisphere community assembly, with implications for understanding how microplastics alter microbial ecology in mangrove systems.

Study Type Environmental

Myriad inherent and variable environmental features are controlling the assembly and succession of bacterial communities colonizing on mangrove microplastics (MPs). However, the mechanisms governing mangrove MPs-associated bacterial responses to environmental changes still remain unknown. Here, we assessed the dissimilarities of MPs-associated bacterial composition, diversity and functionality as well as quantified the niche variations of each taxon on plastispheres along river-mangrove-ocean and mangrove landward-to-seaward gradients in the Beibu Gulf, China, respectively. The bacterial richness and diversity as well as the niche breadth on mangrove sedimentary MPs dramatically decreased from landward to seaward regions. Characterizing the niche variations linked the difference of ecological drivers of MPs-associated bacterial populations and functions between river-mangrove-ocean (microplastic properties) and mangrove landward-to-seaward plastispheres (sediment physicochemical properties) to the trade-offs between selective stress exerted by inherent plastic substrates and microbial competitive stress imposed by environmental conditions. Notably, Rhodococcus erythropolis was predicted to be the generalist species and closely associated to biogeochemical cycles of mangrove plastispheres. Our work provides a reliable pathway for tackling the hidden mechanisms of environmental factors driving MPs-associated microbe from perspectives of niches and highlights the spatial dynamic variations of mangrove MPs-associated bacteria.

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