Aug 2026· Environmental Science and Technology· Vol 60 32, pp.
22492-22504
· 0 citations· 62 references
Medicine
TL;DR
Elevated MP diversity remarkably increased the diversity of soil phages and strengthened phage-host interactions, which might reflect phage-host coadaptation, and advance the understanding of bacterial mechanisms underlying carbon dynamics following exposure to diverse MPs.
Abstract
Microplastic (MP) pollution threatens soil carbon stability, yet the effects of diverse MPs, particularly biodegradable MPs, on the soil carbon cycle and the associated microbial mechanisms remain poorly understood. Here, we established a gradient of MP diversity to examine its impact on soil dissolved organic matter (DOM) chemodiversity, integrating multiomics analysis to reveal coupled bacterial and viral metabolic strategies. Our results revealed that elevated MP diversity increased the proportion of low-molecular-weight compounds among newly generated DOM, reducing DOM aromaticity and stability. The enrichment of genes related to recalcitrant organic compound degradation, coupled with decreased energy metabolism gene abundance, suggested that the bioprocessing efficiency was enhanced at the expense of bacterial proliferation, facilitating DOM conversion to bioavailable forms. Accordingly, elevated MP diversity remarkably increased the diversity of soil phages and strengthened phage-host interactions, which might reflect phage-host coadaptation. Importantly, the increased abundance of phage-encoded auxiliary metabolic genes, especially those related to recalcitrant organic compound degradation, might enhance the utilization of recalcitrant DOM by the host bacteria. Collectively, these findings advance our understanding of bacterial mechanisms underlying carbon dynamics following exposure to diverse MPs, highlighting the critical role of phage-host interactions during this process.
Soil microbial community dynamics are closely linked to ecosystem functions and responses to environmental stress. This study aimed to investigate the impacts of incubation time and different treatment conditions (CK, CK60, and PLA60) on soil bacterial community structure, diversity, and potential metabolic functions....
Haoran Liu, Zi-Xuan Zhang, Yani Wang et al.· E3S Web of Conferences· 0 citations
Abstract Soil organic carbon is a key determinant of microbial community structure and function, yet the role of dissolved organic matter (DOM) bioavailability in shaping the soil antibiotic resistome remains poorly understood. Here, we combined previous continental-scale field sampling across 18 provinces in China (n ...
Zi-Teng Liu, Xin-Di Zhao, Jia-qi Li et al.· The ISME Journal· 0 citations
Biodegradable plastics like polybutylene adipate terephthalate (PBAT) are increasingly marketed as alternatives to conventional plastics, yet how soil properties regulate degradation kinetics, how intact films and microplastic fragments differentially affect microbial communities, and which metabolic pathways and funct...
Xin-Yu Zhang, Jia-Hui Yuan, Lu-Ke Wang et al.· Environmental Science and Te...· 0 citations
The accumulation of biodegradable plastics (BPs) in wastewater treatment plants (WWTPs) presents a novel environmental concern, while carbon deficiency concurrently limits advanced biological denitrification. Herein, this research explored the fate of BPs and their viability as solid-phase carbon donors for denitrifica...
Jun Huang, Xuan Zheng, Sen-Wei Liu et al.· Water· 0 citations
Decay of algal blooms in eutrophic lakes generates detritus-rich, redox-dynamic microhabitats that modulate the degradation of emerging pollutants as antibiotics. The degradation pathways of antibiotics within algal-detritus accumulation zones and the associated microbial assimilators remain insufficiently understood....
Guang-Xuan Yin, Zi-Hao Shen, Yi-Nuo Zhao et al.· Journal of Hazardous Materia...· 0 citations
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