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February 8, 2026Journal of Environmental Management0 citationsOpen Access

Spatial patterns of microplastic accumulation and microbial degradation function along coastal wetland tidal gradients

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YJYuhan JiangLHLifang HuQJQiannan Jin

Key Points

  • The aim is to examine the patterns of microplastic accumulation and the related microbial degradation function in coastal wetland tidal zones.
  • Examined microplastic abundance in high-tidal, middle-tidal, and low-tidal zones of a coastal wetland
  • Analyzed soil physicochemical properties related to nitrogen parameters and their association with microplastics
  • Used microbial community composition to assess degradation potential linked to microplastics
  • Microplastic abundance increases with tidal elevation, peaking in topsoil of low- and high-tidal zones
  • Fragments constitute the majority of microplastics, predominantly sized 10-100 μm
  • Significant negative correlation between microbial degradation potential and microplastic abundance
  • Rhizosphere soil shows higher microplastic levels compared to bulk soils, coinciding with increased degrading bacteria presence

Abstract

Coastal wetlands are key transition zones for microplastics (MPs) transporting from land to sea, where MPs can accumulate and persist, posing long-term ecological risks. This study examined MPs abundance patterns and microbial degradation-related functional potential across high-tidal (including vegetation area), middle-tidal, and low-tidal zones in the Qiantang River estuary, a pronounced dynamic tidal system, connecting the mainland to the East China Sea. MPs abundance increased with tidal elevation (low 4+-N and NO3--N), as the main factors associated with MPs distribution, followed by spatial factors (tidal zone and depth). Microbial degradation-related functional potential inferred from microbial community composition exhibited a significant negative association with MPs abundance. Vegetation within the tidal zone also influenced MPs patterns: rhizosphere soil (RS) had significantly higher MPs abundance (2633-3284 n g-1) and smaller particle sizes than bulk soils (1009-1536 n g-1), coinciding with increased MPs-degrading bacteria (e.g., Xanthomonadales, especially Stenotrophomonas) in the RS. These findings highlight the combined effects of tidal dynamics and rhizosphere interactions on MPs fate within coastal wetlands, providing crucial insights for the management of MPs pollution in these ecologically sensitive areas.

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Cite This Study

Jiang et al. (2026) studied this question.

synapsesocial.com/papers/6988270a0fc35cd7a8845e9ahttps://doi.org/10.1016/j.jenvman.2026.128825
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