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应用生态学报 ›› 2026, Vol. 37 ›› Issue (5): 1717-1730.doi: 10.13287/j.1001-9332.202605.031

• 综合评述 • 上一篇    

生物膜驱动微塑料沉降的研究进展

曹雅芹1, 陈孝杨1,2*, 孔令涛3, 邓道贵4, 石锦红1, 方文静1   

  1. 1安徽理工大学地球与环境学院, 安徽淮南 232001;
    2安徽理工大学深部煤炭安全开采与环境保护全国重点实验室, 安徽淮南 232001;
    3中国科学院合肥物质科学研究院固体物理研究所, 合肥 230031;
    4淮北师范大学生命科学学院, 安徽淮北 235000
  • 收稿日期:2026-01-08 接受日期:2026-03-24 出版日期:2026-05-18 发布日期:2026-11-18
  • 通讯作者: * E-mail: chenxy@aust.edu.cn
  • 作者简介:曹雅芹, 女, 1995年生, 博士研究生。主要从事矿区水生态环境与安全研究。E-mail: ya2qin3cao2@163.com
  • 基金资助:
    平安煤炭开采工程技术研究院有限责任公司校企合作研发项目(HNKYPG-JS-2023-228)和安徽理工大学重大科技项目(2024JBZD0004)

Research progress on biofilm-driven microplastic sedimentation.

CAO Yaqin1, CHEN Xiaoyang1,2*, KONG Lingtao3, DENG Daogui4, SHI Jinhong1, FANG Wenjing1   

  1. 1School of Earth and Environment, Anhui University of Science and Technology, Huainan 232001, Anhui, China;
    2State Key Laboratory of Safe Mining of Deep Coal and Environmental Protection, Anhui University of Science and Technology, Huainan 232001, Anhui, China;
    3Institute of Solid State Physics (ISSP), Chinese Academy of Sciences, Hefei 230031, China;
    4School of Life Science, Huaibei Normal University, Huaibei 235000, Anhui, China
  • Received:2026-01-08 Accepted:2026-03-24 Online:2026-05-18 Published:2026-11-18

摘要: 生物膜是驱动微塑料(MPs)水环境行为的关键因素,但其动态调控机制在传统模型中长期被忽视。本文综述了生物膜的形成机制及其对MPs沉降行为的影响。MPs进入水体后,表面会迅速被微生物定殖,并形成由胞外聚合物(EPS)和微生物群落构成的生物膜结构。该形成过程受到暴露时间、环境条件及MPs自身性质等多重因素的动态调控。生物膜通过增加MPs有效密度、促进颗粒团聚、改变表面性质等途径,显著影响其沉降行为与垂直分布特征,从而挑战了基于传统物理属性的预测模型的适用性。以微藻为代表的微生物及其特异性分泌的EPS在此过程中发挥关键作用,是导致沉降行为差异的主要原因。本文还梳理了生物膜与MPs的作用机制、应用场景及局限性等方面的研究进展。未来研究应重点关注:在机制层面,建立耦合微观生物膜动力学与宏观水力条件的多尺度模型;在方法层面,开发可定量表征生物膜特性(如EPS组成、群落功能)的原位观测技术;在应用层面,探索利用功能微生物(如特定藻/菌)定向调控MPs沉降行为的生物修复策略。

关键词: 胞外聚合物, 微生物载体, 生物絮凝, 异质聚集, 环境归趋

Abstract: Biofilms play a crucial role in regulating the behavior of microplastics (MPs) in aquatic environments, yet their dynamic mechanisms have often been overlooked in traditional models. We reviewed the formation mechanism of biofilm and its impact on the sedimentation behavior of MPs. Upon entering water, MPs are rapidly colonized by microorganisms, forming biofilm structures composed of extracellular polymeric substances (EPS) and microbial communities. This process is influenced by exposure time, environmental conditions, and the intrinsic properties of MPs. Biofilms significantly affect MPs sedimentation and vertical distribution by increasing their effective density, promoting aggregation, and altering surface properties, challenging the applicability of prediction models based solely on physical attributes. Microorganisms (particularly microalgae) and their EPS secretions are key factors driving sedimentation differences. We further summarized current research progress on biofilm-MPs interactions, their applications, and limitations. Future research should focus on the following areas. Mechanistically, we should develop multiscale models that integrate biofilm dynamics with hydraulic conditions. Methodologically, we should advance in-situ observation techniques to quantitatively characterize biofilm properties such as EPS composition and community function. From an application perspective, we should explore bioremediation strategies that use functional microorganisms, such as specific algae or bacteria, to control MPs sedimentation.

Key words: extracellular polymeric substance, microbial carrier, bioflocculation, heterogeneous aggregation, environmental fate