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塑料老化对黄粉虫生物降解聚苯乙烯的影响:肠道微生物组和细菌代谢的见解。

Effects of plastic aging on biodegradation of polystyrene by Tenebrio molitor larvae: Insights into gut microbiome and bacterial metabolism.

机构信息

State Key Laboratory of Urban Water Resource and Environment, School of Environment, Harbin Institute of Technology, Harbin 150090, China.

State Key Laboratory of Urban Water Resource and Environment, School of Environment, Harbin Institute of Technology, Harbin 150090, China.

出版信息

Sci Total Environ. 2024 Nov 25;953:176130. doi: 10.1016/j.scitotenv.2024.176130. Epub 2024 Sep 10.

Abstract

Plastics aging reduces resistance to microbial degradation. Plastivore Tenebrio molitor rapidly biodegrades polystyrene (PS, size: < 80 μm), but the effects of aging on PS biodegradation by T. molitor remain uncharacterized. This study examined PS biodegradation over 24 days following three pre-treatments: freezing with UV exposure (PS1), UV exposure (PS2), and freezing (PS3), compared to pristine PS (PSv) microplastic. The pretreatments deteriorated PS polymers, resulting in slightly higher specific PS consumption (602.8, 586.1, 566.7, and 563.9 mg PS·100 larvae·d, respectively) and mass reduction rates (49.6 %, 49.5 %, 49.2 %, and 48.7 %, respectively) in PS1, PS2, and PS3 compared to PSv. Improved biodegradation correlated with reduced molecular weights and the formation of oxidized functional groups. Larvae fed more aged PS exhibited greater gut microbial diversity, with microbial community and metabolic pathways shaped by PS aging, as supported by co-occurrence network analysis. These findings indicated that the aging treatments enhanced PS biodegradation by only limited extent but impacted greater on gut microbiome and bacterial metabolic genes, indicating that the T. molitor host have highly predominant capability to digest PS plastics and alters gut microbiome to adapt the PS polymers fed to them.

摘要

塑料老化会降低其对微生物降解的抵抗力。黄粉虫(Tenebrio molitor)能快速生物降解聚苯乙烯(PS,粒径<80μm),但 PS 老化对黄粉虫生物降解的影响尚不清楚。本研究考察了经过三种预处理(UV 照射冷冻、UV 照射、冷冻)和未处理 PS(PSv)微塑料后 24 天 PS 的生物降解情况,预处理会使 PS 聚合物劣化,导致 PS 特异性消耗(分别为 602.8、586.1、566.7 和 563.9mg PS·100 幼虫·d)和质量减少率(分别为 49.6%、49.5%、49.2%和 48.7%)比 PSv 更高。与 PSv 相比,PS1、PS2 和 PS3 中的 PS 生物降解率更高,这与分子量降低和氧化功能基团形成有关。与 PSv 相比,摄入更老化 PS 的幼虫具有更大的肠道微生物多样性,共现网络分析支持 PS 老化对微生物群落和代谢途径的影响。这些发现表明,老化处理仅在有限程度上增强了 PS 的生物降解能力,但对肠道微生物组和细菌代谢基因的影响更大,表明黄粉虫宿主具有极强的消化 PS 塑料的能力,并改变肠道微生物组以适应摄入的 PS 聚合物。

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