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塑料聚合物与微生物之间的功能相互作用:全面综述。

Functional interplay between plastic polymers and microbes: a comprehensive review.

机构信息

Integrative Biology Research Unit (IBRU), Department of Life Sciences, Presidency University, Kolkata, India.

Department of Zoology, Mahishadal Raj College, Purba Medinipur, India.

出版信息

Biodegradation. 2021 Oct;32(5):487-510. doi: 10.1007/s10532-021-09954-x. Epub 2021 Jun 4.

DOI:10.1007/s10532-021-09954-x
PMID:34086181
Abstract

Escalated production of plastic, their worldwide distribution and persistent nature finally results into their environmental accumulation causing severe threats to the ecological environment and biotic health. Thus, development of suitable measurements for environmental remediation of plastic may be an urgent issue in this plastic age. Some recent reviews have categorized the microbial species able to degrade different plastic polymers and the different factors effecting bio-degradation of plastic are poorly understood. This review comprehensively discusses bio-degradation of traditional and biodegradable plastic polymers both in natural and biological environment (gut microbes and fungi) to understand different factors regulating their degradation, and also shows how degradation of plastic polymers under abiotic factors influence subsequent biological degradation. Different physicochemical modifications like - breaking large polymers into small fragments by pre-treatment, functional groups enrichment, identifying potent microbial species (consortia) and engineering microbial enzymes might be crucial for bio-degradations of plastic. Effects of micro/nanoplastic and other chemical intermediates, formed during the bio-degradation of plastic, on species composition, abundance, growth, metabolism and enzymatic systems of microbes involved in the bio-degradation of plastic should be determined in future research.

摘要

塑料产量的增加、在全球范围内的分布以及它们持久的特性,最终导致了它们在环境中的积累,对生态环境和生物健康造成了严重威胁。因此,开发合适的措施来进行塑料的环境修复可能是当前这个塑料时代的一个紧迫问题。一些最近的综述已经对能够降解不同塑料聚合物的微生物种类进行了分类,而对影响塑料生物降解的不同因素的了解还很有限。本综述全面讨论了传统塑料和可生物降解塑料聚合物在自然和生物环境(肠道微生物和真菌)中的生物降解,以了解调节其降解的不同因素,还展示了非生物因素下塑料聚合物的降解如何影响随后的生物降解。不同的物理化学改性,如预处理将大聚合物分解成小片段、功能基团的富集、鉴定有效的微生物种类(菌群)和工程化微生物酶,对于塑料的生物降解可能至关重要。在未来的研究中,应该确定在塑料生物降解过程中形成的微/纳米塑料和其他化学中间体对参与塑料生物降解的微生物的物种组成、丰度、生长、代谢和酶系统的影响。

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Gut microbiota protects honey bees (Apis mellifera L.) against polystyrene microplastics exposure risks.肠道微生物群可保护蜜蜂(西方蜜蜂)免受聚苯乙烯微塑料暴露风险的影响。
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Critical evaluation of biodegradation studies on synthetic plastics through a systematic literature review.
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Effect of Fiber Cross-Sectional and Surface Properties on the Degradation of Biobased Polymers.纤维横截面和表面性质对生物基聚合物降解的影响。
Polymers (Basel). 2024 Nov 2;16(21):3096. doi: 10.3390/polym16213096.
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Multifaceted Aquatic Environmental Differences between Nanoplastics and Microplastics: Behavior and Fate.纳米塑料和微塑料在多方面的水生环境差异:行为与归宿
Environ Health (Wash). 2024 Jun 2;2(10):688-701. doi: 10.1021/envhealth.4c00013. eCollection 2024 Oct 18.
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