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嗜极端环境细菌导致塑料降解。

Plastic Degradation by Extremophilic Bacteria.

机构信息

Stephan Angeloff Institute of Microbiology, Bulgarian Academy of Sciences, Acad. G. Bonchev str. Bl. 26, 1113 Sofia, Bulgaria.

出版信息

Int J Mol Sci. 2021 May 25;22(11):5610. doi: 10.3390/ijms22115610.

DOI:10.3390/ijms22115610
PMID:34070607
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8198520/
Abstract

Intensive exploitation, poor recycling, low repeatable use, and unusual resistance of plastics to environmental and microbiological action result in accumulation of huge waste amounts in terrestrial and marine environments, causing enormous hazard for human and animal life. In the last decades, much scientific interest has been focused on plastic biodegradation. Due to the comparatively short evolutionary period of their appearance in nature, sufficiently effective enzymes for their biodegradation are not available. Plastics are designed for use in conditions typical for human activity, and their physicochemical properties roughly change at extreme environmental parameters like low temperatures, salt, or low or high pH that are typical for the life of extremophilic microorganisms and the activity of their enzymes. This review represents a first attempt to summarize the extraordinarily limited information on biodegradation of conventional synthetic plastics by thermophilic, alkaliphilic, halophilic, and psychrophilic bacteria in natural environments and laboratory conditions. Most of the available data was reported in the last several years and concerns moderate extremophiles. Two main questions are highlighted in it: which extremophilic bacteria and their enzymes are reported to be involved in the degradation of different synthetic plastics, and what could be the impact of extremophiles in future technologies for resolving of pollution problems.

摘要

由于塑料的过度开发、回收利用率低、重复使用性差以及对环境和微生物作用的异常抵抗力,导致陆地和海洋环境中积累了大量的废物,对人类和动物的生命造成了巨大的危害。在过去的几十年中,人们对塑料的生物降解产生了浓厚的兴趣。由于它们在自然界中出现的时间相对较短,因此没有足够有效的酶来进行生物降解。塑料是为人类活动的典型条件而设计的,其物理化学性质在极端环境参数下(如低温、盐、低或高 pH 值)会发生较大变化,而这些参数是极端微生物的生存条件和其酶的活性的典型特征。本文首次尝试总结了在自然环境和实验室条件下,嗜热菌、嗜碱菌、嗜盐菌和耐冷菌对传统合成塑料进行生物降解的极其有限的信息。大多数可用的数据是在最近几年报道的,涉及到中度极端微生物。其中突出了两个主要问题:有哪些极端微生物及其酶被报道参与了不同合成塑料的降解,以及极端微生物在未来解决污染问题的技术中可能会产生什么影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2390/8198520/9ee0edb92d68/ijms-22-05610-g005.jpg
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