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利用光合微生物增强微塑料的生物修复:综述

Harnessing photosynthetic microorganisms for enhanced bioremediation of microplastics: A comprehensive review.

作者信息

Barone Giovanni Davide, Rodríguez-Seijo Andrés, Parati Mattia, Johnston Brian, Erdem Elif, Cernava Tomislav, Zhu Zhi, Liu Xufeng, Axmann Ilka M, Lindblad Peter, Radecka Iza

机构信息

Institute of Biology, University of Graz, Universitätsplatz 2, 8010, Graz, Austria.

Área de Edafoloxía, Departamento de Bioloxía Vexetal e Ciencia Do Solo, Facultade de Ciencias, Universidade de Vigo, 32004, Ourense, Spain.

出版信息

Environ Sci Ecotechnol. 2024 Mar 5;20:100407. doi: 10.1016/j.ese.2024.100407. eCollection 2024 Jul.

Abstract

Mismanaged plastics, upon entering the environment, undergo degradation through physicochemical and/or biological processes. This process often results in the formation of microplastics (MPs), the most prevalent form of plastic debris (<1 mm). MPs pose severe threats to aquatic and terrestrial ecosystems, necessitating innovative strategies for effective remediation. Some photosynthetic microorganisms can degrade MPs but there lacks a comprehensive review. Here we examine the specific role of photoautotrophic microorganisms in water and soil environments for the biodegradation of plastics, focussing on their unique ability to grow persistently on diverse polymers under sunlight. Notably, these cells utilise light and CO to produce valuable compounds such as carbohydrates, lipids, and proteins, showcasing their multifaceted environmental benefits. We address key scientific questions surrounding the utilisation of photosynthetic microorganisms for MPs and nanoplastics (NPs) bioremediation, discussing potential engineering strategies for enhanced efficacy. Our review highlights the significance of alternative biomaterials and the exploration of strains expressing enzymes, such as polyethylene terephthalate (PET) hydrolases, in conjunction with microalgal and/or cyanobacterial metabolisms. Furthermore, we delve into the promising potential of photo-biocatalytic approaches, emphasising the coupling of plastic debris degradation with sunlight exposure. The integration of microalgal-bacterial consortia is explored for biotechnological applications against MPs and NPs pollution, showcasing the synergistic effects in wastewater treatment through the absorption of nitrogen, heavy metals, phosphorous, and carbon. In conclusion, this review provides a comprehensive overview of the current state of research on the use of photoautotrophic cells for plastic bioremediation. It underscores the need for continued investigation into the engineering of these microorganisms and the development of innovative approaches to tackle the global issue of plastic pollution in aquatic and terrestrial ecosystems.

摘要

管理不善的塑料进入环境后,会通过物理化学和/或生物过程发生降解。这一过程通常会导致微塑料(MPs)的形成,微塑料是塑料碎片中最常见的形式(<1毫米)。微塑料对水生和陆地生态系统构成严重威胁,因此需要创新策略进行有效修复。一些光合微生物可以降解微塑料,但缺乏全面的综述。在这里,我们研究了光合自养微生物在水和土壤环境中对塑料生物降解的具体作用,重点关注它们在阳光下持续生长于各种聚合物上的独特能力。值得注意的是,这些细胞利用光和二氧化碳产生有价值的化合物,如碳水化合物、脂质和蛋白质,展示了它们多方面的环境效益。我们解决了围绕利用光合微生物进行微塑料和纳米塑料(NPs)生物修复的关键科学问题,讨论了提高功效的潜在工程策略。我们的综述强调了替代生物材料的重要性,以及探索表达酶(如聚对苯二甲酸乙二酯(PET)水解酶)的菌株与微藻和/或蓝藻代谢相结合的意义。此外,我们深入探讨了光生物催化方法的广阔潜力,强调塑料碎片降解与阳光照射的耦合。探索了微藻-细菌联合体在对抗微塑料和纳米塑料污染的生物技术应用中的潜力,展示了通过吸收氮、重金属、磷和碳在废水处理中的协同效应。总之,本综述全面概述了利用光合自养细胞进行塑料生物修复的研究现状。它强调了继续研究这些微生物工程以及开发创新方法以解决水生和陆地生态系统中塑料污染这一全球问题的必要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/32e7/10965471/2d1b419ae5f6/ga1.jpg

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