环境微塑料(MPs)在逆境条件下通过细菌降解的增强:关键酶,途径和机制。

IF 4.2 3区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Kanika Sharma, Monika Sharma, Nandini Thakur, Habib Ullah, Sedky H A Hassan, Yuanzhang Zheng, Xiangkai Li, Mohamed Sakran, El-Sayed S Salama
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引用次数: 0

摘要

微塑料是一种新兴的污染物,需要有效的生物修复策略。包括微生物实施、酶和昆虫介导的降解在内的策略已经有效地部署和审查了MPs的生物降解。因此,本综述着重于利用多种应激源(生物和非生物)来促进MPs的生物降解。强调了MPs降解机制,主要酶的参与,以及应激介导的细菌反应。介绍了MPs在不同胁迫下生物降解的主要途径。此外,还考虑了应力在污水处理厂(WWTPs)上的实际应用。据报道,在40-80℃胁迫下,热菌对聚苯乙烯(PS)的修复率为43.7%,而pH胁迫下,B. krulwichiae对低密度聚乙烯(LDPE)的生物降解率为9.9%。当NaCl浓度为3 M时,芽孢杆菌的蛋白酶含量提高了48倍。UV-C辐射使P. aeruginosa聚乙烯/聚苯乙烯(PE/PS)蛋白酶活性提高了75.47%。据报道,细菌对应激的反应是由酶上调、生物膜形成和代谢变化介导的。定向胁迫通过特定的细菌适应性和酶活性增强MPs的生物降解。特殊的压力需要一种特殊的机制来加速细菌MPs的降解。未来的研究应着眼于探索复合应激源的协同效应,开展全面的生态风险评估,并开展大规模的野外试验,以确保应激介导的MPs生物修复的可持续性和生态系统兼容性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancement of environmental microplastics (MPs) degradation via bacteria under stress conditions: key enzymes, pathways, and mechanisms.

Microplastics (MPs) are an emerging pollutant that needs effective bioremediation strategies. Strategies, including microbial implementation, enzymes, and insect-mediated degradation, have been effectively deployed and reviewed for the biodegradation of MPs. Thus, this review focused on utilizing multiple stressors (biotic and abiotic) to enhance MPs biodegradation. MPs degradation mechanism, major enzymes involved, and stress-mediated bacterial responses are highlighted. The key routes for MPs biodegradation under various stress are covered. Furthermore, the applications of stresses on wastewater treatment plants (WWTPs) for real-world application are also considered. Thermus sp. is reported to remediate polystyrene (PS) by 43.7% at 40-80 °C stress, whereas pH stress showed enhanced low-density polyethylene (LDPE) biodegradation (9.9%) under B. krulwichiae. Salinity up to 3 M NaCl, when applied to Bacillus sp., showed 48 times higher protease content. Radiation UV-C on P. aeruginosa increased polyethylene/polystyrene (PE/PS) protease activity by 75.47%. The bacterial response to stress was reported to be mediated by enzyme upregulation, biofilm formation, and metabolic shifts. Targeted stress enhanced MPs biodegradation through specific bacterial adaptations and enzymatic activity. Particular stress requires a specific mechanism to accelerate bacterial MPs degradation. Future research should aim to explore the synergistic effects of combined stressors, conduct comprehensive ecological risk assessments, and implement large-scale field trials to ensure the sustainability and ecosystem compatibility of stress-mediated MPs bioremediation.

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来源期刊
World journal of microbiology & biotechnology
World journal of microbiology & biotechnology 工程技术-生物工程与应用微生物
CiteScore
6.30
自引率
2.40%
发文量
257
审稿时长
2.5 months
期刊介绍: World Journal of Microbiology and Biotechnology publishes research papers and review articles on all aspects of Microbiology and Microbial Biotechnology. Since its foundation, the Journal has provided a forum for research work directed toward finding microbiological and biotechnological solutions to global problems. As many of these problems, including crop productivity, public health and waste management, have major impacts in the developing world, the Journal especially reports on advances for and from developing regions. Some topics are not within the scope of the Journal. Please do not submit your manuscript if it falls into one of the following categories: · Virology · Simple isolation of microbes from local sources · Simple descriptions of an environment or reports on a procedure · Veterinary, agricultural and clinical topics in which the main focus is not on a microorganism · Data reporting on host response to microbes · Optimization of a procedure · Description of the biological effects of not fully identified compounds or undefined extracts of natural origin · Data on not fully purified enzymes or procedures in which they are applied All articles published in the Journal are independently refereed.
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