Burning question: Rethinking organohalide degradation strategy for bioremediation applications

IF 5.7 2区 生物学 Microbial Biotechnology Pub Date : 2024-07-29 DOI:10.1111/1751-7915.14539
Qihong Lu, Qi Liang, Shanquan Wang
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Abstract

Organohalides are widespread pollutants that pose significant environmental hazards due to their high degree of halogenation and elevated redox potentials, making them resistant to natural attenuation. Traditional bioremediation approaches, primarily relying on bioaugmentation and biostimulation, often fall short of achieving complete detoxification. Furthermore, the emergence of complex halogenated pollutants, such as per- and polyfluoroalkyl substances (PFASs), further complicates remediation efforts. Therefore, there is a pressing need to reconsider novel approaches for more efficient remediation of these recalcitrant pollutants. This review proposes novel redox-potential-mediated hybrid bioprocesses, tailored to the physicochemical properties of pollutants and their environmental contexts, to achieve complete detoxification of organohalides. The possible scenarios for the proposed bioremediation approaches are further discussed. In anaerobic environments, such as sediment and groundwater, microbial reductive dehalogenation coupled with fermentation and methanogenesis can convert organohalides into carbon dioxide and methane. In environments with anaerobic-aerobic alternation, such as paddy soil and wetlands, a synergistic process involving reduction and oxidation can facilitate the complete mineralization of highly halogenated organic compounds. Future research should focus on in-depth exploration of microbial consortia, the application of ecological principles-guided strategies, and the development of bioinspired-designed techniques. This paper contributes to the academic discourse by proposing innovative remediation strategies tailored to the complexities of organohalide pollution.

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亟待解决的问题:重新思考生物修复应用中的有机卤化物降解策略。
有机卤化物是一种广泛存在的污染物,因其高度卤化和氧化还原电位升高而对自然衰减产生抗性,对环境造成严重危害。传统的生物修复方法主要依靠生物增量和生物刺激,但往往无法实现完全解毒。此外,全氟烷基和多氟烷基物质(PFASs)等复杂卤化污染物的出现,使修复工作变得更加复杂。因此,迫切需要重新考虑新的方法,以更有效地修复这些难处理的污染物。本综述针对污染物的物理化学特性及其环境背景,提出了新型氧化还原电位介导的混合生物工艺,以实现有机卤化物的完全解毒。本文进一步讨论了拟议生物修复方法的可能应用场景。在沉积物和地下水等厌氧环境中,微生物还原脱卤与发酵和甲烷生成相结合,可将有机卤化物转化为二氧化碳和甲烷。在厌氧-好氧交替的环境中,如稻田土壤和湿地,涉及还原和氧化的协同过程可促进高卤化有机化合物的完全矿化。未来的研究应侧重于对微生物联合体的深入探索、生态学原理指导下的策略应用以及生物启发设计技术的开发。本文针对有机卤化物污染的复杂性,提出了创新性的修复策略,为学术讨论做出了贡献。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Microbial Biotechnology
Microbial Biotechnology Immunology and Microbiology-Applied Microbiology and Biotechnology
CiteScore
11.20
自引率
3.50%
发文量
162
审稿时长
1 months
期刊介绍: Microbial Biotechnology publishes papers of original research reporting significant advances in any aspect of microbial applications, including, but not limited to biotechnologies related to: Green chemistry; Primary metabolites; Food, beverages and supplements; Secondary metabolites and natural products; Pharmaceuticals; Diagnostics; Agriculture; Bioenergy; Biomining, including oil recovery and processing; Bioremediation; Biopolymers, biomaterials; Bionanotechnology; Biosurfactants and bioemulsifiers; Compatible solutes and bioprotectants; Biosensors, monitoring systems, quantitative microbial risk assessment; Technology development; Protein engineering; Functional genomics; Metabolic engineering; Metabolic design; Systems analysis, modelling; Process engineering; Biologically-based analytical methods; Microbially-based strategies in public health; Microbially-based strategies to influence global processes
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