Recent advances in microbial and bioelectrochemical strategies for degradation of per- and polyfluoroalkyl substances: mechanisms, limitations, and research opportunities.

IF 2 4区 生物学 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Haoran Yang, Jia Liu
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引用次数: 0

Abstract

Per- and polyfluoroalkyl substances (PFAS) are persistent environmental pollutants characterized by strong carbon-fluorine bonds, making them resistant to conventional degradation methods. Their widespread detection in soil, water, and living organisms, coupled with significant potential health risks, has necessitated the development of effective remediation strategies. This review provides a detailed overview of recent advances in biotechnological approaches for PFAS degradation, with a focus on microbial and bioelectrochemical systems (BESs). Microbial species such as Pseudomonas and Acidimicrobium strains have demonstrated the ability to degrade PFAS under both aerobic and anaerobic conditions. Key enzymes, including dehalogenases and oxygenases, play a critical role in catalyzing the breakdown of PFAS. BESs technologies, including microbial fuel cells (MFCs) and microbial electrolysis cells (MECs), offer innovative solutions by combining microbial activity with electrochemical processes to enhance PFAS removal efficiency. Advanced BESs configurations, such as constructed wetland-MFCs, have further demonstrated the potential for enhanced PFAS removal through electrode adsorption and plant uptake. Despite significant progress, challenges remain, including PFAS toxicity, the complexity of environmental matrices, incomplete mineralization, scalability, and public safety concerns. Addressing these issues will require advancements in genetic engineering to develop robust microbial strains, optimization of BESs configurations, and integration with other advanced treatment technologies like advanced oxidation processes. Additionally, refining environmental factors such as pH, temperature, and the presence of humic substances is crucial for maximizing degradation efficiency. Future research should focus on scaling laboratory successes to field-scale applications, developing real-time monitoring tools for degradation processes, and addressing regulatory concerns. Through continuous innovation, biotechnological solutions offer a promising pathway to sustainable and effective PFAS remediation, addressing both environmental and public health concerns.

降解全氟烷基和多氟烷基物质的微生物和生物电化学策略的最新进展:机制、限制和研究机会。
全氟烷基和多氟烷基物质(PFAS)是持久性环境污染物,其特点是碳氟键很强,无法通过常规的降解方法降解。它们在土壤、水和生物体中广泛存在,再加上巨大的潜在健康风险,因此有必要制定有效的补救战略。本文详细介绍了降解PFAS的生物技术方法的最新进展,重点是微生物和生物电化学系统(BESs)。假单胞菌和酸性微生物菌株等微生物物种已经证明了在有氧和厌氧条件下降解PFAS的能力。关键酶,包括脱卤酶和加氧酶,在催化PFAS的分解中起着关键作用。BESs技术,包括微生物燃料电池(mfc)和微生物电解电池(MECs),通过将微生物活性与电化学过程相结合,提供了创新的解决方案,以提高PFAS的去除效率。先进的BESs配置,如人工湿地- mfc,已经进一步证明了通过电极吸附和植物吸收来增强PFAS去除的潜力。尽管取得了重大进展,但挑战依然存在,包括PFAS毒性、环境基质的复杂性、矿化不完全、可扩展性和公共安全问题。解决这些问题需要在基因工程方面取得进展,以开发健壮的微生物菌株,优化BESs配置,并与其他先进的处理技术(如高级氧化工艺)相结合。此外,改善环境因素,如pH值,温度和腐殖质物质的存在是最大限度地提高降解效率的关键。未来的研究应侧重于将实验室的成功扩展到现场规模的应用,开发降解过程的实时监测工具,并解决监管问题。通过不断创新,生物技术解决方案为可持续和有效的PFAS修复提供了一条有希望的途径,解决了环境和公共卫生问题。
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来源期刊
Biotechnology Letters
Biotechnology Letters 工程技术-生物工程与应用微生物
CiteScore
5.90
自引率
3.70%
发文量
108
审稿时长
1.2 months
期刊介绍: Biotechnology Letters is the world’s leading rapid-publication primary journal dedicated to biotechnology as a whole – that is to topics relating to actual or potential applications of biological reactions affected by microbial, plant or animal cells and biocatalysts derived from them. All relevant aspects of molecular biology, genetics and cell biochemistry, of process and reactor design, of pre- and post-treatment steps, and of manufacturing or service operations are therefore included. Contributions from industrial and academic laboratories are equally welcome. We also welcome contributions covering biotechnological aspects of regenerative medicine and biomaterials and also cancer biotechnology. Criteria for the acceptance of papers relate to our aim of publishing useful and informative results that will be of value to other workers in related fields. The emphasis is very much on novelty and immediacy in order to justify rapid publication of authors’ results. It should be noted, however, that we do not normally publish papers (but this is not absolute) that deal with unidentified consortia of microorganisms (e.g. as in activated sludge) as these results may not be easily reproducible in other laboratories. Papers describing the isolation and identification of microorganisms are not regarded as appropriate but such information can be appended as supporting information to a paper. Papers dealing with simple process development are usually considered to lack sufficient novelty or interest to warrant publication.
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