微生物辅助植物修复土壤中的有毒元素:现有知识和未来展望

IF 10.8 1区 地球科学 Q1 GEOSCIENCES, MULTIDISCIPLINARY Earth-Science Reviews Pub Date : 2024-06-28 DOI:10.1016/j.earscirev.2024.104854
Guo Yu , Habib Ullah , Balal Yousaf , Krzysztof Pikoń , Vasileios Antoniadis , Majeti Narasimha Vara Prasad , Nanthi Bolan , Jörg Rinklebe , Rao Zepeng , Sabry M. Shaheen , Liheng Liu
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引用次数: 0

摘要

面对城市化和工业化带来的日益严重的人为影响,我们的研究深入探讨了土壤中潜在有毒元素(PTEs)污染的关键领域,揭开了危及土壤环境及其重要微生物和酶活性的复杂相互作用网络。与有机污染物不同,PTEs 可抗微生物降解,其存在会扰乱土壤微生物和酶的活动,影响养分循环和植物生长。人们需要找到有效的自然解决方案来解决土壤中的 PTE 污染问题;这一需求促使人们对生物修复技术越来越感兴趣,利用细菌、真菌、藻类和植物进行可持续的环境清理。虽然以前的综述涉及 PTEs 污染土壤生物修复的一般原则,但还没有关于微生物辅助植物修复(MAP)现状的重要综述。特别是,本综述旨在细致研究 PTEs 胁迫下高积累植物根瘤层中未被充分研究的各种微生物--古细菌、细菌和真菌--的作用。在此过程中,它还拓展了我们对植物根部微生物群对高积累植物中 PTEs 植物修复作用的理解。我们重点研究了 PTE 污染如何影响植物信号通路、根部渗出物特征以及随后与不同微生物群落的相互作用。此外,我们还讨论了古细菌对 MAP 的行为,填补了目前认识上的一个重大空白。此外,我们还全面分析了微生物群落如何与高积累者相互作用,并讨论了最新的研究,这些研究超越了已知的有机酸生产者的作用,探讨了更广泛的多样化植物生物群如何与植物合作解毒 PTEs,以有趣的方式影响生物地球化学循环。这篇综述探讨了促进植物生长的生化和分子机制,对该领域的现有知识和未来前景提供了一个全面的视角。通过综合现有知识,本综述深入探讨了修复受 PTEs 污染的土壤的有效策略。研究结果对研究人员、环境科学家和政策制定者具有重要意义,为今后解决日益严重的 PTEs 污染问题及其对土壤生态系统的影响提供了指导。
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Microbe-assisted phytoremediation of toxic elements in soils: Present knowledge and future prospects

In the face of escalating anthropogenic impacts stemming from urbanization and industrialization, our study delves into the critical realm of potentially toxic elements (PTEs) contamination in soil, unraveling a complex web of interactions that imperil soil environments and their vital microbial and enzymatic activities. Unlike organic pollutants, PTEs resist microbial degradation and their presence disrupts soil microbial and enzymatic activities, affecting the nutrient cycle and plant growth. There is a need to find effective nature-based solutions for addressing soil contamination with PTEs; this quest has led to increased interest in bioremediation, utilizing bacteria, fungi, algae, and plants for sustainable environmental cleanup. While previous reviews have addressed general principles about the bioremediation of PTEs contaminated soils, there are no critical reviews which have been published about the current state of the microbe-assisted phytoremediation (MAP). Particularly, this review aims at meticulously examining the understudied roles of diverse microbes-archaea, bacteria, and fungi in the rhizosphere of hyperaccumulators under PTEs stress. In doing so, it also expands our understanding of the plant root microbiome's contribution to phytoremediation of PTEs in hyperaccumulator plants. We focus on how PTE pollution influences plant signaling pathways, root exudate profiles, and subsequent interactions with diverse microbial communities. Also, we discuss the behavior of archaea towards MAP, filling a significant gap in current understanding. Moreover, we comprehensively analyze how microbial communities interact with hyperaccumulators, and discuss the most recent research that expands beyond the known role of organic acid producers to explore how a wider range of diverse phytobiome collaborates with plants to detoxify PTEs, influencing biogeochemical cycles in intriguing ways. This review examines the biochemical and molecular mechanisms that promote plant growth, offering a comprehensive perspective on the present knowledge and future prospects in this field. By synthesizing existing knowledge, this review provides insights into effective strategies for remediating PTEs-polluted soils. The findings are relevant for researchers, environmental scientists, and policymakers, guiding future efforts to address the growing issue of PTEs contamination and its impact on soil ecosystems.

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来源期刊
Earth-Science Reviews
Earth-Science Reviews 地学-地球科学综合
CiteScore
21.70
自引率
5.80%
发文量
294
审稿时长
15.1 weeks
期刊介绍: Covering a much wider field than the usual specialist journals, Earth Science Reviews publishes review articles dealing with all aspects of Earth Sciences, and is an important vehicle for allowing readers to see their particular interest related to the Earth Sciences as a whole.
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