Heavy metals toxicity in plants: understanding mechanisms and developing coping strategies for remediation: a review.

IF 5.1 3区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Heba I Mohamed, Izhar Ullah, Muhammad Danish Toor, Nouraiz Ahmed Tanveer, Muhammad Mughees Ud Din, Abdul Basit, Yaqoob Sultan, Murad Muhammad, Muneeb Ur Rehman
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Abstract

Heavy metal (HM) contamination is an increasing environmental and agricultural concern due to the persistence, toxicity, and bioaccumulative nature of metals such as cadmium (Cd), lead (Pb), mercury (Hg), and arsenic (As). These pollutants are primarily introduced through industrial effluents, mining, and agrochemicals, negatively impacting soil health, crop productivity, and food safety, ultimately posing serious risks to both ecosystems and human health. Conventional remediation methods can be costly, labor-intensive, and environmentally disruptive. Heavy metals like Cd, Pb, Hg, and As disrupt cellular homeostasis, inhibit photosynthesis, generate oxidative stress, and interfere with nutrient uptake, leading to significant yield losses in plants. In response to these stresses, plants utilize complex molecular mechanisms for tolerance, including the activation of antioxidant enzymes, upregulation of metal transporters, production of metal-chelating molecules, and modulation of stress-responsive genes and transcription factors. In contrast, bioremediation offers a sustainable and eco-friendly alternative by leveraging the detoxification capabilities of plants, microbes, and their symbiotic interactions. Techniques such as phytoremediation, microbial-assisted remediation, and integrated strategies involving biochar and organic amendments have demonstrated promising results in restoring heavy metal-contaminated soils. Recent advancements in molecular biology and synthetic biology have further improved the efficiency of bioremediation through the genetic engineering of hyperaccumulator plant species and metal-resistant microbes. This review examines the toxic effects of heavy metals on plants and highlights innovative, nature-based remediation strategies, emphasizing their potential for scalable and sustainable environmental cleanup.

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重金属对植物的毒性:了解机制和制定应对策略:综述。
由于镉(Cd)、铅(Pb)、汞(Hg)和砷(as)等金属的持久性、毒性和生物蓄积性,重金属(HM)污染日益成为环境和农业关注的问题。这些污染物主要通过工业废水、采矿和农用化学品引入,对土壤健康、作物生产力和食品安全产生负面影响,最终对生态系统和人类健康构成严重风险。传统的修复方法可能成本高昂,劳动密集,并且破坏环境。镉、铅、汞和砷等重金属破坏细胞内平衡,抑制光合作用,产生氧化应激,干扰养分吸收,导致植物产量显著下降。为了应对这些胁迫,植物利用复杂的分子机制来产生耐受性,包括抗氧化酶的激活、金属转运蛋白的上调、金属螯合分子的产生以及应激反应基因和转录因子的调节。相比之下,生物修复通过利用植物、微生物及其共生相互作用的解毒能力,提供了一种可持续和环保的替代方案。植物修复、微生物辅助修复以及生物炭和有机改性的综合策略等技术在修复重金属污染土壤方面显示出良好的效果。近年来,分子生物学和合成生物学的进展进一步提高了生物修复的效率,通过基因工程的超积累植物物种和金属抗性微生物。本文综述了重金属对植物的毒性作用,重点介绍了创新的、基于自然的修复策略,强调了它们在可扩展和可持续的环境清理方面的潜力。
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来源期刊
Bioresources and Bioprocessing
Bioresources and Bioprocessing BIOTECHNOLOGY & APPLIED MICROBIOLOGY-
CiteScore
7.20
自引率
8.70%
发文量
118
审稿时长
13 weeks
期刊介绍: Bioresources and Bioprocessing (BIOB) is a peer-reviewed open access journal published under the brand SpringerOpen. BIOB aims at providing an international academic platform for exchanging views on and promoting research to support bioresource development, processing and utilization in a sustainable manner. As an application-oriented research journal, BIOB covers not only the application and management of bioresource technology but also the design and development of bioprocesses that will lead to new and sustainable production processes. BIOB publishes original and review articles on most topics relating to bioresource and bioprocess engineering, including: -Biochemical and microbiological engineering -Biocatalysis and biotransformation -Biosynthesis and metabolic engineering -Bioprocess and biosystems engineering -Bioenergy and biorefinery -Cell culture and biomedical engineering -Food, agricultural and marine biotechnology -Bioseparation and biopurification engineering -Bioremediation and environmental biotechnology
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