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植物重金属毒性的多组学应用及修复综合综述。

Comprehensive review of multiomics applications and remediation of plant heavy metal toxicity.

作者信息

Khan Tamana, Shah Labiba, Khan Sabba, Wani Owais Ali, Sheikh Zahid Nabi, Afroza Baseerat, Rashid Rizwan, Baloch Faheem Shahzad, Mansoor Sheikh

机构信息

Division of Vegetable Science, Faculty of Horticulture, Sher e Kashmir University of Agricultural Sciences and Technology of Kashmir, Shalimar- 190025, Jammu and Kashmir, India.

Division of Soil Science and Agricultural Chemistry, Faculty of Agriculture, SKUAST Kashmir, Srinagar, 193201, India.

出版信息

Stress Biol. 2025 Sep 16;5(1):58. doi: 10.1007/s44154-025-00233-w.

Abstract

Heavy metal pollution severely impacts plant health by inhibiting growth, photosynthesis, enzyme activities, and causing oxidative stress. Plants respond to such stress by activating complex defense mechanisms involving reactive oxygen species and different signaling pathways. These pathways are pivotal in triggering plant defense responses and are currently a major focus of research. Understanding the complex mechanisms of heavy metal uptake, transport, chelation, and signaling can guide strategies to improve plant resilience and stress tolerance. In this review, we aim to highlight the key heavy metals found in soil and the environment, along with their mechanisms of accumulation in plants. We also explore the defense responses of plants through various signaling pathways such as calcium (Ca), MAP kinase, and hormone signaling. Additionally, we emphasize the importance of understanding advanced omics technologies, including transcriptomics, metabolomics, and bioinformatic tools, in enhancing our knowledge of plant resilience and stress tolerance.

摘要

重金属污染通过抑制生长、光合作用、酶活性以及引起氧化应激,严重影响植物健康。植物通过激活涉及活性氧和不同信号通路的复杂防御机制来应对这种胁迫。这些通路在触发植物防御反应中起着关键作用,目前是研究的主要焦点。了解重金属吸收、运输、螯合和信号传导的复杂机制,可以指导提高植物恢复力和胁迫耐受性的策略。在本综述中,我们旨在强调土壤和环境中发现的关键重金属及其在植物中的积累机制。我们还通过各种信号通路,如钙(Ca)、丝裂原活化蛋白激酶和激素信号传导,探索植物的防御反应。此外,我们强调了解先进的组学技术,包括转录组学、代谢组学和生物信息学工具,对于增强我们对植物恢复力和胁迫耐受性的认识的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6f5a/12440847/8c99d8565bb2/44154_2025_233_Fig1_HTML.jpg

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