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硅在缓解植物环境胁迫中的多方面作用。

Multifaceted roles of silicon in mitigating environmental stresses in plants.

机构信息

Department of Botany, Yashavantrao Chavan Institute of Science, Satara, 415 001, Maharashtra, India.

Department of Botany, Savitribai Phule Pune University, Pune, 411 007, Maharashtra, India; Department of Biotechnology, Yashavantrao Chavan Institute of Science, Satara, 415 001, Maharashtra, India.

出版信息

Plant Physiol Biochem. 2021 Dec;169:291-310. doi: 10.1016/j.plaphy.2021.11.010. Epub 2021 Nov 13.

Abstract

Food security relies on plant productivity and plant's resilience to climate change driven environmental stresses. Plants employ diverse adaptive mechanisms of stress-signalling pathways, antioxidant defense, osmotic adjustment, nutrient homeostasis and phytohormones. Over the last few decades, silicon has emerged as a beneficial element for enhancing plant growth productivity. Silicon ameliorates biotic and abiotic stress conditions by regulating the physiological, biochemical and molecular responses. Si-uptake and transport are facilitated by specialized Si-transporters (Lsi1, Lsi2, Lsi3, and Lsi6) and, the differential root anatomy has been shown to reflect in the varying Si-uptake in monocot and dicot plants. Silicon mediates a number of plant processes including osmotic, ionic stress responses, metabolic processes, stomatal physiology, phytohormones, nutrients and source-sink relationship. Further studies on the transcriptional and post-transcriptional regulation of the Si transporter genes are required for better uptake and transport in spatial mode and under different stress conditions. In this article, we present an account of the availability, uptake, Si transporters and, the role of Silicon to alleviate environmental stress and improve plant productivity.

摘要

粮食安全依赖于植物的生产力和对气候变化驱动的环境压力的适应能力。植物采用多种适应性机制,包括应激信号通路、抗氧化防御、渗透调节、养分稳态和植物激素。在过去几十年中,硅已成为提高植物生长生产力的有益元素。硅通过调节生理、生化和分子反应来改善生物和非生物胁迫条件。硅的吸收和运输由专门的硅转运蛋白(Lsi1、Lsi2、Lsi3 和 Lsi6)促进,不同的根系解剖结构已被证明反映了单子叶植物和双子叶植物中不同的硅吸收。硅介导了许多植物过程,包括渗透、离子胁迫反应、代谢过程、气孔生理学、植物激素、养分和源库关系。需要进一步研究硅转运蛋白基因的转录和转录后调控,以更好地在空间模式下和不同胁迫条件下进行吸收和运输。在本文中,我们介绍了硅的可用性、吸收、硅转运蛋白以及硅在缓解环境胁迫和提高植物生产力方面的作用。

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