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硅对水果作物生物和非生物胁迫的防治作用:当前研究与未来挑战。

Silicon derived benefits to combat biotic and abiotic stresses in fruit crops: Current research and future challenges.

机构信息

MS Swaminathan School of Agriculture, Shoolini University of Biotechnology and Management Sciences, Solan, Himachal Pradesh, India; Department of Seed Science and Technology, Dr YS Parmar University of Horticulture and Forestry, Nauni, Solan, Himachal Pradesh, India.

Department of Seed Science and Technology, Dr YS Parmar University of Horticulture and Forestry, Nauni, Solan, Himachal Pradesh, India.

出版信息

Plant Physiol Biochem. 2024 Jun;211:108680. doi: 10.1016/j.plaphy.2024.108680. Epub 2024 Apr 30.

DOI:10.1016/j.plaphy.2024.108680
PMID:38701606
Abstract

Fruit crops are frequently subjected to biotic and abiotic stresses that can significantly reduce the absorption and translocation of essential elements, ultimately leading to a decrease in crop yield. It is imperative to grow fruits and vegetables in areas prone to drought, salinity, and extreme high, and low temperatures to meet the world's minimum nutrient demand. The use of integrated approaches, including supplementation of beneficial elements like silicon (Si), can enhance plant resilience under various stresses. Silicon is the second most abundant element on the earth crust, following oxygen, which plays a significant role in development and promote plant growth. Extensive efforts have been made to explore the advantages of Si supplementation in fruit crops. The application of Si to plants reinforces the cell wall, providing additional support through enhancing a mechanical and biochemical processes, thereby improving the stress tolerance capacity of crops. In this review, the molecular and physiological mechanisms that explain the beneficial effects of Si supplementation in horticultural crop species have been discussed. The review describes the role of Si and its transporters in mitigation of abiotic stress conditions in horticultural plants.

摘要

水果作物经常受到生物和非生物胁迫的影响,这会显著降低必需元素的吸收和转运,最终导致作物产量下降。为了满足世界对最低养分的需求,必须在易受干旱、盐度、极端高温和低温影响的地区种植水果和蔬菜。采用综合方法,包括补充有益元素如硅(Si),可以增强植物在各种胁迫下的恢复力。硅是地壳中仅次于氧的第二大丰富元素,在植物发育和生长中起着重要作用。人们已经做出了广泛的努力来探索硅补充在水果作物中的优势。将硅应用于植物可以增强细胞壁,通过增强机械和生化过程提供额外的支撑,从而提高作物的抗胁迫能力。在这篇综述中,讨论了硅补充在园艺作物品种中有益作用的分子和生理机制。该综述描述了硅及其转运蛋白在减轻园艺植物非生物胁迫条件中的作用。

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