Metalloid transporters in plants: bridging the gap in molecular structure and physiological exaptation.

IF 5.6 2区 生物学 Q1 PLANT SCIENCES
Yogesh Sharma, Andrew M Hemmings, Rupesh Deshmukh, Ashwani Pareek
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引用次数: 0

Abstract

The rhizosphere contains both essential nutrients and potentially harmful substances for plant growth. Plants, as sessile organisms, must efficiently absorb the necessary nutrients while actively avoiding the uptake of toxic compounds. Metalloids, elements that exhibit properties of both metals and non-metals, can have different effects on plant growth, from being essential and beneficial to being toxic. This toxicity arises due to either the dosage of exposure or the specific elemental type. To utilize or detoxify these elements, plants have developed various transporters regulating their uptake and distribution in plants. Genomic sequence analysis suggests that such transporter families exist throughout the plant kingdom, from chlorophytes to higher plants. These transporters form defined families with related transport preferences. The isoforms within these families have evolved with specialized functions regulated by defined selectivity. Hence, understanding the chemistry of transporters to atomic detail is important to achieve the desired genetic modifications for crop improvement. We outline various adaptations in plant transport systems to deal with metalloids, including their uptake, distribution, detoxification, and homeostasis in plant tissues. Structural parallels are drawn to other nutrient transporter systems to support emerging themes of functional diversity of active sites of transporters, elucidating plant adaptations to utilize and extrude metalloid concentrations. Considering the observed physiological importance of metalloids, this review highlights the shared and disparate features in metalloid transport systems and their corresponding nutrient transporters.

植物中的类金属转运体:弥合分子结构与生理适应之间的差距。
根瘤层中既有植物生长所必需的营养物质,也有潜在的有害物质。植物作为无柄生物,必须有效地吸收必要的养分,同时积极避免吸收有毒化合物。类金属元素既具有金属的特性,也具有非金属的特性,它们对植物的生长有不同的影响,既有必要的、有益的,也有有毒的。金属元素对植物的毒性取决于接触的剂量或特定的元素类型。为了利用这些元素或对其进行解毒,植物开发了各种转运体来调节它们在植物体内的吸收和分布。可以说,基因组序列分析表明,从叶绿体到高等植物,整个植物王国都存在这种转运体家族。这些转运体组成了具有相关转运偏好的明确家族。这些家族中的异构体在进化过程中通过明确的选择性实现了专门的功能。因此,了解转运体的化学原子细节对于实现作物改良所需的基因修饰非常重要。在此,我们概述了植物转运系统应对金属的各种适应性,包括金属在植物组织中的吸收、分布、解毒和平衡。结构上与其他养分转运系统相似,以支持转运体活性位点功能多样性的新主题,阐明植物利用和排出金属类物质浓度的适应性。考虑到所观察到的类金属的生理重要性,本综述旨在强调类金属转运系统及其相应营养物质转运体的共同特征和不同特征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Experimental Botany
Journal of Experimental Botany 生物-植物科学
CiteScore
12.30
自引率
4.30%
发文量
450
审稿时长
1.9 months
期刊介绍: The Journal of Experimental Botany publishes high-quality primary research and review papers in the plant sciences. These papers cover a range of disciplines from molecular and cellular physiology and biochemistry through whole plant physiology to community physiology. Full-length primary papers should contribute to our understanding of how plants develop and function, and should provide new insights into biological processes. The journal will not publish purely descriptive papers or papers that report a well-known process in a species in which the process has not been identified previously. Articles should be concise and generally limited to 10 printed pages.
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