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钾转运蛋白KUP9调节植物对钾缺乏的反应,并影响拟南芥中的碳水化合物分配。

Potassium transporter KUP9 regulates plant response to K deficiency and affects carbohydrate allocation in A.thaliana.

作者信息

Šustr Marek, Konrádová Hana, Martinčová Michaela, Soukup Aleš, Tylová Edita

机构信息

Department of Experimental Plant Biology, Faculty of Science, Charles University, Viničná 5, Prague, 12844, Czech Republic.

Department of Experimental Plant Biology, Faculty of Science, Charles University, Viničná 5, Prague, 12844, Czech Republic.

出版信息

J Plant Physiol. 2024 Jan;292:154147. doi: 10.1016/j.jplph.2023.154147. Epub 2023 Dec 2.

Abstract

Due to the essential roles of K in plants, its up to 10% share in plant dry matter, and its mostly low availability in soil, effective potassium management poses a significant challenge for the plant. To enable efficient uptake and allocation of K, numerous transporters and channels have evolved. During the last two decades, efforts have been made to characterise these transport proteins in Arabidopsis thaliana using knock-out mutants. Several KT/HAK/KUP transporters have been assigned specific functions. In this work, we contribute to an understanding of the role of AtKUP9 in plant adaptation to low K availability. We found that in vitro, atkup9 has reduced lateral root growth under low-K conditions, and root apical meristem proliferation is reduced in lateral roots compared with the primary root. We also documented AtKUP9 expression in both roots and shoots and showed that AtKUP9 expression is modulated during plant ontogeny and as a result of K deprivation. Altered carbohydrate allocation was also documented in atkup9. Mutants exported more soluble saccharides from leaves under K rich conditions and, under K deficiency, atkup9 accumulated more soluble saccharides in the shoots. A possible role of AtKUP9 in these processes is discussed.

摘要

由于钾在植物中具有重要作用,其在植物干物质中所占比例高达10%,且在土壤中的有效性大多较低,因此有效的钾管理对植物构成了重大挑战。为了实现钾的高效吸收和分配,植物进化出了众多转运体和通道。在过去二十年中,人们利用敲除突变体对拟南芥中的这些转运蛋白进行了表征。一些KT/HAK/KUP转运体已被赋予特定功能。在这项工作中,我们有助于了解AtKUP9在植物适应低钾环境中的作用。我们发现,在体外,atkup9在低钾条件下侧根生长减少,与主根相比,侧根的根尖分生组织增殖减少。我们还记录了AtKUP9在根和地上部的表达,并表明AtKUP9的表达在植物个体发育过程中以及钾缺乏时受到调节。在atkup9中也记录到了碳水化合物分配的改变。突变体在富钾条件下从叶片中输出更多可溶性糖类,而在钾缺乏时,atkup9在地上部积累了更多可溶性糖类。本文讨论了AtKUP9在这些过程中的可能作用。

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