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角质层蜡质——在应对干旱胁迫时,突变体 CBP20(Cap-Binding Protein 20)基因的大麦的一道屏障。

Cuticular waxes-A shield of barley mutant in CBP20 (Cap-Binding Protein 20) gene when struggling with drought stress.

机构信息

Institute of Biology, Biotechnology and Environmental Protection, Faculty of Natural Sciences, University of Silesia in Katowice, Jagiellonska 28, 40-032, Katowice, Poland.

Institute of Biology, Biotechnology and Environmental Protection, Faculty of Natural Sciences, University of Silesia in Katowice, Jagiellonska 28, 40-032, Katowice, Poland.

出版信息

Plant Sci. 2020 Nov;300:110593. doi: 10.1016/j.plantsci.2020.110593. Epub 2020 Aug 1.

Abstract

CBP20 (Cap-Binding Protein 20) encodes a small subunit of nuclear Cap-Binding Complex (nCBC) that together with CBP80 binds mRNA cap. We previously described barley hvcbp20.ab mutant that demonstrated higher leaf water content and faster stomatal closure than the WT after drought stress. Hence, we presumed that the better water-saving mechanism in hvcbp20.ab may result from the lower permeability of epidermis that together with stomata action limit the water evaporation under drought stress. We asked whether hvcbp20.ab exhibited any differences in wax load on the leaf surface when subjected to drought in comparison to WT cv. 'Sebastian'. To address this question, we investigated epicuticular wax structure and chemical composition under drought stress in hvcbp20.ab mutant and its WT. We showed that hvcbp20.ab mutant exhibited the increased deposition of cuticular wax. Moreover, our gene expression results suggested a role of HvCBP20 as a negative regulator of both, the biosynthesis of waxes at the level of alkane-forming, and waxes transportation. Interestingly, we also observed increased wax deposition in Arabidopsis cbp20 mutant exposed to drought, which allowed us to describe the CBP20-regulated epicuticular wax accumulation under drought stress in a wider evolutionarily context.

摘要

CBP20(Cap-Binding Protein 20)编码核帽结合复合物(nCBC)的一个小亚基,与 CBP80 一起结合 mRNA 帽。我们之前描述了大麦 hvcbp20.ab 突变体,与 WT 相比,该突变体在干旱胁迫后表现出更高的叶片含水量和更快的气孔关闭。因此,我们推测 hvcbp20.ab 中更好的节水机制可能源于表皮渗透率降低,加上气孔作用,限制了干旱胁迫下的水分蒸发。我们想知道在干旱胁迫下,hvcbp20.ab 与 WT 品种 'Sebastian' 相比,叶片表面蜡质负载是否存在任何差异。为了解决这个问题,我们研究了 hvcbp20.ab 突变体及其 WT 在干旱胁迫下的表皮蜡结构和化学成分。结果表明,hvcbp20.ab 突变体表现出角质层蜡的沉积增加。此外,我们的基因表达结果表明 HvCBP20 作为烷烃形成水平的蜡生物合成和蜡运输的负调节剂的作用。有趣的是,我们还观察到在干旱胁迫下拟南芥 cbp20 突变体中蜡质沉积增加,这使我们能够在更广泛的进化背景下描述 CBP20 调控的干旱胁迫下表皮蜡积累。

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