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ZmLBD5是一种II类LBD基因,通过损害脱落酸合成来负向调节耐旱性。

ZmLBD5, a class-II LBD gene, negatively regulates drought tolerance by impairing abscisic acid synthesis.

作者信息

Feng Xuanjun, Xiong Jing, Zhang Weixiao, Guan Huarui, Zheng Dan, Xiong Hao, Jia Li, Hu Yue, Zhou Hanmei, Wen Ying, Zhang Xuemei, Wu Fengkai, Wang Qingjun, Xu Jie, Lu Yanli

机构信息

State Key Laboratory of Crop Gene Exploration and Utilization in Southwest China, Wenjiang, Sichuan, 611130, China.

Maize Research Institute of Sichuan Agricultural University, Wenjiang, Sichuan, 611130, China.

出版信息

Plant J. 2022 Dec;112(6):1364-1376. doi: 10.1111/tpj.16015. Epub 2022 Nov 19.

Abstract

Lateral organ boundaries domain (LBD) proteins are plant-specific transcription factors. Class-I LBD genes have been widely demonstrated to play pivotal roles in organ development; however, knowledge on class-II genes remains limited. Here, we report that ZmLBD5, a class-II LBD gene, is involved in the regulation of maize (Zea mays) growth and the drought response by affecting gibberellin (GA) and abscisic acid (ABA) synthesis. ZmLBD5 is mainly involved in regulation of the TPS-KS-GA2ox gene module, which is comprised of key enzyme-encoding genes involved in GA and ABA biosynthesis. ABA insufficiency increases stomatal density and aperture in overexpression plants and causes a drought-sensitive phenotype by promoting water transpiration. Increased GA levels promotes seedling growth in overexpression plants. Accordingly, CRISPR/Cas9 knockout lbd5 seedlings are dwarf but drought-tolerant. Moreover, lbd5 has a higher grain yield under drought stress conditions and shows no penalty in well-watered conditions compared to the wild type. On the whole, ZmLBD5 is a negative regulator of maize drought tolerance, and it is a potentially useful target for drought resistance breeding.

摘要

侧生器官边界结构域(LBD)蛋白是植物特有的转录因子。I类LBD基因已被广泛证明在器官发育中起关键作用;然而,关于II类基因的了解仍然有限。在此,我们报道了一个II类LBD基因ZmLBD5,它通过影响赤霉素(GA)和脱落酸(ABA)的合成参与玉米(Zea mays)生长和干旱响应的调控。ZmLBD5主要参与TPS-KS-GA2ox基因模块的调控,该模块由参与GA和ABA生物合成的关键酶编码基因组成。ABA不足会增加过表达植株的气孔密度和孔径,并通过促进水分蒸腾导致干旱敏感表型。GA水平升高促进过表达植株的幼苗生长。因此,CRISPR/Cas9敲除lbd5幼苗矮小但耐旱。此外,与野生型相比,lbd5在干旱胁迫条件下具有更高的籽粒产量,在水分充足条件下没有产量损失。总体而言,ZmLBD5是玉米耐旱性的负调控因子,是抗旱育种的一个潜在有用靶点。

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