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高温防御途径介导玉米雄穗小穗叶的扩张和小穗的张开。

High temperature defense pathways mediate lodicule expansion and spikelet opening in maize tassels.

机构信息

College of Agronomy and Biotechnology, China Agricultural University, Beijing, 100193, China.

出版信息

J Exp Bot. 2023 Jun 27;74(12):3684-3699. doi: 10.1093/jxb/erad115.

DOI:10.1093/jxb/erad115
PMID:36967717
Abstract

High temperature (HT) at flowering hinders pollen shedding, but the mechanisms underlying stress-induced spikelet closure are poorly understood in maize. In this study, yield components, spikelet opening, and lodicule morphology/protein profiling upon HT stress during flowering were examined in two contrasting maize inbred lines, Chang 7-2 and Qi 319. HT induced spikelet closure and reduced pollen shed weight (PSW) and seed set in both lines, but Qi 319 had a 7-fold lower PSW than Chang 7-2, and was thus more susceptible to HT. In Qi 319, a smaller lodicule size reduced the spikelet opening rate and angle, and relatively more vascular bundles hastened lodicule shrinking compared with Chang 7-2. Lodicules were collected for proteomics analysis. In lodicules of HT-stressed plants, proteins involved in stress signals, cell wall, cell constructure, carbohydrate metabolism, and phytohormone signaling were associated with stress tolerance. HT down-regulated the expression of ADP-ribosylation factor GTPase-activating protein domain2, SNAP receptor complex member11, and sterol methyltransferase2 in Qi 319 but not in Chang 7-2, which was in good agreement with the observed changes in protein abundance. Exogenous epibrassinolide increased the spikelet opening angle and extended the duration of spikelet opening. These results suggest that dysfunction of the actin cytoskeleton and membrane remodeling induced by HT probably limits lodicule expansion. In addition, a reduction in the vascular bundles in the lodicules and application of epibrassinolide might confer spikelet tolerance to HT stress.

摘要

高温(HT)在开花时会阻碍花粉脱落,但在玉米中,应激诱导小穗闭合的机制还知之甚少。在这项研究中,在开花期 HT 应激下,我们检查了两个不同的玉米自交系 Chang 7-2 和 Qi 319 的产量构成、小穗开放和内稃形态/蛋白质谱。HT 诱导小穗闭合,降低花粉脱落重量(PSW)和结实率,但 Qi 319 的 PSW 比 Chang 7-2 低 7 倍,因此对 HT 更敏感。在 Qi 319 中,较小的内稃尺寸降低了小穗的开放率和角度,并且与 Chang 7-2 相比,相对更多的维管束加速了内稃的收缩。我们收集内稃进行蛋白质组学分析。在 HT 胁迫下植物的内稃中,与应激耐受相关的蛋白质包括应激信号、细胞壁、细胞结构、碳水化合物代谢和植物激素信号转导。HT 下调了 Qi 319 中 ADP-核糖基化因子 GTP 酶激活蛋白结构域 2、SNAP 受体复合物成员 11 和甾醇甲基转移酶 2 的表达,但在 Chang 7-2 中没有,这与观察到的蛋白质丰度变化一致。外源油菜素内酯增加了小穗的开放角度,并延长了小穗开放的持续时间。这些结果表明,HT 诱导的肌动蛋白细胞骨架和膜重塑功能障碍可能限制了内稃的扩张。此外,内稃维管束减少和油菜素内酯的应用可能使小穗对 HT 应激具有耐受性。

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