桦树 WRKY 转录因子 BpWRKY32 通过介导气孔关闭、脯氨酸积累和活性氧清除来提高耐盐性

IF 5.3 2区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Zhujun Liu, Pengyu Wang, Zhibo Wang, Chao Wang, Yucheng Wang
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引用次数: 0

摘要

植物 WRKY 转录因子(TFs)在非生物胁迫响应中发挥着重要作用。然而,WRKY 如何促进生理变化以赋予植物耐盐性仍有待研究。在这里,我们从桦树(Betula platyphylla Suk)中鉴定出了一种 WRKY TF--BpWRKY32,它能被盐胁迫显著诱导(P < 0.05)。BpWRKY32 与 W-box motif 结合,位于细胞核中。在盐胁迫条件下,OE 株系(BpWRKY32 过表达株系)的鲜重比 WT 株系增加了 66.36%,而 BpWRKY32 基因敲除株系(bpwrky32)的鲜重比 WT 株系减少了 39.49%。BpWRKY32调控BpRHC1、BpNRT1和BpMYB61的表达以减少气孔,与WT和bpwrky32相比,OE株的气孔孔径宽长比分别降低了46.23%和64.72%。BpWRKY32 诱导 P5CS 的表达,但抑制 P5CDH 的表达,导致 OE 株系的脯氨酸含量比 WT 和 bpwrky32 株系分别增加了 33.41% 和 97.58%。此外,BpWRKY32 还调控编码 SOD 和 POD 家族成员的基因,从而相应地提高了 SOD 和 POD 的活性。这些结果表明,BpWRKY32能调控目标基因以降低失水率、提高渗透势和减少ROS积累,从而提高耐盐性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Birch WRKY transcription factor, BpWRKY32, confers salt tolerance by mediating stomatal closing, proline accumulation, and reactive oxygen species scavenging

Plant WRKY transcription factors (TFs) play important roles in abiotic stress responses. However, how WRKY facilitate physiological changes to confer salt tolerance still needs to be studied. Here, we identified a WRKY TF from birch (Betula platyphylla Suk), BpWRKY32, which is significantly (P < 0.05) induced by salt stress. BpWRKY32 binds to W-box motif and is located in the nucleus. Under salt stress conditions, fresh weights (FW) of OE lines (BpWRKY32 overexpression lines) are increased by 66.36% than that of WT, while FW of knockout of BpWRKY32 (bpwrky32) lines are reduced by 39.49% compared with WT. BpWRKY32 regulates the expression of BpRHC1, BpNRT1, and BpMYB61 to reduce stomatal, and width-length ratio of the stomatal aperture in OE lines are reduced by 46.23% and 64.72% compared with in WT and bpwrky32 lines. BpWRKY32 induces P5CS expression, but inhibits P5CDH expression, leading to the proline content in OE lines are increased by 33.41% and 97.58% compared with WT and bpwrky32 lines. Additionally, BpWRKY32 regulates genes encoding SOD and POD family members, which correspondingly increases the activities of SOD and POD. These results suggested that BpWRKY32 regulates target genes to reduce the water loss rate, enhance the osmotic potential, and reduce the ROS accumulation, leading to improved salt tolerance.

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来源期刊
CiteScore
8.30
自引率
3.40%
发文量
1601
期刊介绍: ACS Applied Nano Materials is an interdisciplinary journal publishing original research covering all aspects of engineering, chemistry, physics and biology relevant to applications of nanomaterials. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important applications of nanomaterials.
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