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TaPYL4,一种小麦的 ABA 受体基因,通过调节与渗透胁迫相关的过程正向调控植物的耐旱适应。

TaPYL4, an ABA receptor gene of wheat, positively regulates plant drought adaptation through modulating the osmotic stress-associated processes.

机构信息

State Key Laboratory of North China Crop Improvement and Regulation, Baoding, Hebei, 071001, People's Republic of China.

College of Agronomy, Hebei Agricultural University, Baoding, 071001, People's Republic of China.

出版信息

BMC Plant Biol. 2022 Sep 1;22(1):423. doi: 10.1186/s12870-022-03799-z.

Abstract

BACKGROUND

Abscisic acid receptors (ABR) involve transduction of the ABA signaling in plants, impacting largely on stress-defensive physiological processes and plant osmotic stress response. In this study, we characterized TaPYL4, a gene of ABR family in T. aestivum, in mediating plant drought tolerance given scarcity of functional characterization on wheat ABR members thus far.

RESULTS

TaPYL4 harbors nine conserved domains shared by its PYL counterparts, targeting onto plasma membrane and nucleus after endoplasmic reticulum assortment. TaPYL4 interacts with TaPP2C2 whereas the latter with TaSnRK2.1, which establish a core module of the ABA signaling pathway. TaPYL4 expression was upregulated in root and aerial tissues upon drought stress. Overexpressing TaPYL4 conferred plants improved growth traits whereas knockdown expression of target gene alleviated growth feature compared with wild type under drought treatment. The TaPYL4-enhanced drought adaptation associates gene function in positively regulating stomata movement, osmolyte biosynthesis, and root system architecture (RSA) establishment. Expression analysis on the P5CS family genes involving proline biosynthesis indicated that TaP5CS1 exerts critical roles in promoting osmolytes accumulation in drought-challenged TaPYL4 lines. TaPIN9, a PIN-FORMED gene modulating cellular auxin translocation, was validated to function as a crucial mediator in defining RSA establishment underlying TaPYL4 regulation. Transcriptome analysis revealed that TaPYL4 controls transcription of numerous genes, which impact on physiological processes associated with 'biological process', 'molecular component', and 'cellular process'. Moreover, the differentially expressed genes mediated by TaPYL4 were closely related to stress defensive pathways.

CONCLUSIONS

Our investigation suggested that TaPYL4 acts as a positive regulator in plant drought tolerance and a valuable target for engineering drought-tolerant cultivars in T. aestivum.

摘要

背景

脱落酸受体(ABR)参与植物中 ABA 信号的转导,对植物的应激防御生理过程和植物渗透胁迫反应有很大影响。在这项研究中,我们对 TaPYL4 进行了研究,它是 T. aestivum 中 ABR 家族的一个基因,因为迄今为止对小麦 ABR 成员的功能表征还很少。

结果

TaPYL4 具有其 PYL 对应物所共有的九个保守结构域,在经过内质网分拣后靶向质膜和细胞核。TaPYL4 与 TaPP2C2 相互作用,而后者与 TaSnRK2.1 相互作用,后者建立了 ABA 信号通路的核心模块。干旱胁迫下,TaPYL4 在根和地上组织中的表达上调。过表达 TaPYL4 赋予植物在干旱处理下比野生型更好的生长特性,而靶基因的敲低表达则减轻了生长特征。TaPYL4 增强的耐旱适应性与正调控气孔运动、渗透调节物质合成和根系结构(RSA)建立有关。对涉及脯氨酸合成的 P5CS 家族基因的表达分析表明,TaP5CS1 在促进干旱胁迫下 TaPYL4 株系中渗透调节物质积累方面发挥关键作用。调节细胞生长素转运的 PIN 形成基因 TaPIN9 被验证为在定义 TaPYL4 调控下的 RSA 建立的关键介导因子。转录组分析表明,TaPYL4 控制着与“生物过程”、“分子成分”和“细胞过程”相关的生理过程的许多基因的转录。此外,TaPYL4 介导的差异表达基因与应激防御途径密切相关。

结论

我们的研究表明,TaPYL4 作为植物耐旱性的正调控因子,是培育 T. aestivum 耐旱品种的有价值的靶标。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/828b/9434867/9f17c9e65a61/12870_2022_3799_Fig1_HTML.jpg

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