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一个珍珠粟质膜蛋白 PgPM19 通过负调控拟南芥耐盐胁迫下脱落酸相关基因促进种子萌发。

A pearl millet plasma membrane protein, PgPM19, facilitates seed germination through the negative regulation of abscisic acid-associated genes under salinity stress in Arabidopsis thaliana.

机构信息

SDU-ANU Joint Science College, Shandong University, Weihai, China.

Asian Research Center for Bioresource and Environmental Sciences (ARC-BRES), The University of Tokyo, Nishitokyo, Japan.

出版信息

Planta. 2024 Nov 2;260(6):131. doi: 10.1007/s00425-024-04564-2.

Abstract

The pearl millet gene PgPM19 inhibits seed dormancy by negatively regulating the ABA biosynthesis and ABA signaling pathways in response to salinity stress in Arabidopsis. Abscisic acid (ABA) plays a pivotal role in orchestrating plant stress responses and development. However, how the ABA signal is transmitted in response to stresses remains primarily uncertain, particularly in monocotyledonous plants. In this study, PgPM19, a gene whose expression is induced by drought, salinity, heat, and ABA in both leaf and root tissues, was isolated from pearl millet. The expression of PgPM19 in yeast cells did not influence their growth when subjected to mannitol, sorbitol, or NaCl stress. However, Arabidopsis plants overexpressing PgPM19 (PgPM19_OE plants) exhibited increased germination rates, greater fresh weights and longer roots under salinity stress during germination, compared to wild-type (WT) plants. Conversely, the pm19L1 (SALK_075435) mutant, featuring a transfer DNA insertion in a closely related PgPM19 homolog (AT1G04560) in Arabidopsis, demonstrated reduced germination rates and smaller fresh weights under salinity-stressed condition than did WT and PgPM19_OE plants. A pivotal ABA biosynthesis gene, NCED3, ABA signaling pathway genes, such as PYL6 and SnRK2.7, alongside downstream ABI genes and stress-responsive genes RAB28 and RD29, were downregulated in PgPM19_OE plants, as evidenced by both transcriptome analysis and quantitative reverse transcription-PCR. These findings raise the possibility that PgPM19 is involved in regulating seed germination by mediating ABA biosynthesis and signaling pathway in response to salinity stress in Arabidopsis. This study contributes to a better understanding of PgPM19 in response to salinity stress and establishes a foundation for unraveling the crosstalk of stress responses and ABA in Arabidopsis and other plant species.

摘要

珍珠粟基因 PgPM19 通过负调控 ABA 生物合成和 ABA 信号通路来抑制种子休眠,从而响应拟南芥中的盐胁迫。脱落酸 (ABA) 在协调植物应激反应和发育方面起着关键作用。然而,ABA 信号如何在应对胁迫时传递仍然主要不确定,特别是在单子叶植物中。在这项研究中,从珍珠粟中分离出一个基因 PgPM19,该基因的表达受干旱、盐度、热和 ABA 在叶片和根组织中的诱导。在酵母细胞中表达 PgPM19 不会影响它们在甘露醇、山梨醇或 NaCl 胁迫下的生长。然而,过表达 PgPM19 的拟南芥植物(PgPM19_OE 植物)在发芽期间表现出更高的发芽率、更大的鲜重和更长的根,相比之下,野生型(WT)植物在盐胁迫下。相反,pm19L1(SALK_075435)突变体在拟南芥中一个紧密相关的 PgPM19 同源物(AT1G04560)中带有转座 DNA 插入,表现出比 WT 和 PgPM19_OE 植物更低的发芽率和更小的鲜重。一个关键的 ABA 生物合成基因 NCED3、ABA 信号通路基因,如 PYL6 和 SnRK2.7,以及下游 ABI 基因和应激响应基因 RAB28 和 RD29,在 PgPM19_OE 植物中下调,这一点通过转录组分析和定量逆转录-PCR 得到证实。这些发现表明 PgPM19 可能通过介导 ABA 生物合成和信号通路来调节种子萌发,从而响应拟南芥中的盐胁迫。本研究有助于更好地了解 PgPM19 对盐胁迫的反应,并为揭示拟南芥和其他植物物种中应激反应和 ABA 的串扰奠定了基础。

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