首页> 外文OA文献 >Evolutionarily Conserved Regulatory Mechanisms of Abscisic Acid Signaling in Land Plants: Characterization of ABSCISIC ACID INSENSITIVE1-Like Type 2C Protein Phosphatase in the Liverwort Marchantia polymorpha1[C][OA]
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Evolutionarily Conserved Regulatory Mechanisms of Abscisic Acid Signaling in Land Plants: Characterization of ABSCISIC ACID INSENSITIVE1-Like Type 2C Protein Phosphatase in the Liverwort Marchantia polymorpha1[C][OA]

机译:陆地植物脱落酸信号的进化保守性调控机制:特征在于多形艾叶马尔琴花多形体1中的ABSCISIC ACID INSENSITIVETIVE1-like 2C型磷酸酶[C] [OA]

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摘要

Abscisic acid (ABA) is postulated to be a ubiquitous hormone that plays a central role in seed development and responses to environmental stresses of vascular plants. However, in liverworts (Marchantiophyta), which represent the oldest extant lineage of land plants, the role of ABA has been least emphasized; thus, very little information is available on the molecular mechanisms underlying ABA responses. In this study, we isolated and characterized MpABI1, an ortholog of ABSCISIC ACID INSENSITIVE1 (ABI1), from the liverwort Marchantia polymorpha. The MpABI1 cDNA encoded a 568-amino acid protein consisting of the carboxy-terminal protein phosphatase 2C (PP2C) domain and a novel amino-terminal regulatory domain. The MpABI1 transcript was detected in the gametophyte, and its expression level was increased by exogenous ABA treatment in the gemma, whose growth was strongly inhibited by ABA. Experiments using green fluorescent protein fusion constructs indicated that MpABI1 was mainly localized in the nucleus and that its nuclear localization was directed by the amino-terminal domain. Transient overexpression of MpABI1 in M. polymorpha and Physcomitrella patens cells resulted in suppression of ABA-induced expression of the wheat Em promoter fused to the β -glucuronidase gene. Transgenic P. patens expressing MpABI1 and its mutant construct, MpABI1-d2, lacking the amino-terminal domain, had reduced freezing and osmotic stress tolerance, and associated with reduced accumulation of ABA-induced late embryogenesis abundant-like boiling-soluble proteins. Furthermore, ABA-induced morphological changes leading to brood cells were not prominent in these transgenic plants. These results suggest that MpABI1 is a negative regulator of ABA signaling, providing unequivocal molecular evidence of PP2C-mediated ABA response mechanisms functioning in liverworts.
机译:脱落酸(ABA)被认为是一种普遍存在的激素,在种子发育和对维管植物的环境胁迫的响应中起着核心作用。然而,在代表最古老现存陆地植物谱系的地艾(Marchantiophyta)中,对ABA的作用的重视程度最低。因此,关于ABA应答的分子机制的信息很少。在这项研究中,我们从多形艾蒿中提取和鉴定了MpABI1,即ABSCISIC ACID INSENSITIVE1(ABI1)的直系同源物。 MpABI1 cDNA编码一个568个氨基酸的蛋白质,该蛋白质由羧基末端蛋白磷酸酶2C(PP2C)域和一个新颖的氨基末端调节域组成。在配子体中检测到MpABI1转录本,并且通过外源ABA处理在宝石中增加了其表达水平,该生长受到ABA的强烈抑制。使用绿色荧光蛋白融合构建体的实验表明,MpABI1主要位于核中,其核定位由氨基末端结构域控制。 MpABI1在多形分支杆菌和小立碗藓细胞中的瞬时过表达导致抑制了ABA诱导的融合到β-葡萄糖醛酸苷酶基因的小麦Em启动子的表达。表达MpABI1及其突变体构建体MpABI1-d2的转基因P.patens,缺少氨基末端结构域,具有降低的冷冻和渗透胁迫耐受性,并且与ABA诱导的晚期胚胎发生丰富的沸腾可溶性蛋白质的积累减少有关。此外,在这些转基因植物中,ABA诱导的导致育雏细胞的形态变化并不明显。这些结果表明,MpABI1是ABA信号的负调节剂,提供了明确的分子证据,证明PP2C介导的ABA响应机制在艾草中起作用。

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