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首页> 外文期刊>Current Biology: CB >Evolution of abscisic acid synthesis and signaling mechanisms. (Special Issue: Plant signalling pathways: A comparative evolutionary overview.)
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Evolution of abscisic acid synthesis and signaling mechanisms. (Special Issue: Plant signalling pathways: A comparative evolutionary overview.)

机译:脱落酸合成和信号传导机制的演变。 (特刊:植物信号传导途径:比较进化概述。)

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摘要

The plant hormone abscisic acid (ABA) mediates seed dormancy, controls seedling development and triggers tolerance to abiotic stresses, including drought. Core ABA signaling components consist of a recently identified group of ABA receptor proteins of the PYRABACTIN RESISTANCE (PYR)/REGULATORY COMPONENT OF ABA RECEPTOR (RCAR) family that act as negative regulators of members of the PROTEIN PHOSPHATASE 2C (PP2C) family. Inhibition of PP2C activity enables activation of SNF1-RELATED KINASE 2 (SnRK2) protein kinases, which target downstream components, including transcription factors, ion channels and NADPH oxidases. These and other components form a complex ABA signaling network. Here, an in depth analysis of the evolution of components in this ABA signaling network shows that (i) PYR/RCAR ABA receptor and ABF-type transcription factor families arose during land colonization of plants and are not found in algae and other species, (ii) ABA biosynthesis enzymes have evolved to plant- and fungal-specific forms, leading to different ABA synthesis pathways, (iii) existing stress signaling components, including PP2C phosphatases and SnRK kinases, were adapted for novel roles in this plant-specific network to respond to water limitation. In addition, evolutionarily conserved secondary structures in the PYR/RCAR ABA receptor family are visualized.
机译:植物激素脱落酸(ABA)介导种子休眠,控制幼苗发育并触发对非生物胁迫(包括干旱)的耐受性。核心ABA信号转导成分由一组最近鉴定出的ABA受体蛋白(PYR)/ ABA受体(RCAR)家族的调节成分组成,它们充当蛋白质磷酸酶2C(PP2C)家族成员的负调节剂。抑制PP2C活性可激活SNF1相关激酶2(SnRK2)蛋白激酶,该蛋白激酶靶向下游成分,包括转录因子,离子通道和NADPH氧化酶。这些和其他组件形成一个复杂的ABA信令网络。在此,对该ABA信号网络中组分的进化进行深入分析表明,(i)PYR / RCAR ABA受体和ABF型转录因子家族是在植物陆地定植期间产生的,而在藻类和其他物种中则未发现,( ii)ABA生物合成酶已进化为植​​物和真菌特异性形式,导致了不同的ABA合成途径;(iii)现有的胁迫信号成分,包括PP2C磷酸酶和SnRK激酶,在该植物特异性网络中被赋予了新的作用,从而响应水的限制。此外,可以看到PYR / RCAR ABA受体家族中进化保守的二级结构。

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