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G proteins as regulators in ethylene-mediated hypoxia signaling

机译:G蛋白作为乙烯介导的缺氧信号的调节剂

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Waterlogging or flooding are frequently or constitutively encountered by many plant species. The resulting reduction in endogenous 0_2 concentration poses a severe threat. Numerous adaptations at the anatomical, morphological and metabolic level helpplants to either escape low oxygen conditions or to endure them. Formation of aerenchyma or rapid shoot elongation are escape responses, as is the formation of adventitious roots. The metabolic shift from aerobic respiration to anaerobic fermentation contributes to a basal energy supply at low oxygen conditions. Ethylene plays a central role in hypoxic stress signaling, and G proteins have been recognized as crucial signal transducers in various hypoxic signaling pathways. The programmed death of parenchyma cells that results in hy-poxia-induced aerenchyma formation is an ethylene response. In maize, aerenchyma are induced in the absence of ethylene when G proteins are constitutively activated. Similarly, ethylene induced death of epidermal cells thatcover adventitious roots at the stem node of rice is strictly dependent on heterotrimeric G protein activity. Knock down of the unique Ga gene RGAI in rice prevents epidermal cell death. Finally, in Arabidopsis, induction of alcohol dehydrogenase with resulting increased plant survival relies on the balanced activities of a small Rop G protein and its deactivating protein RopGAP4. Identifying the general mechanisms of G protein signaling in hypoxia adaptation of plants is one of the tasks ahead.
机译:许多植物物种经常或组成性地发生涝灾或洪灾。内源性0_2浓度降低导致严重威胁。在解剖学,形态学和代谢水平上的许多适应性措施可以帮助植物逃脱低氧条件或忍受它们。气孔的形成或芽的快速伸长是逃避反应,不定根的形成也是如此。从有氧呼吸到厌氧发酵的代谢转变有助于在低氧条件下提供基础能量。乙烯在低氧信号传导中起着核心作用,G蛋白已被认为是各种低氧信号通路中的关键信号转导者。导致低氧诱导的动脉瘤形成的实质细胞的程序性死亡是乙烯反应。在玉米中,当G蛋白被组成型激活时,在不存在乙烯的情况下诱导了气孔形成。类似地,乙烯诱导的水稻表皮细胞死亡,该表皮细胞在水稻的茎节处发现不定根,这严格取决于异源三聚体G蛋白的活性。敲除水稻中独特的Ga基因RGAI可防止表皮细胞死亡。最后,在拟南芥中,乙醇脱氢酶的诱导和植物存活率的提高依赖于小Rop G蛋白及其失活蛋白RopGAP4的平衡活性。识别植物缺氧适应中G蛋白信号传导的一般机制是未来的任务之一。

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