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首页> 外文期刊>Plant Science: An International Journal of Experimental Plant Biology >TOR and SnRK1 signaling pathways in plant response to abiotic stresses: Do they always act according to the 'yin-yang' model?
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TOR and SnRK1 signaling pathways in plant response to abiotic stresses: Do they always act according to the 'yin-yang' model?

机译:植物对非生物压力的植物反应中的TOR和SNRK1信号通路:他们总是根据“尹阳”模型行事?

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摘要

Plants are sessile photo-autotrophic organisms continuously exposed to a variety of environmental stresses. Monitoring the sugar level and energy status is essential, since this knowledge allows the integration of external and internal cues required for plant physiological and developmental plasticity. Most abiotic stresses induce severe metabolic alterations and entail a great energy cost, restricting plant growth and producing important crop losses. Therefore, balancing energy requirements with supplies is a major challenge for plants under unfavorable conditions. The conserved kinases target of rapamycin (TOR) and sucrose-non-fermenting-related protein kinase-1 (SnRK1) play central roles during plant growth and development, and in response to environmental stresses; these kinases affect cellular processes and metabolic reprogramming, which has physiological and phenotypic consequences. The "yin-yang" model postulates that TOR and SnRK1 act in opposite ways in the regulation of metabolic-driven processes. In this review, we describe and discuss the current knowledge about the complex and intricate regulation of TOR and SnRK1 under abiotic stresses. We especially focus on the physiological perspective that, under certain circumstances during the plant stress response, the TOR and SnRK1 kinases could be modulated differently from what is postulated by the "yin-yang" concept.
机译:植物是术术术术持续暴露于各种环境胁迫。监测糖水平和能量状况至关重要,因为这种知识允许植物生理和发育可塑性所需的外部和内部提示集成。大多数非生物胁迫诱导严重的代谢改变,并有一种巨大的能源成本,限制植物生长并产生重要的作物损失。因此,平衡供应的能源需求是在不利条件下植物的主要挑战。雷帕霉素(TOR)和蔗糖 - 非发酵相关蛋白激酶-1(SNRK1)的保守激酶靶标在植物生长和发育过程中起中心作用,以及应对环境压力;这些激酶会影响细胞过程和代谢重编程,其具有生理和表型后果。 “尹阳”模型假设TOR和SNRK1以相反的方式行动代谢驱动过程的调节。在本次审查中,我们描述并讨论了关于非生物胁迫下的TOR和SNRK1复杂和复杂调节的目前的知识。我们特别关注生理角度来看,在植物应激反应期间的某些情况下,可以从“阴阳”概念的假设不同。

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