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Interplay between cold-responsive gene regulation, metabolism and RNA processing during plant cold acclimation

机译:植物冷驯化过程中冷应答基因调控,代谢和RNA加工之间的相互作用

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摘要

Temperate plants are capable of developing freezing tolerance when they are exposed to low nonfreezing temperatures. Acquired freezing tolerance involves extensive reprogramming of gene expression and metabolism. Recent full-genome transcript profiling studies, in combination with mutational and transgenic plant analyses, have provided a snapshot of the complex transcriptional network that operates under cold stress. Ubiquitination-mediated proteosomal protein degradation has a crucial role in regulating one of the upstream transcription factors, INDUCER OF CBF EXPRESSION 1 (ICE1), and thus in controlling the cold-responsive transcriptome. The changes in expression of hundreds of genes in response to cold temperatures are followed by increases in the levels of hundreds of metabolites, some of which are known to have protective effects against the damaging effects of cold stress. Genetic analysis has revealed important roles for cellular metabolic signals, and for RNA splicing, export and secondary structure unwinding, in regulating cold-responsive gene expression and chilling and freezing tolerance.
机译:当温带植物暴露于较低的非冻结温度下时,它们便具有抗冻能力。获得的抗冻性涉及基因表达和代谢的大量重编程。最近的全基因组转录谱分析研究与突变和转基因植物分析相结合,提供了在寒冷胁迫下运行的复杂转录网络的快照。泛素化介导的蛋白质组蛋白降解在调节上游转录因子之一,即CBF EXPRESSION 1(ICE1)的诱导子,从而控制冷应答转录组中起着至关重要的作用。响应于低温,数百种基因的表达发生变化,其后数百种代谢产物的水平增加,其中一些代谢产物具有对抗寒冷胁迫的破坏作用的保护作用。遗传分析已揭示了细胞代谢信号,RNA剪接,输出和二级结构解链在调节冷应答基因表达以及冷和耐冰冻性中的重要作用。

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