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Cooling-induced SUMOylation of EXOSC10 down-regulates ribosome biogenesis

机译:冷却诱导的EXOSC10的SUMOylation下调核糖体的生物发生。

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The RNA exosome is essential for 3' processing of functional RNA species and degradation of aberrant RNAs in eukaryotic cells. Recent reports have defined the substrates of the exosome catalytic domains and solved the multimeric structure of the exosome complex. However, regulation of exosome activity remains poorly characterized, especially in response to physiological stress. Following the observation that cooling of mammalian cells results in a reduction in 405:60S ribosomal subunit ratio, we uncover regulation of the nuclear exosome as a result of reduced temperature. Using human cells and an in vivo model system allowing whole-body cooling, we observe reduced EXOSC10 (hRrp6, Pm/Sc1-100) expression in the cold. In parallel, both models of cooling increase global SUMOylation, leading to the identification of specific conjugation of SUMO1 to EXOSC10, a process that is increased by cooling. Furthermore, we define the major SUMOylation sites in EXOSC10 by mutagenesis and show that overexpression of SUMO1 alone is sufficient to suppress EXOSC10 abundance. Reducing EXOSC10 expression by RNAi in human cells correlates with the 3' preribosomal RNA processing defects seen in the cold as well as reducing the 40S:605 ratio, a previously uncharacterized consequence of EXOSC10 suppression. Together, this work illustrates that EXOSC10 can be modified by SUMOylation and identifies a physiological stress where this regulation is prevalent both in vitro and in vivo.
机译:RNA外泌体对于功能性RNA物种的3'加工和真核细胞中异常RNA的降解至关重要。最近的报道已经定义了外泌体催化结构域的底物,并解决了外泌体复合物的多聚体结构。但是,外泌体活性的调节仍然缺乏良好的特征,特别是对生理压力的响应。在观察到哺乳动物细胞冷却导致405:60S核糖体亚基比例降低后,我们发现由于温度降低而导致核外泌体的调节。使用人体细胞和允许全身冷却的体内模型系统,我们观察到寒冷时EXOSC10(hRrp6,Pm / Sc1-100)表达减少。同时,两种冷却模式均会提高整体SUMOylation的水平,从而导致SUMO1与EXOSC10的特异性结合得以识别,这一过程因冷却而增加。此外,我们通过诱变定义了EXOSC10中的主要SUMOylation位点,并表明单独表达SUMO1足以抑制EXOSC10的丰度。 RNAi降低人细胞中EXOSC10的表达与在寒冷中观察到的3'核糖体前RNA加工缺陷以及降低40S:605的比例有关,这是EXOSC10抑制以前未知的结果。在一起,这项工作表明EXOSC10可以通过SUMOylation进行修改,并确定一种生理压力,其中这种调节在体外和体内都很普遍。

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