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Phosphorylation of Atg31 is required for autophagy

机译:自噬需要Atg31的磷酸化

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Autophagy is an evolutionarily conserved cellular process which degrades intracellular contents. The Atg17-Atg31-Atg29 complex plays a key role in autophagy induction by various stimuli. In yeast, autophagy occurs with autophagosome formation at a special site near the vacuole named the pre-autophagosomal structure (PAS). The Atg17-Atg31-Atg29 complex forms a scaffold for PAS organization, and recruits other autophagy-related (Atg) proteins to the PAS. Here, we show that Atg31 is a phosphorylated protein. The phosphorylation sites on Atg31 were identified by mass spectrometry. Analysis of mutants in which the phosphorylated amino acids were replaced by alanine, either individually or in various combinations, identified S174 as the functional phosphorylation site. An S174A mutant showed a similar degree of autophagy impairment as an Atg31 deletion mutant. S174 phosphorylation is required for autophagy induced by various autophagy stimuli such as nitrogen starvation and rapamycin treatment. Mass spectrometry analysis showed that S174 is phosphorylated constitutively, and expression of a phosphorylation-mimic mutant (S174D) in the Atg31 deletion strain restores autophagy. In the S174A mutant, Atg9-positive vesicles accumulate at the PAS. Thus, S174 phosphorylation is required for formation of autophagosomes, possibly by facilitating the recycling of Atg9 from the PAS. Our data demonstrate the role of phosphorylation of Atg31 in autophagy
机译:自噬是进化上保守的细胞过程,其降解细胞内内容物。 Atg17-Atg31-Atg29复合体在各种刺激的自噬诱导中起关键作用。在酵母中,自噬发生在自噬体附近液泡附近的一个特殊部位,即自噬体结构(PAS)。 Atg17-Atg31-Atg29复合物形成PAS组织的支架,并将其他自噬相关(Atg)蛋白募集到PAS。在这里,我们显示Atg31是一种磷酸化蛋白。通过质谱鉴定Atg31上的磷酸化位点。对其中磷酸化的氨基酸被丙氨酸单独或以各种组合替代的突变体进行分析,确定S174为功能性磷酸化位点。 S174A突变体表现出与Atg31缺失突变体相似的自噬损伤程度。 S174磷酸化是由各种自噬刺激(如氮饥饿和雷帕霉素处理)诱导的自噬所必需的。质谱分析表明,S174组成型磷酸化,并且在Atg31缺失菌株中磷酸化模拟突变体(S174D)的表达恢复了自噬。在S174A突变体中,Atg9阳性小泡在PAS处积聚。因此,自噬体的形成需要S174磷酸化,这可能是通过促进从PAS中回收Atg9来实现的。我们的数据证明Atg31磷酸化在自噬中的作用

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