首页> 外文期刊>Autophagy >Selective autophagic degradation of maternally-loaded germline P granule components in somatic cells during C. elegans embryogenesis.
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Selective autophagic degradation of maternally-loaded germline P granule components in somatic cells during C. elegans embryogenesis.

机译:秀丽隐杆线虫胚胎发生过程中体细胞中母本加载的种系P颗粒成分的选择性自噬降解。

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摘要

Germline P granules are specialized protein/RNA aggregates that are found exclusively in germ cells in C. elegans. During the early embryonic divisions that generate germ blastomeres, aggregate-prone P granule components PGL-1 and PGL-3 that remain in the cytoplasm destined for somatic daughters are selectively removed by autophagy. Loss-of-function of components of the autophagy pathway, including the VPS-34/BEC-1 complex, causes accumulation of PGL-1 and PGL-3 into aggregates in somatic cells (termed PGL granules). Formation of PGL granules depends on SEPA-1, which is an integral component of these granules. SEPA-1 is preferentially degraded by autophagy and is also required for the autophagic degradation of PGL-1 and PGL-3. SEPA-1 functions as a bridging molecule in mediating degradation of P granule components by directly interacting with PGL-3 and also with the autophagy protein LGG-1/Atg8. The defect in embryonic development in autophagy mutants is suppressed by mutation of sepa-1, suggesting that autophagic degradation of PGL granule components may provide nutrients for embryogenesis and/or also prevent the formation of aggregates that could be toxic for animal development. Our study reveals a specific physiological function of selective autophagic degradation during C. elegans development.
机译:胚芽P颗粒是专门的蛋白质/ RNA聚集体,仅存在于秀丽隐杆线虫的生殖细胞中。在产生胚卵裂球的早期胚胎分裂过程中,通过自体吞噬选择性地除去聚集在倾向于体细胞的细胞质中的易于聚集的P颗粒成分PGL-1和PGL-3。自噬途径的成分(包括VPS-34 / BEC-1复合物)的功能丧失会导致PGL-1和PGL-3积累成体细胞(称为PGL颗粒)中的聚集体。 PGL颗粒的形成取决于SEPA-1,SEPA-1是这些颗粒的组成部分。 SEPA-1优先通过自噬降解,并且对于PGL-1和PGL-3的自噬降解也是必需的。 SEPA-1通过与PGL-3以及自噬蛋白LGG-1 / Atg8直接相互作用,在介导P颗粒成分降解中起桥接分子的作用。 sepa-1突变可抑制自噬突变体胚胎发育中的缺陷,这表明PGL颗粒成分的自噬降解可为胚胎发生提供营养,并且/或者还可以防止可能对动物发育产生毒性的聚集体的形成。我们的研究揭示了秀丽隐杆线虫发育过程中选择性自噬降解的特定生理功能。

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