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沃伯格微综合征相关 Rab3GAP-Rab18 模块通过 Vps34 复合物 I 促进自噬溶酶体成熟。

The Warburg Micro Syndrome-associated Rab3GAP-Rab18 module promotes autolysosome maturation through the Vps34 Complex I.

机构信息

Department of Anatomy, Cell and Developmental Biology, ELTE Eötvös Loránd University, Budapest, Hungary.

Premium Postdoctorate Research Program, Hungarian Academy of Sciences, Budapest, Hungary.

出版信息

FEBS J. 2021 Jan;288(1):190-211. doi: 10.1111/febs.15313. Epub 2020 Apr 22.

Abstract

Warburg micro syndrome (WMS) is a hereditary autosomal neuromuscular disorder in humans caused by mutations in Rab18, Rab3GAP1, or Rab3GAP2 genes. Rab3GAP1/2 forms a heterodimeric complex, which acts as a guanosine nucleotide exchange factor and activates Rab18. Although the genetic causes of WMS are known, it is still unclear whether loss of the Rab3GAP-Rab18 module affects neuronal or muscle cell physiology or both, and how. In this work, we characterize a Rab3GAP2 mutant Drosophila line to establish a novel animal model for WMS. Similarly to symptoms of WMS, loss of Rab3GAP2 leads to highly decreased motility in Drosophila that becomes more serious with age. We demonstrate that these mutant flies are defective for autophagic degradation in multiple tissues including fat cells and muscles. Loss of Rab3GAP-Rab18 module members leads to perturbed autolysosome morphology due to destabilization of Rab7-positive autophagosomal and late endosomal compartments and perturbation of lysosomal biosynthetic transport. Importantly, overexpression of UVRAG or loss of Atg14, two alternative subunits of the Vps34/PI3K (vacuole protein sorting 34/phosphatidylinositol 3-kinase) complexes in fat cells, mimics the autophagic phenotype of Rab3GAP-Rab18 module loss. We find that GTP-bound Rab18 binds to Atg6/Beclin1, a permanent subunit of Vps34 complexes. Finally, we show that Rab3GAP2 and Rab18 are present on autophagosomal and autolysosomal membranes and colocalize with Vps34 Complex I subunits. Our data suggest that the Rab3GAP-Rab18 module regulates autolysosomal maturation through its interaction with the Vps34 Complex I, and perturbed autophagy due to loss of the Rab3GAP-Rab18 module may contribute to the development of WMS.

摘要

沃伯格微综合征(WMS)是一种人类遗传性常染色体神经肌肉疾病,由 Rab18、Rab3GAP1 或 Rab3GAP2 基因突变引起。Rab3GAP1/2 形成异二聚体复合物,作为鸟嘌呤核苷酸交换因子激活 Rab18。尽管 WMS 的遗传原因已为人所知,但仍不清楚 Rab3GAP-Rab18 模块的缺失是否会影响神经元或肌肉细胞的生理学或两者兼而有之,以及如何影响。在这项工作中,我们对 Rab3GAP2 突变的果蝇系进行了表征,以建立 WMS 的新型动物模型。与 WMS 的症状类似,Rab3GAP2 的缺失导致果蝇的运动能力严重下降,且随年龄增长而加重。我们证明这些突变果蝇在包括脂肪细胞和肌肉在内的多种组织中存在自噬降解缺陷。Rab3GAP-Rab18 模块成员的缺失导致自噬溶酶体形态不稳定,因为 Rab7 阳性自噬体和晚期内体区室以及溶酶体生物合成转运受到干扰。重要的是,在脂肪细胞中过表达 UVRAG 或缺失 Atg14(Vps34/PI3K 复合物的两个替代亚基)模拟了 Rab3GAP-Rab18 模块缺失的自噬表型。我们发现,GTP 结合的 Rab18 与 Atg6/Beclin1 结合,Atg6/Beclin1 是 Vps34 复合物的永久亚基。最后,我们表明 Rab3GAP2 和 Rab18 存在于自噬体和自溶酶体膜上,并与 Vps34 复合物 I 亚基共定位。我们的数据表明,Rab3GAP-Rab18 模块通过与 Vps34 复合物 I 的相互作用调节自噬溶酶体的成熟,而由于 Rab3GAP-Rab18 模块的缺失导致的自噬失调可能导致 WMS 的发展。

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