BICD2货物结合域的显性脊髓性肌萎缩相关突变导致相互作用组改变和动力蛋白过度活跃。

Hannah Neiswender, Jessica E Pride, Rajalakshmi Veeranan-Karmegam, Phylicia Allen, Grace Neiswender, Avneesh Prabakar, Caili Hao, Xingjun Fan, Graydon B Gonsalvez
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引用次数: 0

摘要

细胞质动力蛋白-1(动力蛋白)负责向微管负端运输大多数细胞货物。动力蛋白的激活需要多亚基动力蛋白复合体和激活货物适配器。适配器的作用是将动力装置与货物连接起来,并使马达完全启动。其中一个激活接头Bicaudal-D2 (BICD2)的突变与一种称为下肢优势性脊髓性肌萎缩症(SMALED2)的神经退行性疾病有关。SMALED2背后的分子缺陷在很大程度上是未知的。除了与dynein相互作用外,BICD2还被证明与KIF5B(一种正端定向微管马达)相关联。我们假设,与BICD2突变版本相关的相互作用组变化,以及由此导致的货物运输差异,可能是SMALED2病因的基础。为了验证我们的假设,我们首先定义了野生型BICD2的相互作用组。这导致了已知的BICD2相互作用蛋白的鉴定,以及潜在的新货物,如啤酒花复合物的成分,一个参与内溶酶体运输的六个亚基复合物。接下来,我们确定了BICD2中三个SMALED2连锁突变体的相互作用,其中两个位于货物结合结构域。有趣的是,这三种突变都导致bicd2介导的动力蛋白超激活。此外,所有三种突变体都与相互作用组的变化有关。其中一个突变体BICD2_R747C缺乏与HOPS复合物组分和核孔蛋白RANBP2的结合。此外,该突变还导致与GRAMD1A(一种参与胆固醇代谢的蛋白质)的功能相互作用的增加。这种功能相互作用的增加导致GRAMD1A在BICD2_R747C表达细胞中的错误定位。总的来说,我们的研究结果表明动力蛋白过度活跃、相互作用组改变以及由此产生的货物运输缺陷可能导致与SMALED2相关的症状。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Dominant spinal muscular atrophy linked mutations in the cargo binding domain of BICD2 result in altered interactomes and dynein hyperactivity.

Cytoplasmic dynein-1 (dynein) is responsible for the transport of most cellular cargo towards the minus end of microtubules. Dynein activation requires the multi-subunit dynactin complex and an activating cargo adaptor. The adaptors serve to link dynein with cargo and to fully activate the motor. Mutations in one of these activating adaptors, Bicaudal-D2 (BICD2), are associated with a neurodegenerative disease called Spinal Muscular Atrophy with Lower Extremity Predominance (SMALED2). The molecular defect that underlies SMALED2 is largely unknown. In addition to interacting with dynein, BICD2 has also been shown to associate with KIF5B, a plus-end directed microtubule motor. We hypothesized that interactome changes associated with mutant versions of BICD2, and the resulting differences in cargo transport, might underlie the etiology of SMALED2. To test our hypothesis, we first defined the interactome of wild-type BICD2. This led to the identification of known BICD2 interacting proteins in addition to potentially novel cargo such as components of the HOPS complex, a six-subunit complex involved in endo-lysosomal trafficking. We next determined the interactome of three SMALED2 linked mutants in BICD2, two of which reside in the cargo binding domain. Interestingly, all three mutations resulted in BICD2-mediated dynein hyper-activation. Furthermore, all three mutants were associated with interactome changes. One of these mutants, BICD2_R747C, was deficient in binding to HOPS complex components and the nucleoporin RANBP2. In addition, this mutant also resulted in a gain of function interaction with GRAMD1A, a protein localized to the endoplasmic reticulum. This gain of function interaction resulted in mis-localization of GRAMD1A in BICD2_R747C expressing cells. Collectively, our results suggest that dynein hyperactivity, interactome changes, and cargo transport defects might contribute to the symptoms associated with SMALED2.

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