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体内分子陷阱的开发和应用表明,动力蛋白轻链占据会对动力蛋白介导的过程产生不同的影响。

Development and application of in vivo molecular traps reveals that dynein light chain occupancy differentially affects dynein-mediated processes.

机构信息

Department of Pathology and Cell Biology, Columbia University, New York, NY 10032, USA.

出版信息

Proc Natl Acad Sci U S A. 2010 Feb 23;107(8):3493-8. doi: 10.1073/pnas.0908959107. Epub 2010 Feb 4.

Abstract

The ability to rapidly and specifically regulate protein activity combined with in vivo functional assays and/or imaging can provide unique insight into underlying molecular processes. Here we describe the application of chemically induced dimerization of FKBP to create nearly instantaneous high-affinity bivalent ligands capable of sequestering cellular targets from their endogenous partners. We demonstrate the specificity and efficacy of these inducible, dimeric "traps" for the dynein light chains LC8 (Dynll1) and TcTex1 (Dynlt1). Both light chains can simultaneously bind at adjacent sites of dynein intermediate chain at the base of the dynein motor complex, yet their specific function with respect to the dynein motor or other interacting proteins has been difficult to dissect. Using these traps in cultured mammalian cells, we observed that induction of dimerization of either the LC8 or TcTex1 trap rapidly disrupted early endosomal and lysosomal organization. Dimerization of either trap also disrupted Golgi organization, but at a substantially slower rate. Using either trap, the time course for disruption of each organelle was similar, suggesting a common regulatory mechanism. However, despite the essential role of dynein in cell division, neither trap had a discernable effect on mitotic progression. Taken together, these studies suggest that LC occupancy of the dynein motor complex directly affects some, but not all, dynein-mediated processes. Although the described traps offer a method for rapid inhibition of dynein function, the design principle can be extended to other molecular complexes for in vivo studies.

摘要

快速而特异性地调节蛋白质活性的能力,结合体内功能测定和/或成像,可为潜在的分子过程提供独特的见解。在这里,我们描述了 FKBP 化学诱导二聚化的应用,以创建几乎瞬时的高亲和力二价配体,能够将细胞靶标从其内源性伴侣中隔离出来。我们证明了这些诱导的、二聚的“陷阱”对于动力蛋白轻链 LC8(Dynll1)和 TcTex1(Dynlt1)的特异性和功效。这两种轻链都可以同时结合到动力蛋白中间链在动力蛋白马达复合物底部的相邻位点,但它们相对于动力蛋白或其他相互作用蛋白的具体功能一直难以剖析。在培养的哺乳动物细胞中使用这些陷阱,我们观察到 LC8 或 TcTex1 陷阱的二聚化诱导迅速破坏早期内体和溶酶体的组织。任一陷阱的二聚化也破坏了高尔基体的组织,但速度要慢得多。使用任一陷阱,每个细胞器的破坏时间过程相似,表明存在共同的调节机制。然而,尽管动力蛋白在细胞分裂中起着至关重要的作用,但这两种陷阱都没有对有丝分裂进程产生明显影响。总之,这些研究表明,LC 占据动力蛋白马达复合物直接影响一些,但不是所有的,动力蛋白介导的过程。虽然描述的陷阱提供了一种快速抑制动力蛋白功能的方法,但设计原理可以扩展到其他分子复合物,用于体内研究。

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