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区分腔隙和膜相关核被膜蛋白。

Differentiating Luminal and Membrane-Associated Nuclear Envelope Proteins.

机构信息

School of Physics and Astronomy, University of Minnesota, Minneapolis, Minnesota.

Department of Genetics, Cell Biology, and Development, University of Minnesota, Minneapolis, Minnesota.

出版信息

Biophys J. 2020 May 19;118(10):2385-2399. doi: 10.1016/j.bpj.2020.03.025. Epub 2020 Apr 8.

Abstract

The nuclear envelope (NE) consists of two concentric nuclear membranes separated by the lumen, an ∼40-nm-wide fluid layer. NE proteins are implicated in important cellular processes ranging from gene expression to nuclear positioning. Although recent progress has been achieved in quantifying the assembly states of NE proteins in their native environment with fluorescence fluctuation spectroscopy, these studies raised questions regarding the association of NE proteins with nuclear membranes during the assembly process. Monitoring the interaction of proteins with membranes is important because the binding event is often associated with conformational changes that are critical to cellular signaling pathways. Unfortunately, the close physical proximity of both membranes poses a severe experimental challenge in distinguishing luminal and membrane-associated NE proteins. This study seeks to address this problem by introducing new, to our knowledge, fluorescence-based assays that overcome the restrictions imposed by the NE environment. We found that luminal proteins violate the Stokes-Einstein relation, which eliminates a straightforward use of protein mobility as a marker of membrane association within the NE. However, a surprising anomaly in the temperature-dependent mobility of luminal proteins was observed, which was developed into an assay for distinguishing between soluble and membrane-bound NE proteins. We further introduced a second independent tool for distinguishing both protein populations by harnessing the previously reported undulations of the nuclear membranes. These membrane undulations introduce local volume changes that produce an additional fluorescence fluctuation signal for luminal, but not for membrane-bound, proteins. After testing both methods using simple model systems, we apply the two assays to investigate a previously proposed model of membrane association for the luminal domain of SUN2, a constituent protein of the linker of nucleoskeleton and cytoskeleton complex. Finally, we investigate the effect of C- and N-terminal tagging of the luminal ATPase torsinA on its ability to associate with nuclear membranes.

摘要

核膜(NE)由两层同心的核膜组成,核膜之间是一个约 40nm 宽的液体层。NE 蛋白参与从基因表达到核定位等重要的细胞过程。尽管最近在利用荧光波动光谱技术对 NE 蛋白在其天然环境中的组装状态进行定量方面取得了进展,但这些研究提出了关于 NE 蛋白在组装过程中与核膜结合的问题。监测蛋白质与膜的相互作用很重要,因为结合事件通常与构象变化有关,而构象变化对细胞信号通路至关重要。不幸的是,两层膜的紧密物理接近给区分腔和膜相关的 NE 蛋白带来了严重的实验挑战。本研究通过引入新的、据我们所知的荧光基础测定方法来解决这个问题,这些方法克服了 NE 环境带来的限制。我们发现腔蛋白违反了斯托克斯-爱因斯坦关系,这使得不能直接将蛋白质的流动性作为 NE 中膜结合的标志物。然而,我们观察到腔蛋白的温度依赖性迁移率存在一个惊人的异常现象,这一现象被开发成一种区分可溶性和膜结合 NE 蛋白的测定方法。我们进一步引入了第二种独立的工具,通过利用先前报道的核膜波动来区分这两种蛋白群体。这些膜波动会引起局部体积变化,从而为腔蛋白产生额外的荧光波动信号,而不会为膜结合蛋白产生。在使用简单的模型系统测试了这两种方法后,我们将这两种测定方法应用于研究 SUN2 腔域膜结合的先前提出的模型,SUN2 是核骨架和细胞骨架连接复合体的组成蛋白。最后,我们研究了腔 ATP 酶 torsinA 的 C 端和 N 端标记对其与核膜结合能力的影响。

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