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轴突膜蛋白生命周期的实时成像。

Real-time imaging of axonal membrane protein life cycles.

机构信息

Medical Scientist Training Program, Yale School of Medicine, New Haven, CT, USA.

Center for Neuroscience and Regeneration Research, West Haven, CT, USA.

出版信息

Nat Protoc. 2024 Sep;19(9):2771-2802. doi: 10.1038/s41596-024-00997-x. Epub 2024 Jun 3.

Abstract

The construction of neuronal membranes is a dynamic process involving the biogenesis, vesicular packaging, transport, insertion and recycling of membrane proteins. Optical imaging is well suited for the study of protein spatial organization and transport. However, various shortcomings of existing imaging techniques have prevented the study of specific types of proteins and cellular processes. Here we describe strategies for protein tagging and labeling, cell culture and microscopy that enable the real-time imaging of axonal membrane protein trafficking and subcellular distribution as they progress through some stages of their life cycle. First, we describe a process for engineering membrane proteins with extracellular self-labeling tags (either HaloTag or SNAPTag), which can be labeled with fluorescent ligands of various colors and cell permeability, providing flexibility for investigating the trafficking and spatiotemporal regulation of multiple membrane proteins in neuronal compartments. Next, we detail the dissection, transfection and culture of dorsal root ganglion sensory neurons in microfluidic chambers, which physically compartmentalizes cell bodies and distal axons. Finally, we describe four labeling and imaging procedures that utilize these enzymatically tagged proteins, flexible fluorescent labels and compartmentalized neuronal cultures to study axonal membrane protein anterograde and retrograde transport, the cotransport of multiple proteins, protein subcellular localization, exocytosis and endocytosis. Additionally, we generated open-source software for analyzing the imaging data in a high throughput manner. The experimental and analysis workflows provide an approach for studying the dynamics of neuronal membrane protein homeostasis, addressing longstanding challenges in this area. The protocol requires 5-7 days and expertise in cell culture and microscopy.

摘要

神经元膜的构建是一个动态过程,涉及膜蛋白的生物发生、囊泡包装、运输、插入和回收。光学成像非常适合研究蛋白质的空间组织和运输。然而,现有的成像技术存在各种缺点,限制了对特定类型蛋白质和细胞过程的研究。在这里,我们描述了用于蛋白质标记和标记、细胞培养和显微镜的策略,这些策略使我们能够实时观察轴突膜蛋白在其生命周期的某些阶段的运输和亚细胞分布。首先,我们描述了一种在膜蛋白上工程化带有细胞外自标记标签(HaloTag 或 SNAPTag)的方法,这些标签可以用各种颜色和细胞通透性的荧光配体进行标记,为研究神经元区室中多种膜蛋白的运输和时空调节提供了灵活性。接下来,我们详细介绍了在微流控室中对背根神经节感觉神经元进行解剖、转染和培养的过程,该过程将细胞体和远端轴突物理分隔开。最后,我们描述了四种标记和成像程序,这些程序利用这些酶标记的蛋白质、灵活的荧光标记和分隔的神经元培养物来研究轴突膜蛋白的顺行和逆行运输、多种蛋白质的共运输、蛋白质亚细胞定位、胞吐和胞吞作用。此外,我们还生成了用于高通量分析成像数据的开源软件。该实验和分析工作流程为研究神经元膜蛋白动态平衡提供了一种方法,解决了该领域的长期挑战。该方案需要 5-7 天时间,并且需要细胞培养和显微镜方面的专业知识。

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Real-time imaging of axonal membrane protein life cycles.轴突膜蛋白生命周期的实时成像。
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