CD8α-CI-M6PR Particle Motility Assay to Study the Retrograde Motion of CI-M6PR Receptors in Cultured Living Cells.

IF 1 Q3 BIOLOGY
Shalini Rawat, Mahak Sharma
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引用次数: 0

Abstract

The cation-independent mannose 6-phosphate receptors (CI-M6PR) bind newly synthesized mannose 6-phosphate (Man-6-P)-tagged enzymes in the Golgi and transport them to late endosomes/lysosomes, providing them with degradative functions. Following the cargo delivery, empty receptors are recycled via early/recycling endosomes back to the trans-Golgi network (TGN) retrogradely in a dynein-dependent motion. One of the most widely used methods for studying the retrograde trafficking of CI-M6PR involves employing the CD8α-CI-M6PR chimera. This chimera, comprising a CD8 ectodomain fused with the cytoplasmic tail of the CI-M6PR receptor, allows for labeling at the plasma membrane, followed by trafficking only in a retrograde direction. Previous studies utilizing the CD8α-CI-M6PR chimera have focused mainly on colocalization studies with various endocytic markers under steady-state conditions. This protocol extends the application of the CD8α-CI-M6PR chimera to live cell imaging, followed by a quantitative analysis of its motion towards the Golgi. Additionally, we present an approach to quantify parameters such as speed and track lengths associated with the motility of CD8α-CI-M6PR endosomes using the Fiji plugin TrackMate. Key features • This assay is adapted from the methodology by Prof. Matthew Seaman for studying the retrograde trafficking of CI-M6PR by expressing CD8α-CI-M6PR chimera in HeLa cells. • The experiments include live-cell imaging of surface-labeled CD8α-CI-M6PR molecules, followed by a chase in cells. • Allows the monitoring of real-time motion of CD8α-CI-M6PR endosomes and facilitates calculation of kinetic parameters associated with endosome trajectories, e.g., speed and distance (run lengths).

CD8α-CI-M6PR粒子运动测定法,用于研究培养活细胞中CI-M6PR受体的逆行运动。
不依赖阳离子的 6-磷酸甘露糖受体(CI-M6PR)能与高尔基体中新合成的 6-磷酸甘露糖(Man-6-P)标记酶结合,并将其运送到晚期内体/溶酶体,使其具有降解功能。货物运送完成后,空受体通过早期/回收内体,以依赖于动力蛋白的运动方式逆行循环回跨高尔基体网络(TGN)。研究 CI-M6PR 逆行运输最广泛使用的方法之一是使用 CD8α-CI-M6PR 嵌合体。这种嵌合体由 CD8 外结构域与 CI-M6PR 受体的细胞质尾部融合而成,可以在质膜上进行标记,然后只进行逆向运输。以前利用 CD8α-CI-M6PR 嵌合体进行的研究主要集中在稳态条件下与各种内吞标记物的共定位研究。本方案将 CD8α-CI-M6PR 嵌合体的应用扩展到活细胞成像,然后对其向高尔基体的运动进行定量分析。此外,我们还提出了一种方法,利用 Fiji 插件 TrackMate 量化与 CD8α-CI-M6PR 内体运动相关的速度和轨迹长度等参数。主要特点 - 该检测方法改编自 Matthew Seaman 教授通过在 HeLa 细胞中表达 CD8α-CI-M6PR 嵌合体来研究 CI-M6PR 逆行贩运的方法。- 实验包括对表面标记的 CD8α-CI-M6PR 分子进行活细胞成像,然后在细胞中进行追逐。- 可对 CD8α-CI-M6PR 内体的实时运动进行监测,便于计算与内体轨迹相关的动力学参数,如速度和距离(运行长度)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
1.50
自引率
0.00%
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