Department of Cell and Developmental Biology, College of Life Sciences, South China Agricultural University, Guangzhou, China.
Methods Mol Biol. 2024;2841:131-143. doi: 10.1007/978-1-0716-4059-3_12.
Time-lapse imaging of the subcellular localization and dynamic behavior of proteins is critical to understand their biological functions in cells. With the advent of various methodologies and computational tools, the precise tracking and quantification of protein spatiotemporal dynamics have become feasible. Kymograph analysis, in particular, has been extensively adopted for the quantitative assessment of proteins, vesicles, and organelle movements. However, conventional kymograph analysis, which is based on a single linear trajectory, may not comprehensively capture the complexity of proteins that alter their course during intracellular transport and activity. In this chapter, we introduced an advanced protocol for whole-cell kymograph analysis that allows for three-dimensional (3D) tracking of protein dynamics. This method was validated through the analysis of tip-focused endocytosis and exocytosis processes in growing tobacco pollen tubes by employing both the advanced whole-cell and classical kymograph methods. In addition, we enhanced this method by integrating pseudo-colored kymographs that enables the direct visualization of changes in protein fluorescence intensity with fluorescence recovery after photobleaching to advance our understanding of protein localization and dynamics. This comprehensive method offers a novel insight into the intricate dynamics of protein activity within the cellular context.
细胞内蛋白质的亚细胞定位和动态行为的延时成像对于理解它们在细胞中的生物学功能至关重要。随着各种方法和计算工具的出现,蛋白质时空动力学的精确跟踪和定量已经成为可能。特别是,时间轨迹分析已被广泛用于定量评估蛋白质、囊泡和细胞器的运动。然而,基于单一线性轨迹的传统时间轨迹分析可能无法全面捕捉到蛋白质在细胞内运输和活动过程中改变轨迹的复杂性。在本章中,我们介绍了一种用于全细胞时间轨迹分析的高级方案,该方案允许对蛋白质动力学进行三维(3D)跟踪。通过采用先进的全细胞和经典时间轨迹方法,该方法在分析烟草花粉管尖端聚焦的内吞作用和胞吐作用过程中得到了验证。此外,我们通过整合伪彩色时间轨迹来增强了该方法,该方法可以直接可视化荧光恢复后漂白过程中蛋白质荧光强度的变化,从而深入了解蛋白质的定位和动态。这种全面的方法为我们理解细胞内蛋白质活性的复杂动力学提供了新的视角。