活微生物细胞的单分子追踪。

Xiaomin Chen, Qianhong Guo, Jiexin Guan, Lu Zhang, Ting Jiang, Liping Xie, Jun Fan
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引用次数: 0

摘要

一些微生物被称为模式生物,因为它们很容易在实验室中研究,并且在DNA复制、DNA转录和其他基本过程中保持其特征的能力。通过单分子成像在活细胞中研究这些微生物,使我们能够以更高的时空分辨率更好地理解这些过程。单粒子跟踪光激活定位显微镜(sptPALM)是一种强大的工具,用于检测个体分子的位置和运动,具有数十纳米的空间分辨率和毫秒级的时间分辨率,提供了传统集成方法无法提供的复杂细胞内环境的见解。通过这种方法,荧光团被随机光激活,记录一系列图像,并在这些图像中识别荧光团的位置,最终将这些位置连接在一起以产生单个分子的轨迹。定量的动力学和空间信息,如反应速率、扩散系数和定位图,可以通过进一步的分析得到。在这里,我们提出了一个单分子跟踪方案,包括样品制备,数据采集和简短的数据处理。该方案将使研究人员能够直接揭示基本生物过程背后的分子和细胞机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Single-molecule tracking in living microbial cells.

Some microbes are referred to as model organisms because they are easy to study in the laboratory and hold the ability to retain their characteristics during DNA replication, DNA transcription, and other fundamental processes. Studying these microbes in living cells via single-molecule imaging allows us to better understand these processes at highly improved spatiotemporal resolution. Single particle tracking photoactivated localization microscopy (sptPALM) is a robust tool for detecting the positions and motions of individual molecules with tens of nanometers of spatial and millisecond temporal resolution in vivo, providing insights into intricate intracellular environments that traditional ensemble methods cannot. With this approach, the fluorophores are photoactivated stochastically, a series of images are recorded, and the positions of fluorophores are identified in these images, and ultimately the locations are linked together to yield trajectories of individual molecules. Quantitative kinetic and spatial information, such as reaction rates, diffusion coefficients, and localization maps, can be obtained by further analysis. Here, we present a single-molecule tracking protocol that includes sample preparation, data acquisition and brief data processing. This protocol will enable researchers to directly unveil molecular and cellular mechanisms underlying the essential biological processes.

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