费斯特共振能量转移
生物物理学
共焦显微镜
显微镜
生物传感器
胞浆
细胞外
纳米技术
单细胞分析
显微镜
荧光显微镜
材料科学
化学
细胞
生物
细胞生物学
荧光
生物化学
物理
光学
酶
作者
Jack W Shepherd,Sarah Lecinski,Jasmine Wragg,Sviatlana Shashkova,Chris MacDonald,Mark C. Leake
出处
期刊:Methods
[Elsevier]
日期:2020-11-04
卷期号:193: 54-61
被引量:13
标识
DOI:10.1016/j.ymeth.2020.10.015
摘要
The physical and chemical environment inside cells is of fundamental importance to all life but has traditionally been difficult to determine on a subcellular basis. Here we combine cutting-edge genomically integrated FRET biosensing to readout localized molecular crowding in single live yeast cells. Confocal microscopy allows us to build subcellular crowding heatmaps using ratiometric FRET, while whole-cell analysis demonstrates crowding is reduced when yeast is grown in elevated glucose concentrations. Simulations indicate that the cell membrane is largely inaccessible to these sensors and that cytosolic crowding is broadly uniform across each cell over a timescale of seconds. Millisecond single-molecule optical microscopy was used to track molecules and obtain brightness estimates that enabled calculation of crowding sensor copy numbers. The quantification of diffusing molecule trajectories paves the way for correlating subcellular processes and the physicochemical environment of cells under stress.
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