研究目的
The overall goal of the study was to identify dyes and conditions that lead to improved spatial and temporal resolution of both techniques without the need for mixtures of photostabilizing agents in the imaging buffer.
研究成果
The study demonstrates that intramolecular photostabilization of organic fluorophores enhances their photophysical properties for super-resolution microscopy, enabling improved spatial and temporal resolution without the need for photostabilizing buffers. However, the influence of photostabilizers on photoswitching kinetics must be considered in STORM-type imaging.
研究不足
The study highlights the technical constraints of using photostabilizing buffers in live cell imaging and the need for careful design of STORM-experiments due to the influence of intramolecular photostabilization on photoswitching kinetics.
1:Experimental Design and Method Selection:
The study involved testing the performance of self-healing organic fluorophores in super-resolution microscopy, specifically STED and STORM techniques. The methodology included the use of confocal scanning microscopy, single molecule STED and confocal microscopy, and STORM microscopy to characterize the photophysical properties of the dyes.
2:Sample Selection and Data Sources:
Samples included ATTO647N, STAR635P, and Cy5 dyes, with and without photostabilizers, immobilized on oligonucleotides. Data was collected using custom-built confocal and STED microscopes.
3:List of Experimental Equipment and Materials:
Equipment included a custom-built confocal microscope, a Microtime-200 STED microscope, and an inverted microscope for TIRF imaging. Materials included ATTO647N, STAR635P, Cy5 dyes, and their photostabilizer conjugates.
4:Experimental Procedures and Operational Workflow:
The study involved immobilizing fluorophores on oligonucleotides, performing confocal and STED microscopy to assess photostability and resolution, and analyzing photoswitching kinetics in STORM microscopy.
5:Data Analysis Methods:
Data was analyzed using custom-made LabVIEW software for confocal microscopy, Symphotime64 software for STED microscopy, and home-written software for TIRF movies to extract photophysical parameters.
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