Single-molecule localization microscopy (SMLM) is rapidly gaining popularity in the life sciences as an efficient approach to visualize molecular distribution with nanoscale precision. However, it has been challenging to obtain and analyze such data within a cellular context in tissue preparations. Here we describe a 5-d tissue processing and immunostaining procedure that is optimized for SMLM, and we provide example applications to fixed mouse brain, heart and kidney tissues. We then describe how to perform correlated confocal and 3D-superresolution imaging on these sections, which allows the visualization of nanoscale protein localization within labeled subcellular compartments of identified target cells in a few minutes. Finally, we desc...
Nanoscale characterization of living samples has become essential for modern biology. Atomic force m...
The development of super-resolution microscopy (SRM) has widened our understanding of biomolecular s...
The diffraction limit fundamentally restricts the achievable resolution of conventional microscopes,...
Single-molecule localization microscopy (SMLM) is rapidly gaining popularity in the life sciences as...
Over the past years several forms of superresolution fluorescence microscopy have been developed tha...
International audienceSuper-resolution microscopy has profoundly transformed how we study the archit...
International audienceSingle-molecule localization microscopy (SMLM) describes a family of powerful ...
The development of super-resolution microscopy (SRM) has widened our understanding of biomolecular s...
Visualizing the subcellular distribution of proteins and determining whether specific proteins co-lo...
Super-resolution (SR) methodologies permit the visualization of cellular structures at near-molecula...
Quantitative approaches for characterizing molecular organization of cell membrane molecules under p...
<p>Super-resolution microscopy techniques, which overcome the diraction limit of optical microscopy,...
Nanoscale characterization of living samples has become essential for modern biology. Atomic force m...
The development of super-resolution microscopy (SRM) has widened our understanding of biomolecular s...
The diffraction limit fundamentally restricts the achievable resolution of conventional microscopes,...
Single-molecule localization microscopy (SMLM) is rapidly gaining popularity in the life sciences as...
Over the past years several forms of superresolution fluorescence microscopy have been developed tha...
International audienceSuper-resolution microscopy has profoundly transformed how we study the archit...
International audienceSingle-molecule localization microscopy (SMLM) describes a family of powerful ...
The development of super-resolution microscopy (SRM) has widened our understanding of biomolecular s...
Visualizing the subcellular distribution of proteins and determining whether specific proteins co-lo...
Super-resolution (SR) methodologies permit the visualization of cellular structures at near-molecula...
Quantitative approaches for characterizing molecular organization of cell membrane molecules under p...
<p>Super-resolution microscopy techniques, which overcome the diraction limit of optical microscopy,...
Nanoscale characterization of living samples has become essential for modern biology. Atomic force m...
The development of super-resolution microscopy (SRM) has widened our understanding of biomolecular s...
The diffraction limit fundamentally restricts the achievable resolution of conventional microscopes,...