Optical microscopy imaging of single molecules and single particles is an essential method for studying fundamental biological and chemical processes at the molecular and nanometer scale. The best spatial resolution (~ λ/2) achievable in traditional optical microscopy is governed by the diffraction of light. However, single molecule-based super-localization and super-resolution microscopy imaging techniques have emerged in the past decade. Individual molecules can be localized with nanometer scale accuracy and precision for studying of biological and chemical processes. The obtained spatial resolution for plant cell imaging is not yet as good as that achieved in mammalian cell imaging. Numerous technical challenges, including the generally ...
AbstractOver the last twenty years super-resolution fluorescence microscopy has gone from proof-of-c...
Resolving the movement of individual molecules in living cells by single particle tracking methods h...
The diffraction limit fundamentally restricts the achievable resolution of conventional microscopes,...
Optical microscopy imaging of single molecules and single particles is an essential method for study...
Light microscopy has undergone a revolution with the advent of super-resolution microscopy methods t...
Over the past two decades, super-resolution microscopy (SRM), which offered a significant improvemen...
Super-resolution fluorescence imaging can provide insights into cellular structure and organization ...
AbstractBy delivering optical images with spatial resolutions below the diffraction limit, several s...
International audienceFor over a decade fluorescence microscopy has demonstrated the capacity to ach...
The optical microscopy of single molecules has recently been beneficial for many applications, in pa...
For more than 20 years, single-molecule spectroscopy has been providing invaluable insights into nat...
Living organisms consist of cells, the elementary components of which are proteins providing cellula...
Super-resolution microscopy is an enabling technology that allows biologists to visualize cellular s...
No abstract.Peer Reviewedhttp://deepblue.lib.umich.edu/bitstream/2027.42/83169/1/21592_ftp.pd
Fluorescence microscopy has become a ubiquitous method to observe the location of specific molecular...
AbstractOver the last twenty years super-resolution fluorescence microscopy has gone from proof-of-c...
Resolving the movement of individual molecules in living cells by single particle tracking methods h...
The diffraction limit fundamentally restricts the achievable resolution of conventional microscopes,...
Optical microscopy imaging of single molecules and single particles is an essential method for study...
Light microscopy has undergone a revolution with the advent of super-resolution microscopy methods t...
Over the past two decades, super-resolution microscopy (SRM), which offered a significant improvemen...
Super-resolution fluorescence imaging can provide insights into cellular structure and organization ...
AbstractBy delivering optical images with spatial resolutions below the diffraction limit, several s...
International audienceFor over a decade fluorescence microscopy has demonstrated the capacity to ach...
The optical microscopy of single molecules has recently been beneficial for many applications, in pa...
For more than 20 years, single-molecule spectroscopy has been providing invaluable insights into nat...
Living organisms consist of cells, the elementary components of which are proteins providing cellula...
Super-resolution microscopy is an enabling technology that allows biologists to visualize cellular s...
No abstract.Peer Reviewedhttp://deepblue.lib.umich.edu/bitstream/2027.42/83169/1/21592_ftp.pd
Fluorescence microscopy has become a ubiquitous method to observe the location of specific molecular...
AbstractOver the last twenty years super-resolution fluorescence microscopy has gone from proof-of-c...
Resolving the movement of individual molecules in living cells by single particle tracking methods h...
The diffraction limit fundamentally restricts the achievable resolution of conventional microscopes,...