High-numerical-aperture cryogenic light microscopy for increased precision of superresolution reconstructions.
basic_science · Level V
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- Record sourced from PubMed, PMID 28348224.
- Also identified by DOI 10.1073/pnas.1618206114 and PMC identifier 5393246.
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Abstract
Superresolution microscopy has fundamentally altered our ability to resolve subcellular proteins, but improving on these techniques to study dense structures composed of single-molecule-sized elements has been a challenge. One possible approach to enhance superresolution precision is to use cryogenic fluorescent imaging, reported to reduce fluorescent protein bleaching rates, thereby increasing the precision of superresolution imaging. Here, we describe an approach to cryogenic photoactivated localization microscopy (cPALM) that permits the use of a room-temperature high-numerical-aperture objective lens to image frozen samples in their native state. We find that cPALM increases photon yields and show that this approach can be used to enhance the effective resolution of two photoactivatable/switchable fluorophore-labeled structures in the same frozen sample. This higher resolution, two-color extension of the cPALM technique will expand the accessibility of this approach to a range of laboratories interested in more precise reconstructions of complex subcellular targets.
Medical subject headings
- Cryoelectron Microscopy
- Green Fluorescent Proteins
- Image Interpretation, Computer-Assisted
- Microscopy, Fluorescence