Three-dimensional nanoscopy of whole cells and tissues with in situ point spread function retrieval.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 32371980.
- Also identified by DOI 10.1038/s41592-020-0816-x and PMC identifier 7289454.
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Abstract
Single-molecule localization microscopy is a powerful tool for visualizing subcellular structures, interactions and protein functions in biological research. However, inhomogeneous refractive indices inside cells and tissues distort the fluorescent signal emitted from single-molecule probes, which rapidly degrades resolution with increasing depth. We propose a method that enables the construction of an in situ 3D response of single emitters directly from single-molecule blinking datasets, and therefore allows their locations to be pinpointed with precision that achieves the Cramér-Rao lower bound and uncompromised fidelity. We demonstrate this method, named in situ PSF retrieval (INSPR), across a range of cellular and tissue architectures, from mitochondrial networks and nuclear pores in mammalian cells to amyloid-β plaques and dendrites in brain tissues and elastic fibers in developing cartilage of mice. This advancement expands the routine applicability of super-resolution microscopy from selected cellular targets near coverslips to intra- and extracellular targets deep inside tissues.
Medical subject headings
- Brain
- Cartilage
- Imaging, Three-Dimensional
- Microscopy, Fluorescence
- Nanotechnology
- Plaque, Amyloid
- Single Molecule Imaging