A New Wave of Cellular Imaging
Top Cited Papers
- 10 November 2010
- journal article
- review article
- Published by Annual Reviews in Annual Review of Cell and Developmental Biology
- Vol. 26 (1) , 285-314
- https://doi.org/10.1146/annurev-cellbio-100109-104048
Abstract
Fluorescence imaging methods that push or break the diffraction limit of resolution (approximately 200 nm) have grown explosively. These super-resolution nanoscopy techniques include: stimulated emission depletion (STED), Pointillism microscopy [(fluorescence) photoactivation localization microscopy/stochastic optical reconstruction microscopy, or (F)PALM/STORM], structured illumination, total internal reflection fluorescence microscopy (TIRFM), and those that combine multiple modalities. Each affords unique strengths in lateral and axial resolution, speed, sensitivity, and fluorophore compatibility. We examine the optical principles and design of these new instruments and their ability to see more detail with greater sensitivity—down to single molecules with tens of nanometers resolution. Nanoscopes have revealed transient intermediate states of organelles and molecules in living cells and have led to new discoveries but also biological controversies. We highlight common unifying principles behind nanoscopy such as the conversion of a subset of probes between states (ground or excited) and the use of scanning (ordered or stochastic). We emphasize major advances, biological applications, and promising new developments.Keywords
This publication has 147 references indexed in Scilit:
- Stimulated Emission Depletion Nanoscopy of Living Cells Using SNAP-Tag Fusion ProteinsBiophysical Journal, 2010
- Exocytosis of Post-Golgi Vesicles Is Regulated by Components of the Endocytic MachineryCell, 2009
- A Novel Form of Motility in Filopodia Revealed by Imaging Myosin-X at the Single-Molecule LevelCurrent Biology, 2009
- A Phosphoinositide Switch Controls the Maturation and Signaling Properties of APPL EndosomesCell, 2009
- Light-Induced Dark States of Organic Fluochromes Enable 30 nm Resolution Imaging in Standard MediaBiophysical Journal, 2009
- In Vivo Labeling Method Using a Genetic Construct for Nanoscale Resolution MicroscopyBiophysical Journal, 2009
- Metal-enhanced fluorescence of single green fluorescent protein (GFP)Biochemical and Biophysical Research Communications, 2008
- Super-resolution microscopy by nanoscale localization of photo-switchable fluorescent probesCurrent Opinion in Chemical Biology, 2008
- Myosin VI Walks “Wiggly” on Actin with Large and Variable TiltingMolecular Cell, 2007
- Wide‐field subdiffraction RESOLFT microscopy using fluorescent protein photoswitchingMicroscopy Research and Technique, 2007