Single-Molecule Spectroscopy and Imaging of Biomolecules in Living Cells

The number of reports per year on single-molecule imaging experiments has grown roughly exponentially since the first successful efforts to optically detect a single molecule were completed over two decades ago. Single-molecule spectroscopy has developed into a field that includes a wealth of experi...

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Veröffentlicht in:Analytical chemistry (Washington) 2010-03, Vol.82 (6), p.2192-2203
Hauptverfasser: Lord, Samuel J, Lee, Hsiao-lu D, Moerner, W. E
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creator Lord, Samuel J
Lee, Hsiao-lu D
Moerner, W. E
description The number of reports per year on single-molecule imaging experiments has grown roughly exponentially since the first successful efforts to optically detect a single molecule were completed over two decades ago. Single-molecule spectroscopy has developed into a field that includes a wealth of experiments at room temperature and inside living cells. The fast growth of single-molecule biophysics has resulted from its benefits in probing heterogeneous populations, one molecule at a time, as well as from advances in microscopes and detectors. This Perspective summarizes the field of live-cell imaging of single biomolecules.
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subjects Analytical chemistry
Animals
Biological Transport
Biophysics
Biophysics - methods
Cell Membrane - ultrastructure
Cell Nucleolus - ultrastructure
Cells
Cellular Structures - metabolism
Cellular Structures - ultrastructure
Chemistry
Cytoskeleton - ultrastructure
Equipment Design
Exact sciences and technology
Fluorescence Resonance Energy Transfer
Gene Expression
Humans
Microscopy - instrumentation
Microscopy - methods
Microscopy - trends
Molecules
Spectrum analysis
Spectrum Analysis - methods
Spectrum Analysis - trends
title Single-Molecule Spectroscopy and Imaging of Biomolecules in Living Cells
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