Literature DB >> 23972837

Pulsed interleaved excitation fluctuation imaging.

Jelle Hendrix1, Waldemar Schrimpf, Matthias Höller, Don C Lamb.   

Abstract

Fluorescence fluctuation imaging is a powerful means to investigate dynamics, interactions, and stoichiometry of proteins inside living cells. Pulsed interleaved excitation (PIE) is the method of nanosecond alternating excitation with time-resolved detection and allows accurate, independent, and quasi-simultaneous determination of fluorescence intensities and lifetimes of different fluorophores. In this work, we combine pulsed interleaved excitation with fluctuation imaging methods (PIE-FI) such as raster image correlation spectroscopy (RICS) or number and brightness analysis (N&B). More specifically, we show that quantitative measurements of diffusion and molecular brightness of Venus fluorescent protein (FP) can be performed in solution with PIE-RICS and compare PIE-RICS with single-point PIE-FCS measurements. We discuss the advantages of cross-talk free dual-color PIE-RICS and illustrate its proficiency by quantitatively comparing two commonly used FP pairs for dual-color microscopy, eGFP/mCherry and mVenus/mCherry. For N&B analysis, we implement dead-time correction to the PIE-FI data analysis to allow accurate molecular brightness determination with PIE-NB. We then use PIE-NB to investigate the effect of eGFP tandem oligomerization on the intracellular maturation efficiency of the fluorophore. Finally, we explore the possibilities of using the available fluorescence lifetime information in PIE-FI experiments. We perform lifetime-based weighting of confocal images, allowing us to quantitatively determine molecular concentrations from 100 nM down to <30 pM with PIE-raster lifetime image correlation spectroscopy (RLICS). We use the fluorescence lifetime information to perform a robust dual-color lifetime-based FRET analysis of tandem fluorescent protein dimers. Lastly, we investigate the use of dual-color RLICS to resolve codiffusing FRET species from non-FRET species in cells. The enhanced capabilities and quantitative results provided by PIE-FI make it a powerful method that is broadly applicable to a large number of interesting biophysical studies.
Copyright © 2013 Biophysical Society. Published by Elsevier Inc. All rights reserved.

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Year:  2013        PMID: 23972837      PMCID: PMC4100079          DOI: 10.1016/j.bpj.2013.05.059

Source DB:  PubMed          Journal:  Biophys J        ISSN: 0006-3495            Impact factor:   4.033


  46 in total

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3.  Spatial mapping of integrin interactions and dynamics during cell migration by image correlation microscopy.

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4.  Widely accessible method for superresolution fluorescence imaging of living systems.

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6.  The photon counting histogram in fluorescence fluctuation spectroscopy with non-ideal photodetectors.

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  22 in total

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Journal:  Biophys J       Date:  2013-08-20       Impact factor: 4.033

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5.  PIE-FLIM Measurements of Two Different FRET-Based Biosensor Activities in the Same Living Cells.

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6.  Raster Image Correlation Spectroscopy Performance Evaluation.

Authors:  Marco Longfils; Nick Smisdom; Marcel Ameloot; Mats Rudemo; Veerle Lemmens; Guillermo Solís Fernández; Magnus Röding; Niklas Lorén; Jelle Hendrix; Aila Särkkä
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7.  Multicolor fluorescence fluctuation spectroscopy in living cells via spectral detection.

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10.  Live-cell observation of cytosolic HIV-1 assembly onset reveals RNA-interacting Gag oligomers.

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