Literature DB >> 31668746

Raster Image Correlation Spectroscopy Performance Evaluation.

Marco Longfils1, Nick Smisdom2, Marcel Ameloot3, Mats Rudemo4, Veerle Lemmens5, Guillermo Solís Fernández6, Magnus Röding6, Niklas Lorén7, Jelle Hendrix8, Aila Särkkä4.   

Abstract

Raster image correlation spectroscopy (RICS) is a fluorescence image analysis method for extracting the mobility, concentration, and stoichiometry of diffusing fluorescent molecules from confocal image stacks. The method works by calculating a spatial correlation function for each image and analyzing the average of those by model fitting. Rules of thumb exist for RICS image acquisitioning, yet a rigorous theoretical approach to predict the accuracy and precision of the recovered parameters has been lacking. We outline explicit expressions to reveal the dependence of RICS results on experimental parameters. In terms of imaging settings, we observed that a twofold decrease of the pixel size, e.g., from 100 to 50 nm, decreases the error on the translational diffusion constant (D) between three- and fivefold. For D = 1 μm2 s-1, a typical value for intracellular measurements, ∼25-fold lower mean-squared relative error was obtained when the optimal scan speed was used, although more drastic improvements were observed for other values of D. We proposed a slightly modified RICS calculation that allows correcting for the significant bias of the autocorrelation function at small (≪50 × 50 pixels) sizes of the region of interest. In terms of sample properties, at molecular brightness E = 100 kHz and higher, RICS data quality was sufficient using as little as 20 images, whereas the optimal number of frames for lower E scaled pro rata. RICS data quality was constant over the nM-μM concentration range. We developed a bootstrap-based confidence interval of D that outperformed the classical least-squares approach in terms of coverage probability of the true value of D. We validated the theory via in vitro experiments of enhanced green fluorescent protein at different buffer viscosities. Finally, we outline robust practical guidelines and provide free software to simulate the parameter effects on recovery of the diffusion coefficient.
Copyright © 2019 Biophysical Society. Published by Elsevier Inc. All rights reserved.

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Year:  2019        PMID: 31668746      PMCID: PMC7018992          DOI: 10.1016/j.bpj.2019.09.045

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


  21 in total

1.  Raster image correlation spectroscopy in live cells.

Authors:  Molly J Rossow; Jennifer M Sasaki; Michelle A Digman; Enrico Gratton
Journal:  Nat Protoc       Date:  2010-10-14       Impact factor: 13.491

2.  Sampling effects, noise, and photobleaching in temporal image correlation spectroscopy.

Authors:  David L Kolin; Santiago Costantino; Paul W Wiseman
Journal:  Biophys J       Date:  2005-10-28       Impact factor: 4.033

3.  Fluorescence lifetime correlation spectroscopy.

Authors:  Peter Kapusta; Michael Wahl; Ales Benda; Martin Hof; Jörg Enderlein
Journal:  J Fluoresc       Date:  2006-12-14       Impact factor: 2.217

4.  Raster image correlation spectroscopy (RICS) for measuring fast protein dynamics and concentrations with a commercial laser scanning confocal microscope.

Authors:  C M Brown; R B Dalal; B Hebert; M A Digman; A R Horwitz; E Gratton
Journal:  J Microsc       Date:  2008-01       Impact factor: 1.758

5.  Measuring diffusion of lipid-like probes in artificial and natural membranes by raster image correlation spectroscopy (RICS): use of a commercial laser-scanning microscope with analog detection.

Authors:  Ellen Gielen; Nick Smisdom; Martin vandeVen; Ben De Clercq; Enrico Gratton; Michelle Digman; Jean-Michel Rigo; Johan Hofkens; Yves Engelborghs; Marcel Ameloot
Journal:  Langmuir       Date:  2009-05-05       Impact factor: 3.882

6.  Pulsed interleaved excitation fluctuation imaging.

Authors:  Jelle Hendrix; Waldemar Schrimpf; Matthias Höller; Don C Lamb
Journal:  Biophys J       Date:  2013-08-20       Impact factor: 4.033

7.  Imaging barriers to diffusion by pair correlation functions.

Authors:  Michelle A Digman; Enrico Gratton
Journal:  Biophys J       Date:  2009-07-22       Impact factor: 4.033

8.  Quantitation of membrane receptor distributions by image correlation spectroscopy: concept and application.

Authors:  N O Petersen; P L Höddelius; P W Wiseman; O Seger; K E Magnusson
Journal:  Biophys J       Date:  1993-09       Impact factor: 4.033

9.  Analysis of diffusion and binding in cells using the RICS approach.

Authors:  Michelle A Digman; Enrico Gratton
Journal:  Microsc Res Tech       Date:  2009-04       Impact factor: 2.769

10.  Arbitrary-Region Raster Image Correlation Spectroscopy.

Authors:  Jelle Hendrix; Tomas Dekens; Waldemar Schrimpf; Don C Lamb
Journal:  Biophys J       Date:  2016-10-18       Impact factor: 4.033

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  1 in total

1.  Hetero-pentamerization determines mobility and conductance of Glycine receptor α3 splice variants.

Authors:  Veerle Lemmens; Bart Thevelein; Yana Vella; Svenja Kankowski; Julia Leonhard; Hideaki Mizuno; Susana Rocha; Bert Brône; Jochen C Meier; Jelle Hendrix
Journal:  Cell Mol Life Sci       Date:  2022-10-05       Impact factor: 9.207

  1 in total

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