Literature DB >> 21529089

Fluorescence recovery after photobleaching on the confocal laser-scanning microscope: generalized model without restriction on the size of the photobleached disk.

Nick Smisdom1, Kevin Braeckmans, Hendrik Deschout, Martin vandeVen, Jean-Michel Rigo, Stefaan C De Smedt, Marcel Ameloot.   

Abstract

Fluorescence recovery after photobleaching (FRAP) carried out on a confocal laser-scanning microscope (CLSM) performs well for photobleached disks that are large compared to the resolution of the bleaching beam. For smaller disks approaching this resolution, current FRAP models providing a closed-form solution do not allow one to extract the diffusion coefficient accurately. The new generalized disk model we present addresses this shortcoming by bringing into account the bleaching resolution and the total confocal imaging resolution. A closed-form solution is obtained under the assumption of linear photobleaching. Furthermore, simultaneous analysis of FRAP data collected at various disk sizes allows for the intrinsic determination of the instrumental resolution parameters, thereby obviating the need for an extrinsic calibration. A new method to estimate the variance of FRAP data is introduced to allow for proper weighting in this global analysis approach by nonlinear least squares. Experiments are performed on two independent CLSMs on homogeneous samples providing validation over a large range of diffusion coefficients.

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Year:  2011        PMID: 21529089     DOI: 10.1117/1.3569620

Source DB:  PubMed          Journal:  J Biomed Opt        ISSN: 1083-3668            Impact factor:   3.170


  7 in total

1.  The autodepalmitoylating activity of APT maintains the spatial organization of palmitoylated membrane proteins.

Authors:  Nachiket Vartak; Bjoern Papke; Hernan E Grecco; Lisaweta Rossmannek; Herbert Waldmann; Christian Hedberg; Philippe I H Bastiaens
Journal:  Biophys J       Date:  2014-01-07       Impact factor: 4.033

2.  Characterization of Cell Boundary and Confocal Effects Improves Quantitative FRAP Analysis.

Authors:  James L Kingsley; Jeffrey P Bibeau; S Iman Mousavi; Cem Unsal; Zhilu Chen; Xinming Huang; Luis Vidali; Erkan Tüzel
Journal:  Biophys J       Date:  2018-03-13       Impact factor: 4.033

3.  Simplified equation to extract diffusion coefficients from confocal FRAP data.

Authors:  Minchul Kang; Charles A Day; Anne K Kenworthy; Emmanuele DiBenedetto
Journal:  Traffic       Date:  2012-10-10       Impact factor: 6.215

4.  Simultaneous FRAP, FLIM and FAIM for measurements of protein mobility and interaction in living cells.

Authors:  James A Levitt; Penny E Morton; Gilbert O Fruhwirth; George Santis; Pei-Hua Chung; Maddy Parsons; Klaus Suhling
Journal:  Biomed Opt Express       Date:  2015-09-08       Impact factor: 3.732

5.  A Highly Accurate Pixel-Based FRAP Model Based on Spectral-Domain Numerical Methods.

Authors:  Magnus Röding; Leander Lacroix; Annika Krona; Tobias Gebäck; Niklas Lorén
Journal:  Biophys J       Date:  2019-03-01       Impact factor: 4.033

6.  DeepFRAP: Fast fluorescence recovery after photobleaching data analysis using deep neural networks.

Authors:  Victor Wåhlstrand Skärström; Annika Krona; Niklas Lorén; Magnus Röding
Journal:  J Microsc       Date:  2021-01-16       Impact factor: 1.758

7.  FRAP analysis: accounting for bleaching during image capture.

Authors:  Jun Wu; Nandini Shekhar; Pushkar P Lele; Tanmay P Lele
Journal:  PLoS One       Date:  2012-08-09       Impact factor: 3.240

  7 in total

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