DocumentCode
1823862
Title
Improving single particle localization with an empirically calibrated Gaussian kernel
Author
de Moraes Marim, M. ; Zhang, Bo ; Marin, Jean Christophe Olivo ; Zimmer, Christophe
Author_Institution
Quantitative Image Anal. Group, Inst. Pasteur, Paris
fYear
2008
fDate
14-17 May 2008
Firstpage
1003
Lastpage
1006
Abstract
Accurate computational localization of single fluorescent particles is of interest to many biophysical studies and underlies recent approaches to high resolution microscopy using photo-switchable fluorophores. The position of individual particles is typically computed by least-squares fitting of a Gaussian intensity profile to the image, whose band-width is either derived from an idealized theoretical model of the point spread function (PSF), or itself fitted to the image. However, the band-width best approximating the actual PSF may differ significantly from its theoretical value, while fitting it is expected to degrade localization accuracy. Here, instead, we measure the real PSF bandwidth using fluorescent beads as calibration probes, and use this new bandwidth in a Gaussian model fitting algorithm. We show on simulated and real images that this simple modification of the standard localization procedure results in significant improvement of the 3D accuracy in the nanometer range.
Keywords
Gaussian processes; biological techniques; cellular biophysics; fluorescence; least squares approximations; molecular biophysics; optical microscopy; optical transfer function; Gaussian intensity profile; Gaussian model fitting algorithm; PSF; calibration probes; cell biology; computational localization; empirically calibrated Gaussian kernel; fluorescence microscopy; least-squares fitting method; photo-switchable fluorophores; point spread function; single fluorescent particle localization; Bandwidth; Fitting; Fluorescence; Image resolution; Kernel; Microscopy; Optical distortion; Optical refraction; Optical variables control; Signal resolution; Fluorescence microscopy; localization accuracy; point spread function; super-resolution;
fLanguage
English
Publisher
ieee
Conference_Titel
Biomedical Imaging: From Nano to Macro, 2008. ISBI 2008. 5th IEEE International Symposium on
Conference_Location
Paris
Print_ISBN
978-1-4244-2002-5
Electronic_ISBN
978-1-4244-2003-2
Type
conf
DOI
10.1109/ISBI.2008.4541168
Filename
4541168
Link To Document