DocumentCode :
1771867
Title :
A 3D model with shape prior information for biological structures reconstruction using multiple-angle total internal reflection fluorescence microscopy
Author :
Soubies, Emmanuel ; Blanc-Feraud, Laure ; Schaub, Sebastien ; Aubert, Gilles
Author_Institution :
I3S, Univ. Nice Sophia Antipolis, Nice, France
fYear :
2014
fDate :
April 29 2014-May 2 2014
Firstpage :
608
Lastpage :
611
Abstract :
We propose a new model for the reconstruction of biological structures using Multiple-Angle Total Internal Reflection Fluorescence Microscopy (MA-TIRFM). This recent microscopy technique allows the visualization of sub-cellular structures around the plasma membrane which is of fundamental importance in the comprehension of exchanges mechanisms of the cell. We present a 3D reconstruction method based on a shape prior information on the observed structures and robust to shot noise and background fluorescence. A novelty with respect to the state of the art is to propose a method allowing the recovery of multiple objects aligned along the axial axis. The optimization problem can be formulated as a minimization problem where both the number of objects in the model and their parameters have to be estimated. This difficult combinatorial optimization problem is tackled by using a Marked Point Process approach which allows modelling interactions between the objects in order to regularize the inverse problem. Finally, performances of the proposed method are evaluated on synthetic data and real data.
Keywords :
biomedical optical imaging; biomembranes; cellular biophysics; fluorescence; image reconstruction; inverse problems; medical image processing; minimisation; optical microscopy; shot noise; 3D model; MA-TIRFM; background fluorescence; biological structures reconstruction; cell exchange mechanisms; combinatorial optimization; inverse problem; marked point process approach; minimization; multiple-angle total internal reflection fluorescence microscopy; plasma membrane; shape prior information; shot noise; subcellular structure visualization; Estimation; Image reconstruction; Mathematical model; Microscopy; Noise; Shape; Three-dimensional displays; 3D reconstruction; Evanescent wave microscopy; Total Internal Reflection Fluorescence Microscopy; Vesicles reconstruction;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Biomedical Imaging (ISBI), 2014 IEEE 11th International Symposium on
Conference_Location :
Beijing
Type :
conf
DOI :
10.1109/ISBI.2014.6867944
Filename :
6867944
Link To Document :
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