DocumentCode :
1135911
Title :
Single quantum dot tracking based on perceptual Grouping using minimal paths in a spatiotemporal volume
Author :
Bonneau, Stephane ; Dahan, Maxime ; Cohen, Laurent D.
Author_Institution :
CEREMADE, Univ. Paris Dauphine, France
Volume :
14
Issue :
9
fYear :
2005
Firstpage :
1384
Lastpage :
1395
Abstract :
Semiconductor quantum dots (QDs) are new fluorescent probes with great promise for ultrasensitive biological imaging. When detected at the single-molecule level, QD-tagged molecules can be observed and tracked in the membrane of live cells over unprecedented durations. The motion of these individual molecules, recorded in sequences of fluorescence images, can reveal aspects of the dynamics of cellular processes that remain hidden in conventional ensemble imaging. Due to QD complex optical properties, such as fluorescence intermittency, the quantitative analysis of these sequences is, however, challenging and requires advanced algorithms. We present here a novel approach, which, instead of a frame by frame analysis, is based on perceptual grouping in a spatiotemporal volume. By applying a detection process based on an image fluorescence model, we first obtain an unstructured set of points. Individual molecular trajectories are then considered as minimal paths in a Riemannian metric derived from the fluorescence image stack. These paths are computed with a variant of the fast marching method and few parameters are required. We demonstrate the ability of our algorithm to track intermittent objects both in sequences of synthetic data and in experimental measurements obtained with individual QD-tagged receptors in the membrane of live neurons. While developed for tracking QDs, this method can, however, be used with any fluorescent probes.
Keywords :
biological techniques; biomedical imaging; cellular biophysics; fluorescence; semiconductor quantum dots; cellular imaging; flourescent probes; perceptual grouping; semiconductor quantum dots; single quantum dot tracking; spatiotemporal volume; Algorithm design and analysis; Biomedical optical imaging; Biomembranes; Fluorescence; Image sequence analysis; Optical imaging; Optical recording; Probes; Quantum dots; Spatiotemporal phenomena; Active contours; cellular imaging; energy minimization; group marching; minimal paths; perceptual grouping; quantum dot; single-molecule tracking (SMT); Algorithms; Artificial Intelligence; Image Enhancement; Image Interpretation, Computer-Assisted; Imaging, Three-Dimensional; Microscopy, Fluorescence; Microscopy, Video; Pattern Recognition, Automated; Quantum Dots; Reproducibility of Results; Sensitivity and Specificity; Subtraction Technique;
fLanguage :
English
Journal_Title :
Image Processing, IEEE Transactions on
Publisher :
ieee
ISSN :
1057-7149
Type :
jour
DOI :
10.1109/TIP.2005.852794
Filename :
1495510
Link To Document :
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