DocumentCode
88558
Title
Tracking Epithelial Cell Junctions in C. elegans Embryogenesis With Active Contours Guided by SIFT Flow
Author
Sukryool Kang ; Chen-Yu Lee ; Goncalves, Monira ; Chisholm, Andrew D. ; Cosman, Pamela C.
Author_Institution
Dept. of Electr. & Comput. Eng., Univ. of California at SanDiego, La Jolla, CA, USA
Volume
62
Issue
4
fYear
2015
fDate
Apr-15
Firstpage
1020
Lastpage
1033
Abstract
Quantitative analysis of cell shape in live samples is an important goal in developmental biology. Automated or semi-automated segmentation and tracking of cell nuclei has been successfully implemented in several biological systems. Segmentation and tracking of cell surfaces has been more challenging. Here, we present a new approach to tracking cell junctions in the developing epidermis of C. elegans embryos. Epithelial junctions as visualized with DLG-1::GFP form lines at the subapical circumference of differentiated epidermal cells and delineate changes in epidermal cell shape and position. We develop and compare two approaches for junction segmentation. For the first method (projection approach), 3-D cell boundaries are projected into 2D for segmentation using active contours with a nonintersecting force, and subsequently tracked using scale-invariant feature transform (SIFT) flow. The resulting 2-D tracked boundaries are then back-projected into 3-D space. The second method (volumetric approach) uses a 3-D extended version of active contours guided by SIFT flow in 3-D space. In both methods, cell junctions are manually located at the first time point and tracked in a fully automated way for the remainder of the video. Using these methods, we have generated the first quantitative description of ventral epidermal cell movements and shape changes during epidermal enclosure.
Keywords
biomedical optical imaging; biomembranes; cell motility; cellular biophysics; image segmentation; medical image processing; transforms; 3D cell boundary; C. elegans embryo epidermis; C. elegans embryogenesis; DLG-1::GFP; SIFT flow; active contour; cell nuclei tracking; cell surface segmentation; cell surface tracking; epidermal cell position; epidermal cell shape; epidermal enclosure; epithelial cell junction tracking; junction segmentation; scale invariant feature transform; semiautomated segmentation; ventral epidermal cell movement; volumetric approach; Embryo; Force; Junctions; Shape; Skeleton; Surface reconstruction; Three-dimensional displays; Active contours; C. elegans; cell junction tracking; embryogenesis; scale-invariant feature transform (SIFT) flow;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/TBME.2014.2319236
Filename
6803854
Link To Document