DocumentCode :
716498
Title :
Automated micro-aspiration of mouse embryo limb bud tissue
Author :
Jun Wen ; Jun Liu ; Lau, Kimberly ; Haijiao Liu ; Hopyan, Sevan ; Yu Sun
Author_Institution :
Dept. of Mech. & Ind. Eng., Univ. of Toronto, Toronto, ON, Canada
fYear :
2015
fDate :
26-30 May 2015
Firstpage :
2667
Lastpage :
2672
Abstract :
Mechanical force is an integral part of tissue morphogenesis and patterning. We have developed an automated micro-aspiration system to investigate how mouse limb bud tissue responds to extrinsic forces in order to understand whether tissue-generated forces can be a part of the mechanism causing oriented cell behaviors observed in mouse limb bud morphogenesis. The system is capable of performing automated micropipette tracking, tissue-tip contact detection, pressure control, and prolonged application of constant pressure. A three-dimensional tissue tracking algorithm is developed based on the processing of time-lapsed confocal Z-stack images. 3D visual feedback from confocal microscopy imaging, for the first time, is used to realize 3D visual servoing to control the micropipette position to compensate for tissue movement. This enables stable force application in a biologically relevant time scale (e.g., 60 minutes) during which cell remodeling occurs. Experimental results demonstrate that micro-aspiration on mouse limb bud is capable of creating tension anisotropy which causes force-responsive cells to dynamically remodel through polarized cell division and rosette resolution.
Keywords :
biocontrol; biological tissues; biology computing; biomechanics; cellular biophysics; motion compensation; object detection; object tracking; position control; pressure control; visual servoing; 3D visual feedback; 3D visual servoing; automated microaspiration system; automated micropipette tracking; cell remodeling; confocal microscopy imaging; constant pressure; force-responsive cells; mechanical force; micropipette position control; mouse embryo limb bud tissue; oriented cell behaviors; polarized cell division; pressure control; rosette resolution; tension anisotropy; three-dimensional tissue tracking algorithm; time-lapsed confocal Z-stack image processing; tissue morphogenesis; tissue movement compensation; tissue patterning; tissue-generated forces; tissue-tip contact detection; Computer architecture; Embryo; Force; Mice; Microscopy; Three-dimensional displays; Visualization;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Robotics and Automation (ICRA), 2015 IEEE International Conference on
Conference_Location :
Seattle, WA
Type :
conf
DOI :
10.1109/ICRA.2015.7139559
Filename :
7139559
Link To Document :
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