DocumentCode
830710
Title
In Vivo Penetration Mechanics and Mechanical Properties of Mouse Brain Tissue at Micrometer Scales
Author
Sharp, Andrew A. ; Ortega, Alicia M. ; Restrepo, Diego ; Curran-Everett, Douglas ; Gall, Ken
Author_Institution
Dept. of Anatomy, Southern Illinois Univ., Carbondale, IL
Volume
56
Issue
1
fYear
2009
Firstpage
45
Lastpage
53
Abstract
Substantial advancement in the understanding of the neuronal basis of behavior and the treatment of neurological disorders has been achieved via the implantation of various devices into the brain. To design and optimize the next generation of neuronal implants while striving to minimize tissue damage, it is necessary to understand the mechanics of probe insertion at relevant length scales. Unfortunately, a broad-based understanding of brain-implant interactions at the necessary micrometer scales is largely missing. This paper presents a generalizable description of the micrometer-scale penetration mechanics and material properties of mouse brain tissue in vivo. Cylindrical stainless steel probes were inserted into the cerebral cortex and olfactory bulb of mice. The effects of probe size, probe geometry, insertion rate, insertion location, animal age, and the presence of the dura and pia on the resulting forces were measured continuously throughout probe insertion and removal. Material properties (modulus, cutting force, and frictional force) were extracted using mechanical analysis. The use of rigid, incompressible, cylindrical probes allows for a general understanding of how probe design and insertion methods influence the penetration mechanics of brain tissue in vivo that can be applied to the quantitative design of most future implantable devices.
Keywords
biological tissues; biomechanics; brain; neurophysiology; prosthetics; stainless steel; FeCrCJk; brain-implant interactions; cerebral cortex; device implantation; mouse brain tissue; neurological disorders; olfactory bulb; penetration mechanics; probe insertion; stainless steel probes; Brain; Cerebral cortex; Design optimization; Implants; In vivo; Material properties; Mice; Probes; Steel; Tissue damage; Brain tissue in vivo mechanical properties; cutting forces; insertion forces; neuronal implants; soft tissue; Algorithms; Analysis of Variance; Animals; Biomechanics; Brain; Cerebral Cortex; Dura Mater; Elastic Modulus; Mice; Microscopy, Electron, Scanning; Olfactory Bulb; Pia Mater; Poisson Distribution; Prostheses and Implants; Stainless Steel; Stress, Mechanical;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/TBME.2008.2003261
Filename
4595682
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