Title :
Topographical strategies to control neural outgrowth
Author :
I. Morana Roccasalvo;P.N. Sergi;I. Tonazzini;M. Cecchini;S. Micera
Author_Institution :
The BioRobotics Institute, Scuola Superiore Sant´Anna, Pisa, Italy
Abstract :
In this work a synergistic approach is used to investigate how directional anisotropic surfaces (i.e., nanogratings) control the alignment of PC12 neurites. Finite Element models were used to assess the distribution of stresses in non-spread growth cones and filopodia. The stress field was assumed to be the main triggering cause fostering the increase and stabilization of filopodia, so the local stress maxima were directly related to the neuritic orientation. Moreover, a computational framework was implemented within an open source Java environment (CX3D), and in silico simulations were carried out to reproduce and predict biological experiments. No significant differences were found between biological experiments and in silico simulations (alignment angle, p = 0.4685; tortuosity, p = 0.9075) with a standard level of confidence (95%).
Keywords :
"Nanobioscience","Biological system modeling","Computational modeling","Gratings","Mathematical model","Stress"
Conference_Titel :
Engineering in Medicine and Biology Society (EMBC), 2015 37th Annual International Conference of the IEEE
Electronic_ISBN :
1558-4615
DOI :
10.1109/EMBC.2015.7320040