DocumentCode :
1417573
Title :
Evaluation of the Single Yeast Cell´s Adhesion to ITO Substrates With Various Surface Energies via ESEM Nanorobotic Manipulation System
Author :
Shen, Yajing ; Ahmad, Mohd Ridzuan ; Nakajima, Masahiro ; Kojima, Seiji ; Homma, Michio ; Fukuda, Toshio
Author_Institution :
Dept. of Micro-Nano Syst. Eng., Nagoya Univ., Nagoya, Japan
Volume :
10
Issue :
4
fYear :
2011
Firstpage :
217
Lastpage :
224
Abstract :
Cell-surface adhesion force is important for cell activities and the development of biomaterials. In this paper, a method for in situ single cell (W303) adhesion force measurement was proposed based on nanorobotic manipulation system inside an environment scanning electron microscope (ESEM). An end effector was fabricated from a commercial atomic force microscope (AFM) cantilever by focused ion beam (FIB) etching. The spring constant of it was calibrated by nanomanipulation approach. Three kinds of hydrophilic and hydrophobic ITO plates were prepared by using VUV-irradiation and OTS coating techniques. The shear adhesion strength of the single yeast cell to each substrate was measured based on the deflection of the end effector. The results demonstrated that the cell adhesion force was larger under the wet condition in the ESEM environment than in the aqueous condition. It also showed that the cell adhesion force to hydrophilic surface was larger than that to the hydrophobic surface. Studies of single cell´s adhesion on various plate surfaces and environments could give new insights into the tissue engineering and biological field.
Keywords :
adhesion; atomic force microscopy; biomechanics; biomedical materials; cantilevers; cellular biophysics; coating techniques; end effectors; focused ion beam technology; medical robotics; microorganisms; nanomedicine; scanning electron microscopy; tissue engineering; AFM; ESEM nanorobotic manipulation system; OTS coating; VUV irradiation; atomic force microscope; biomaterials; cantilever; cell activities; cell-surface adhesion; end effector; environment scanning electron microscope; focused ion beam etching; hydrophilic plates; hydrophobic plates; nanorobotic manipulation system; shear adhesion strength; single yeast cell; surface energy; tissue engineering; Adhesive strength; End effectors; Force measurement; Indium tin oxide; Manipulators; Scanning electron microscopy; Substrates; Environmental scanning electron microscope (ESEM); nanomanipulation; single cell adhesion; yeast cells; Biocompatible Materials; Calibration; Cell Adhesion; Friction; Glass; Hydrophobic and Hydrophilic Interactions; Microscopy, Electron, Scanning; Models, Biological; Nanotechnology; Robotics; Saccharomyces cerevisiae; Single-Cell Analysis; Surface Properties;
fLanguage :
English
Journal_Title :
NanoBioscience, IEEE Transactions on
Publisher :
ieee
ISSN :
1536-1241
Type :
jour
DOI :
10.1109/TNB.2011.2177099
Filename :
6126046
Link To Document :
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