Title :
Mechanical property characterization of mouse zona pellucida
Author :
Sun, Yu ; Wan, Kai-Tak ; Roberts, Kenneth P. ; Bischof, John C. ; Nelson, Bradley J.
Author_Institution :
Swiss Fed. Inst. of Technol., Zurich, Switzerland
Abstract :
Previous intracytoplasmic sperm injection (ICSI) studies have indicated significant variation in ICSI success rates among different species. In mouse ICSI, the zona pellucida (ZP) undergoes a "hardening" process at fertilization in order to prevent subsequent sperm from penetrating. There have been few studies investigating changes in the mechanical properties of mouse ZP post fertilization. To characterize mouse ZP mechanical properties and quantitate the mechanical property differences of the ZP before and after fertilization, a microelectromechanical systems-based multiaxis cellular force sensor has been developed. A microrobotic cell manipulation system employing the multiaxis cellular force sensor is used to conduct mouse ZP force sensing, establishing a quantitative relationship between applied forces and biomembrane structural deformations on both mouse oocytes and embryos. An analytical biomembrane elastic model is constructed to describe biomembrane mechanical properties. The characterized elastic modulus of embryos is 2.3 times that of oocytes, and the measured forces for puncturing embryo ZP are 1.7 times those for oocyte ZP. The technique and model presented in this paper can be applied to investigations into the mechanical properties of other biomembranes, such as the plasma membrane of oocytes or other cell types.
Keywords :
biological techniques; biomechanics; biomembranes; cellular biophysics; force sensors; microsensors; analytical biomembrane elastic model; biomembrane mechanical properties; biomembrane structural deformations; biomembranes; cell types; elastic modulus; fertilization; hardening process; intracytoplasmic sperm injection; mechanical properties; mechanical property characterization; microelectromechanical systems-based multiaxis cellular force sensor; microrobotic cell manipulation system; mouse ICSI; mouse zona pellucida; oocytes; plasma membrane; species; zona pellucida; Analytical models; Biomembranes; Embryo; Force measurement; Force sensors; Mechanical factors; Mechanical variables measurement; Mice; Plasma measurements; Plasma properties; Animals; Cell Culture Techniques; Cells, Cultured; Computer Simulation; Elasticity; Embryo, Mammalian; Equipment Design; Equipment Failure Analysis; Extraembryonic Membranes; Female; Mice; Micromanipulation; Models, Biological; Oocytes; Physical Stimulation; Reproducibility of Results; Sensitivity and Specificity; Stress, Mechanical; Zona Pellucida;
Journal_Title :
NanoBioscience, IEEE Transactions on
DOI :
10.1109/TNB.2003.820273