Author/Authors :
Parvanehpour, N. Department of Biomedical Engineering, South Tehran Branch of Islamic Azad University , Shojaei, Shahrokh Department of Biomedical Engineering - Central Tehran Branch, Islamic Azad University , Khorramymehr, S. Department of Biomedical Engineering - Sciences and Research Branch 0f Islamic Azad University, Tehran , Goodarzi, V. Applied Biotechnology Research Center - Baqiyatallah University of Medical Sciences , Hejazi, F. Department of Biomedical Engineering - Central Tehran Branch of Islamic Azad University , Rezaei, V. Faghihi Department of Biomedical Engineering - Central Tehran Branch 0f Islamic Azad University
Abstract :
Mechanical properties of the cells are among the most highlighted area of interests among researchers for decades. Not
only many of the cells’ crucial functional characteristics such as adherence to the cellular substrate, migration abilities and
morphological factors are directly influenced by their mechanical properties but also changes in these traits could have
importance in diagnosis and even treatments of some serious diseases. The general mechanical properties of the cells are
associated with some intercellular characteristics such as arrangement and organization of the actin fibers and cytoskeleton
architecture. Any changes due to pathological conditions in the molecular and cellular processes related to these elements
can alter the cells’ mechanical characteristics. In this paper, the viscoelastic properties of diabetic and normal lymphocytes
were analyzed and compared by application of the iron nanoparticles attached to the cellular membrane and putting the cells
in a magnetic field with certain frequency and intensity. Step force was applied to the normal and diabetic lymphocytes and
their membrane displacement was tracked by special software and plotted with respect to time. Fitting the experimental
data on theoretical formulation of standard linear viscoelastic model, it was demonstrated that diabetic lymphocytes have
significantly different viscoelastic characteristics. The results of this paper can be of importance in assessments of diabetic
lymphocytes’ abilities to fulfill their immune surveillance tasks.
Keywords :
Mechanical properties , Viscoelastic , Lymphocytes , Diabetes