Nanotechnology is one of the most interesting research area of the early 21st century and nanofibers are playing an increasingly important role in advanced delivery systems, tissue engineering, and tissue regeneration. Nanofibers are solid fibers with a diameter in the nanometer range and a theoretically unlimited length. Literature data about nanofiber are plentiful, however, a few research has been done on their safety, therefore, this is the subject of my master's thesis. The aim of the study was to determine the influence of physical properties of nanofibres that could have a cytotoxic effect on the cells present.
Polycaprolactone polymer was used to produce nanofibers, which were made by electrospinning. Firstly, we conducted preliminary studies to determine the key factors of the polymer solution, process and environmental parameters on the electrospinning and the morphology of the nanofibers. Secondly, using Design of experiments method, we established a model to define parameters at which nanofibers with specific diameters and pore sizes between them can be produced. The properties of the nanofibers were evaluated in several ways: The diameter of the nanofibers, the surface area of the pores between the nanofibers and accurate information about the nanofibres morphology were obtained using optical microscopy and scanning electron microscopy. The hydrophilic and hydrophobic properties of the nanofiber scaffold were investigated by the contact angle measurement method and finally, the selected nanofibers were evaluated by thermal analysis. The nanofibers were tested on lymphocyte cells; their metabolic activity was investigated by MTS assay and their cytotoxicity was investigated using LDH assay. In studies on lymphocytes, we tested the influence of nanofiber diameter, pore size, different thicknesses and different membrane porosity, influence of nanofiber allignment and presence of nodules.
We discovered that the pore size and membrane thickness of polycaprolactone nanofibers affect the metabolic activity of lymphocytes, due to the mechanical immobilization of cells, which leads to cytotoxic effect or decreased metabolic activity. The results obtained with this study will help to better understand effect of nanofibers on lymphocytes and their cytotoxicity.
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