Tissue engineering nerve graft prepared by biological printing technology and preparation method thereof
A technology of tissue engineering and bioprinting, which is applied in the fields of medicine and biomedical engineering, can solve the problems of cumbersome steps and limited tensile strength of nerve conduits, and achieve the effects of abundant sources, avoiding immune tissue reaction, and safe and controllable production process
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Embodiment 1
[0049] (1) Prepare 50ml of benzoic acid solution of 3% polylactic acid (the concentration of benzoic acid solution is 0.1mol / L) and put it in the ink cartridge of model HP51626A;
[0050] (2) Adjust the printer nozzle needle diameter to 2μm, the number of needles to 4, the distance from the nozzle to the bottom layer to 10mm, and the booster pulse frequency to 1v;
[0051] (3) Accurately simulate the three-dimensional space structure of different nerves, compile corresponding control programs, preset the three-dimensional model on the printer, and design the shape of the tissue-engineered nerve graft: the diameter of the outer tube is 1 mm, the wall thickness is 0.5 mm, and the diameter of the nanofiber scaffold in the tube is 0.1mm. The number of fiber supports is 5, and the fiber supports are evenly distributed in the tube. Print with the parameters of step (2) to form the outer tube and the nanofiber scaffolds evenly distributed inside the tube.
[0052] Or, accurately si...
Embodiment 2
[0059] (1) Prepare 50ml of citric acid solution of 5% sodium alginate (the concentration of citric acid solution is 0.05mol / L) and put it in the ink cartridge of model HP51626A;
[0060] (2) Adjust the printer nozzle needle diameter to 100μm, the number of needles to 16, the distance from the nozzle to the bottom layer to 25mm, and the booster pulse frequency to 15v;
[0061] (3) Accurately simulate the three-dimensional space structure of different nerves, compile corresponding control programs, preset the three-dimensional model on the printer, and design the shape of the tissue-engineered nerve graft: the diameter of the outer tube is 1 mm, the wall thickness is 0.5 mm, and the diameter of the nanofiber scaffold in the tube is 0.1mm. The number of fiber supports is 5, and the fiber supports are evenly distributed in the tube. Print using the parameters of step (2) to form the outer tube and the nanofiber scaffold inside the tube.
[0062] Alternatively, accurately simulat...
Embodiment 3
[0069] (1) Prepare 50ml of acetic acid solution of 5% chitosan (the concentration of acetic acid solution is 0.1mol / L) and put it in the ink cartridge of model HP51626A;
[0070] (2) Adjust the printer nozzle needle diameter to 50μm, the number of needles to 9, the distance from the nozzle to the bottom layer to 40mm, and the booster pulse frequency to 10v;
[0071] (3) Accurately simulate the three-dimensional space structure of different nerves, compile corresponding control programs, preset the three-dimensional model on the printer, and design the shape of the tissue-engineered nerve graft: the diameter of the outer tube is 1 mm, the wall thickness is 0.5 mm, and the diameter of the nanofiber scaffold in the tube is 0.1mm. The number of fiber supports is 5, and the fiber supports are evenly distributed in the tube. Print using the parameters of step (2) to form the outer tube and the nanofiber scaffold inside the tube.
[0072] Or, accurately simulate the three-dimension...
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