Abstract:
PURPOSE: A multiple coating stent for controlling the medicine emission, and a manufacturing method thereof are provided to form three coating layers of different drugs by emitting ultrasonic waves. CONSTITUTION: A manufacturing method of a multiple coating stent for controlling the medicine emission comprises the following steps: ultrasonic wave-spraying a mixed solution of a first drug and a biodegradable polymer on the surface of a stent for forming a first coating layer; ultrasonic wave-spraying a biodegradable polymer solution on the upper side of the first coating layer for forming a second coating layer; ultrasonic wave-spraying a second mixed solution of a second drug and the biodegradable polymer on the upper side of the second coating layer for forming a third coating layer; and forming a fourth coating layer on the third coating layer using a biodegradable polymer. The first or second drug is selected from polyvinyl alcohol, saponin, carboxymethyl cellulose, or mono grylceride.
Abstract:
본발명은세포에서유래된세포외기질로부터자기조립메트릭스제조및 이를이용하여세포증식및 분화유도, 나아가세포치료응용에관한것으로, 구체적으로특정세포들로부터분비되어지는고유한세포외기질을획득하고이들을탈세포화과정을통해세포외기질만으로나노파이버가형성된자기조립메트릭스를만드는방법에대한것이다. 또한, 상기와같이제작된메트릭스는세포의대량증식이나분화유도에효과적인플랫포옴을제공함으로서이를통해세포치료제제조등에응용할수 있다.
Abstract:
본 발명은 세포에서 유래된 세포외 기질로부터 자기조립 메트릭스 제조 및 이를 이용하여 세포 증식 및 분화유도, 나아가 세포치료 응용에 관한 것으로, 구체적으로 특정 세포들로부터 분비되어지는 고유한 세포외 기질을 획득하고 이들을 탈세포화 과정을 통해 세포외 기질만으로 나노파이버가 형성된 자기조립 메트릭스를 만드는 방법에 대한 것이다. 또한, 상기와 같이 제작된 메트릭스는 세포의 대량증식이나 분화 유도에 효과적인 플랫포옴을 제공함으로서 이를 통해 세포치료제 제조 등에 응용할 수 있다.
Abstract:
PURPOSE: A method for reforming the surface of a stent is provided to flatten the surface of a stent coated with biodegradable polymers. CONSTITUTION: A method for reforming the surface of a stent includes the following steps: a coating layer is formed by ultrasonic wave-spraying the mixture of a first biodegradable polymer and chemicals to the surface of a stent; the stent with the coating layer is contacted with a solvent; and the solvent is evaporated at a temperature between 20 and 80 deg C. The stent is made of a metal selected from a group including stainless steel, cobalt-chromium, platinum-chromium, tantalum, titanium, nitinol, gold, platinum, silver, and the alloy of the same. The biodegradable polymer is selected from a group including poly(glycolic acid), poly-L-lactic acid, poly-D-lactic acid, poly-D,L-lactic acid, poly-e-caprolactone, poly lactic acid-glycolic acid copolymer, poly-L-lactic acid-e-caprolactone copolymer, poly(ethylene glycol), poly(amino acid), polyanhydride, poly ortho ester, polydioxanone, polyphosphazene, cellulose acetate butylate, cellulose triacetate, and the copolymer of the same.