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Development of Polymer Coating Method for Stable Stent Coating Using Chemical Bond Between Metal Surface and Polymer

안정된 스텐트 코팅막을 형성하기 위해 금속표면과 고분자 사이의 화학적 결합을 이용한 고분자 코팅법 개발

  • 남대식 (인제대학교 공과대학 나노공학부) ;
  • 이우경 (인제대학교 공과대학 나노공학부)
  • Published : 2007.02.21

Abstract

To produce stable polymer coating layer using the interaction between metal stent and polymer layer, Ahx-HSAB was synthesized by coupling 6-aminoheanoic acid (Ahx) with N-Hydroxy succinimidyl 4-azidobenzonate (HSAB) containing photo reactive group. Then, Ahx-HSAB was applied to self·assembled monolayer (SAM) on $TiO_2$-coated surface, since one end of Ahx-HSAB was carboxyl acid which was known to be able to interact with $TiO_2$ surface. That SAM layer was incubated in 1% polycaprolacton (PCL) solution and photoreacted by ultraviolet light (254 nm) to produce the chemical bond between SAM and polymer layer, followed by PCL polymer coating ({\sim}5\;{\mu}m$) by the method of spray coating. The surface change was investigated by measuring of contact angle of the surface. The contact angle values of stainless steel (SS) surface, $TiO_2$-coated surface, SAM layer by Ahx-HSAB, photoreacted surface with PCL and PCL layer by spray coating were 70.48${\pm}$1.89, 38.57${\pm}$3.31, 60.14${\pm}$2.21, 54.91${\pm}$2.70 and 56.47${\pm}$2.12, respectively. The stability of polymer layers was tested by incubation of PCL-coated plates in 0.1M PBS buffer (pH 7.4, 0.05%, Tween 80) with vigorous shaking (200 rpm). While the poiymer layer prepared by these processes showed the intact surface morphology over 3 days, the polymer layers prepared by spray coating of PCL onto SS plate (control 1) and $TiO_2$-coated SS plate (control 2) were Peeled off in 3 days. Thus, the polymer coating method using SAM and photoreaction seems to be a effective method to obtain the stable polymer layer onto SS surface.

Keywords

References

  1. E. J. Topol, Coronary artery stents : gauging, gorging, and gouging, N Engl. J Med., 339, 1702-1704 (1998) https://doi.org/10.1056/NEJM199812033392311
  2. P. J. Casterella, Restenosis: an overview, Front. Radiat. Ther. Oneol.,35, 147-171 (2001)
  3. R. Fattori and T. Piva, Drug-eluting stents in vascular intervention, Lancet, 361, 247-249 (2003) https://doi.org/10.1016/S0140-6736(03)12275-1
  4. H. S. Kim, R. C. Chan, M. Kollum, A. Au, F. O. Tio, H. A. Yazdi, A. E. Ajani, and R. Waksman, Effects of 32P radioactive stents on in-stent restenosis in a double stent injury model of the porcine coronary arteries, Int. J Radiat. Oneol. Biol. Phys., 51, 1058-1063 (2001) https://doi.org/10.1016/S0360-3016(01)02601-3
  5. A. J. Wardeh, A. H. Knaak, l. P. Kay, M. Sabate, V L. Coen, D. P. Foley, l. N. Hamburger, P. C. Levendag, W.J. van der Giessen, and P. W. Serruys, Clinical and angiographical follow-up after implantation of a 6-12 microCi radioactive stent in patients with coronary artery disease, Eur. Heart J, 22, 669-675 (2001) https://doi.org/10.1053/euhj.1999.2581
  6. E. Grube, S. Silber, K. E. Hauptmann, L. Buellesfeld, R. Mueller, V Lim, U. Gerckens, and M. E. Russell, Two-yearplus follow-up of a paclitaxel-eluting stent in de novo coronary narrowings (TAXUS I), Am. J Cardiol., 96, 79-82 (2005)
  7. V. Y. Lim, L. Buellesfeld, U. Gerckens, R. Mueller, T. Schmidt, and E. Grube, Use of Taxus polymer-coated paclitaxel-eluting stents for treatment of in-stent restenosis in real world patients: results of clinical and angiographic follow-up at six months in a single-center registry, Catheter Cardiovasc. Interv., 68, 343-348 (2006) https://doi.org/10.1002/ccd.20785
  8. E. Schampaert, J. W Moses, J. Schafer, M. Schluter, A. H. Gershlick, E. A. Cohen, D. A. Palisaitis, G Breithardt, D. J. Donohoe, H. Wang, J. J. Popma, R. E. Kuntz, and M. B. Leon, Sirolimus-eluting stents at two years: a pooled analysis of SIRIUS, E-SIRIUS, and C-SIRIUS with emphasis on late revascularizations and stent thromboses, Am. J Cardiol., 98, 36-41 (2006) https://doi.org/10.1016/j.amjcard.2006.01.049
  9. P. W Serruys, M. Degertekin, K. Tanabe, A. Abizaid, J. E. Sousa, A. Colombo, G Guagliumi, W Wijns, W. K. Lindeboom, J. Ligthart, P. J. de Feyter, and M. C. Morice, Intravascular ultrasound fmdings in the multicenter, randomized, double-blind RAVEL (RAndomized study with the sirolimus-eluting Velocity balloon-expandable stent in the treatment of patients with de novo native coronary artery' Lesions) trial, Circulation, 106, 798-803 (2002) https://doi.org/10.1161/01.CIR.0000025585.63486.59
  10. G. Mani, M. D. Feldman, D. Patel, and C. M. Agrawal, Coronary stents: A materials perspective, Biomaterials, 28, 1689-1710 (2007) https://doi.org/10.1016/j.biomaterials.2006.11.042
  11. P. Haudrechy, J. Foussereau, B. Mantout, and B. Baroux, Nickel release from 304 and 316 stainless steels in synthetic sweat. Comparison with nickel and nickel-plated metals. Consequences on allergic contact dermatitis, Corros. Sci., 35, 329-336 (1993) https://doi.org/10.1016/0010-938X(93)90164-C
  12. R. Koster, D. Vieluf, M. Kiehn, M. Sommerauer, J. Kahler, S. Baldus, T. Meinertz, and C. W Hamm, Nickel and molybdenum contact allergies in patients with coronary instent restenosis, Lancet, 356, 1895-1897 (2000) https://doi.org/10.1016/S0140-6736(00)03262-1
  13. J. Breme, E. Steinhauser, and G. Paulus, Commercially pure titanium Steinhauser plate-screw system for maxillofacial surgery, Biomaterials, 9, 310-313 (1988) https://doi.org/10.1016/0142-9612(88)90024-5
  14. M. Browne and P. J. Gregson, Effect of mechanical surface pretreatment on metal ion release, Biomaterials, 21, 385-392 (2000) https://doi.org/10.1016/S0142-9612(99)00200-8
  15. S. J. Lee, S. W Han, M. Yoon, and K. Kim, Adsorption characteristics of 4-dimethylaminobenzoic acid on silver and titania: diffuse reflectance infrared Fourier transform spectroscopy study, Vibrational Spectroscopy, 24, 265-275 (2000) https://doi.org/10.1016/S0924-2031(00)00094-1
  16. N. Kon and R. J. Suhadolnik, Identification of the ATP binding domain of recombinant human 40-kDa 2',5'-oligoadenylate synthetase by photoaffinity labeling with 8-azido-[alpha-32P]ATP, J. Biol. Chem., 271, 19983-19990 (1996) https://doi.org/10.1074/jbc.271.33.19983