2,562
Views
17
CrossRef citations to date
0
Altmetric
Articles

Fabrication and characterization of shape memory polymers based bioabsorbable biomedical drug eluting stent

, , , &
Pages 1740-1750 | Received 11 Jul 2016, Accepted 11 Jan 2017, Published online: 31 Jan 2017

References

  • Lee Y-K, Park JH, Moon HT, Lee DY, Yun JH, Byun Y. 2007. The short-term effects on restenosis and thrombosis of echinomycin-eluting stents topcoated with a hydrophobic heparin-containing polymer. Biomaterials. 28:1523–1530.
  • Grabow N, Bünger CM, Schultze C, Schmohl K, Martin DP, Williams SF, et al. 2007. A biodegradable slotted tube stent based on poly (L-lactide) and poly (4-hydroxybutyrate) for rapid balloon-expansion. Ann Biomed Eng. 35:2031–2038.
  • Uurto I, Juuti H, Parkkinen J, Kellomäki M, Keski-Nisula L, Nevalainen T, et al. 2003. Requirements for quantitative analysis of intimal reaction in arteries treated with intraluminal stents. J Endovasc Ther. 10:1110–1116.
  • Uurto I, Mikkonen J, Parkkinen J, Keski-Nisula L, Nevalainen T, Kellomäki M, et al. 2005. Drug-eluting biodegradable poly-D/L-lactic acid vascular stents: an experimental pilot study. J Endovasc Ther. 12:371–379.
  • Tamai H, Igaki K, Tsuji T, Kyo E, Kosuga K, Kawashima A, et al. 1999. A biodegradable poly‐L‐lactic acid coronary stent in the porcine coronary artery. J Interv Cardiol. 12:443–450.
  • Su S-H, Chao RY, Landau CL, Nelson KD, Timmons RB, Meidell RS, et al. 2003. Expandable bioresorbable endovascular stent. I. Fabrication and properties. Ann Biomed Eng. 31:667–677.
  • Shin H-S, Park K, Kim JH, Kim J-J, Han DK, Moon M-W, et al. 2009. Biocompatible PEG grafting on DLC-coated nitinol alloy for vascular stents. J Bioact Compat Polym. 24:316–328.
  • Uurto I, Juuti H, Parkkinen J, Kellomäki M, Keski-Nisula L, Nevalainen T, et al. 2004. Biodegradable self-expanding poly-L/D-lactic acid vascular stent: a pilot study in canine and porcine iliac arteries. J Endovasc Ther. 11:712–718.
  • Raval A, Choubey A, Engineer C, Kotadia H, Kothwala D. 2007. Novel biodegradable polymeric matrix coated cardiovascular stent for controlled drug delivery. Trends Biomater Artif Organs. 20:101–110.
  • Mangual JO, Li S, Ploehn HJ, Ebner AD, Ritter JA. 2010. Biodegradable nanocomposite magnetite stent for implant-assisted magnetic drug targeting. J Magn Magn Mater. 322:3094–3100.
  • Shin YM, Lim KS, Jin JY, Jeong SI, Lee YM, Shin H, et al. 2009. In vitro andin vivo characterization of a coronary stent coated with an elastic biodegradable polymer for the sustained release of paclitaxel. Macromol Res. 17:1039–1042.
  • Pendyala LK, Matsumoto D, Shinke T, Iwasaki T, Sugimoto R, Hou D, et al. 2012. Nobori stent shows less vascular inflammation and early recovery of endothelial function compared with Cypher stent. JACC Cardiovasc Interv. 5:436–444.
  • Bian H, Zhou S, Liang X, Li Q, Han W. 2012. In vitro study of poly (ethylene carbonate) as a drug-eluting stent coating. Prog Nat Sci. 22:295–302.
  • Bartkowiak-Jowsa M, Będziński R, Szaraniec B, Chłopek J. 2011. Mechanical, biological, and microstructural properties of biodegradable models of polymeric stents made of PLLA and alginate fibers. Acta Bioeng Biomech. 13:21–28.
  • Meng B, Wang J, Zhu N, Meng Q-Y, Cui F-Z, Xu Y-X. 2006. Study of biodegradable and self-expandable PLLA helical biliary stent in vivo and in vitro. J Mater Sci Mater Med. 17:611–617.
  • Hehrlein C, Gollan C, Dönges K, Metz J, Riessen R, Fehsenfeld P, et al. 1995. Low-dose radioactive endovascular stents prevent smooth muscle cell proliferation and neointimal hyperplasia in rabbits. Circulation. 92:1570–1575.
  • Pan C, Shao Z, Tang J, Wang J, Huang N. 2007. In vitro studies of platelet adhesion, activation, and protein adsorption on curcumin-eluting biodegradable stent materials. J Biomed Mater Res A. 82:740–746.
  • Raval A, Parikh J, Engineer C. 2011. Mechanism and in vitro release kinetic study of sirolimus from a biodegradable polymeric matrix coated cardiovascular stent. Ind Eng Chem Res. 50:9539–9549.
  • Lauto A, Ohebshalom M, Esposito M, Mingin J, Li P, Felsen D, et al. 2001. Self-expandable chitosan stent: design and preparation. Biomaterials. 22:1869–1874.
  • Paul A, Elias CB, Shum-Tim D, Prakash S. 2013. Bioactive baculovirus nanohybrids for stent based rapid vascular re-endothelialization. Sci Rep. [Epub ahead of print]. DOI: 10.1038/srep02366
  • Paul A, Abbasi S, Shum-Tim D, Prakash S. 2010. Nano-and biotechnological approaches in current and future generation of cardiovascular stents. Curr Nanosci. 6:469–478.
  • Pandey AP, Singh SS, Patil GB, Patil PO, Bhavsar CJ, Deshmukh PK. 2015. Sonication-assisted drug encapsulation in layer-by-layer self-assembled gelatin-poly (styrenesulfonate) polyelectrolyte nanocapsules: process optimization. Artif Cells Nanomed Biotechnol. 43:413–424.
  • Paul A, Shao W, Shum-Tim D, Prakash S. 2012. The attenuation of restenosis following arterial gene transfer using carbon nanotube coated stent incorporating TAT/DNA Ang1+ VEGF nanoparticles. Biomaterials. 33:7655–7664.
  • Schmitt L, Grabow N, Lehmann U, Eschenburg C, Sternberg K, Schmitz K-P. 2012. Impact of polymer/drug coatings on the biomechanical performance of self-expanding peripheral drug-eluting stents. Biomed Tech. 57:28–29.
  • Amin F, Ali MN, Minhas MA. 2013. An evolutionary appraisal of the efficacy of coronary artery stents relevant to the treatment of coronary heart diseases. Int J Biomed Adv Res. 4:764–775.
  • Shen T, Liang L, Lu M. 2011. Novel biodegradable shape memory composites based on PLA and PCL crosslinked by polyisocyanate. Adv Biomed Eng. 12:302–305.
  • Small W, I, Singhal P, Wilson TS, Maitland DJ. 2010. Biomedical applications of thermally activated shape memory polymers. J Mater Chem. 20:3356–3366.
  • Jaros A, Smola A, Kasperczyk J, Dobrzyński P. 2010. Biodegradowalne polimery z pamięcią kształtu. Chemik. 64:87–96.
  • Venkatraman SS, Tan LP, Joso JFD, Boey YCF, Wang X. 2006. Biodegradable stents with elastic memory. Biomaterials. 27:1573–1578.
  • Kudarha R, Dhas NL, Pandey A, Belgamwar VS, Ige PP. 2015. Box-Behnken study design for optimization of bicalutamide-loaded nanostructured lipid carrier: stability assessment. Pharm Dev Technol. 20:608–618.
  • Khandwekar AP, Doble M. 2011. Physicochemical characterisation and biological evaluation of polyvinylpyrrolidone-iodine engineered polyurethane (Tecoflex®). J Mater Sci Mater Med. 22:1231–1246.
  • Hines DJ, Kaplan DL. 2013. Poly (lactic-co-glycolic) acid − controlled-release systems: experimental and modeling insights. Crit Rev Ther Drug Carrier Syst. 30:257–276.
  • Makadia HK, Siegel SJ. 2011. Poly lactic-co-glycolic acid (PLGA) as biodegradable controlled drug delivery carrier. Polymers. 3:1377–1397.
  • An YH, Friedman RJ. 1997. Laboratory methods for studies of bacterial adhesion. J Microbiol Methods. 30:141–152.
  • Barros AA, Rita A, Duarte C, Pires RA, Sampaio‐Marques B, Ludovico P, et al. 2015. Bioresorbable ureteral stents from natural origin polymers. J Biomed Mater Res B Appl Biomater. 103:608–617.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.