490
Views
0
CrossRef citations to date
0
Altmetric
Article

Structure design and mechanical performance analysis of three kinds of bioresorbable poly-lactic acid (PLA) stents

, , , &
Pages 25-37 | Received 11 Sep 2021, Accepted 19 Feb 2022, Published online: 26 Mar 2022

References

  • Aggarwal RK, Ireland DC, Azrin MA, Ezekowitz MD, de Bono DP, Gershlick AH. 1996. Antithrombotic potential of polymer-coated stents eluting platelet glycoprotein IIb/IIIa receptor antibody. Circulation. 94(12):3311–3317.
  • ASTM F3067-14. 2014. Guide for radial loading of balloon expandable and self expanding vascular stents.
  • Azaouzi M, Makradi A, Belouettar S. 2013. Numerical investigations of the structural behavior of a balloon expandable stent design using finite element method. Comput Mater Sci. 72:54–61.
  • da Silva D, Kaduri M, Poley M, Adir O, Krinsky N, Shainsky-Roitman J, Schroeder A. 2018. Biocompatibility, biodegradation and excretion of polylactic acid (PLA) in medical implants and theranostic systems. Chem Eng J. 340:9–14.
  • Douglas GR, Phani AS, Gagnon J. 2014. Analyses and design of expansion mechanisms of balloon expandable vascular stents. J Biomech. 47(6):1438–1446.
  • Fischman DL, Leon MB, Baim DS, Schatz RA, Savage MP, Penn I, Detre K, Veltri L, Ricci D, Nobuyoshi M, et al. 1994. A randomized comparison of coronary-stent placement and balloon angioplasty in the treatment of coronary artery disease. N Engl J Med. 331(8):496–501.
  • Grabow N, Schlun M, Sternberg K, Hakansson N, Kramer S, Schmitz K-P. 2005. Mechanical properties of laser cut poly(L-lactide) micro-specimens: implications for stent design, manufacture, and sterilization. J Biomech Eng. 127(1):25–31.
  • Gruntzig A, Kuhlmann U, Vetter W, Lutolf U, Meier B, Siegenthaler W. 1978. Treatment of renovascular hypertension with percutaneous transluminal dilatation of a renal-artery stenosis. Lancet. 1(8068):801–802.
  • Han YF, Lu WF. 2018. Optimizing the deformation behavior of stent with nonuniform Poisson's ratio distribution for curved artery. J Mech Behav Biomed Mater. 88:442–452.
  • Kelly N, McGrath DJ, Sweeney CA, Kurtenbach K, Grogan JA, Jockenhoevel S, O'Brien BJ, Bruzzi M, McHugh PE. 2019. Comparison of computational modelling techniques for braided stent analysis. Comput Methods Biomech Biomed Engin. 22(16):1334–1344.
  • Kennedy AC, Cowan B. 1958. Further observations on the incidence of coronary heart disease in a rural area in South-West Scotland. Scott Med J. 3(7):283–287.
  • Khoshgoftar MJ, Abbaszadeh H. 2021. Experimental and finite element analysis of the effect of geometrical parameters on the mechanical behavior of auxetic cellular structure under static load. J Strain Anal Eng Des. 56(3):131–138.
  • Kumar A, Bhatnagar N. 2021. Finite element simulation and testing of cobalt-chromium stent: a parametric study on radial strength, recoil, foreshortening, and dogboning. Comput Methods Biomech Biomed Engin. 24(3):245–259.
  • Li G, Zhao MH, Xu F, Yang B, Li XY, Meng XX, Teng LS, Sun FY, Li YX. 2020. Synthesis and biological application of polylactic acid. Molecules. 25(21):5023– 5018.
  • Li H, Liu T, Wang M, Zhao D, Qiao A, Wang X, Gu J, Li Z, Zhu B. 2017. Design optimization of stent and its dilatation balloon using kriging surrogate model. BioMed Eng Online. 16(1):1–17.
  • Li HX, Wang XY, Wei YB, Liu T, Gu JF, Li Z, Wang MJ, Zhao DY, Qiao AK, Liu YH. 2017. Multi-objective optimizations of biodegradable polymer stent structure and stent microinjection molding process. Polymers. 9(1):1–15.
  • Li J, Zheng F, Qiu X, Wan P, Tan L, Yang K. 2014. Finite element analyses for optimization design of biodegradable magnesium alloy stent. Mater Sci Eng C Mater Biol Appl. 42:705–714.
  • Liao J, Huang W, Liu G. 2015. Animal models of coronary heart disease. J Biomed Res. 30:3–10.
  • Lim YH, Jeong HY. 2017. Finite element analyses for improved design of peripheral stents. Comput Methods Biomech Biomed Engin. 20(6):653–662.
  • McKavanagh P, Zawadowski G, Ahmed N, Kutryk M. 2018. The evolution of coronary stents. Expert Rev Cardiovasc Ther. 16(3):219–228.
  • Schmidt W, Lanzer P, Behrens P, Topoleski LD, Schmitz KP. 2009. A comparison of the mechanical performance characteristics of seven drug-eluting stent systems. Catheter Cardiovasc Interv. 73(3):350–360.
  • Song K, Bi Y, Zhao H, Wu T, Xu F, Zhao G. 2020. Structural optimization and finite element analysis of poly-l-lactide acid coronary stent with improved radial strength and acute recoil rate. J Biomed Mater Res. 108(7):2754–2764.
  • Sutton NR, Bates ER. 2019. Balancing the benefits, risks, and costs of chronic total occlusion percutaneous coronary intervention. Circul-Cardiovasc Interv. 12(3):1–3.
  • Wang Q, Fang G, Zhao Y, Wang G, Cai T. 2017. Computational and experimental investigation into mechanical performances of Poly-L-Lactide Acid (PLLA) coronary stents. J Mech Behav Biomed Mater. 65:415–427.
  • Wei Y, Wang M, Zhao D, Li H, Jin Y. 2019. Structural design of mechanical property for biodegradable polymeric stent. Adv Mater Sci Eng. 2019:1–14.
  • Wu WW, Song XK, Liang J, Xia R, Qian GA, Fang DN. 2018. Mechanical properties of anti-tetrachiral auxetic stents. Compos Struct. 185:381–392.
  • Xue HP, Luo Z, Brown T, Beier S. 2020. Design of self-expanding auxetic stents using topology optimization. Front Bioeng Biotechnol. 8:736.

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.