Evaluation of coronary stents: A review of types, materials, processing techniques, design, and problems

[1]  Tianfeng Zhou,et al.  A Review on Manufacturing and Post-Processing Technology of Vascular Stents , 2022, Micromachines.

[2]  G. Dubini,et al.  Comprehensive computational analysis of the crimping procedure of PLLA BVS: effects of material viscous-plastic and temperature dependent behavior. , 2021, Journal of the mechanical behavior of biomedical materials.

[3]  Yongsheng Liu,et al.  Comparison of Drug-Coated Balloons to Bare Metal Stents in the Treatment of Symptomatic Vertebral Artery-Origin Stenosis: A Prospective Randomized Trial. , 2021, World neurosurgery.

[4]  Jiping Lu,et al.  Structural Design of Vascular Stents: A Review , 2021, Micromachines.

[5]  Takeshi Kimura,et al.  Comparative pathological findings between coronary bare-metal stent implantation and balloon angioplasty over 16 years. , 2021, Journal of cardiology cases.

[6]  Seung‐Jung Park,et al.  Very Long-term Safety and Effectiveness of Drug-Eluting or Bare-Metal Stents for Left Main Coronary Disease , 2021, CJC open.

[7]  Emmanuel N. Moustakakis,et al.  A CASE OF “VERY” VERY LATE STENT THROMBOSIS IN A BARE METAL STENT(BMS) , 2021 .

[8]  M. Azadi,et al.  High-cycle Bending Fatigue Properties of Additive-Manufactured ABS and PLA Polymers Fabricated by Fused Deposition Modeling 3D-Printing , 2021 .

[9]  J. Małachowski,et al.  BVS stent optimisation based on a parametric model with a multistage validation process , 2021 .

[10]  H. Leo,et al.  Bioresorbable metals in cardiovascular stents: Material insights and progress , 2020 .

[11]  Wei Sun,et al.  Design, Characterization, and 3D Printing of Cardiovascular Stents with Zero Poisson’s Ratio in Longitudinal Deformation , 2020 .

[12]  Zhen Luo,et al.  Design of Self-Expanding Auxetic Stents Using Topology Optimization , 2020, Frontiers in Bioengineering and Biotechnology.

[13]  N. Safaei,et al.  Direct and Indirect Costs Associated with Coronary Artery (Heart) Disease in Tabriz, Iran , 2020, Risk management and healthcare policy.

[14]  F. Lam,et al.  Biodegradable MRI Visible Drug Eluting Stent Reinforced by Metal Organic Frameworks , 2020, Advanced healthcare materials.

[15]  D. Ficai,et al.  Recent Advances in Manufacturing Innovative Stents , 2020, Pharmaceutics.

[16]  F. Fagnani,et al.  Economic burden of coronary artery disease or peripheral artery disease in patients at high risk of ischemic events in the French setting: a claims database analysis , 2020, Journal of medical economics.

[17]  Jim Euchner Design , 2014, Catalysis from A to Z.

[18]  S. Barak,et al.  Bioactive Lipids: Chemistry & Health Benefits , 2020 .

[19]  S. Pradhan,et al.  Prediction of strength and radial recoil of various stents using FE analysis , 2020 .

[20]  Umesh M Pai,et al.  In-stent restenosis of drug-eluting stents: clinical presentation and outcomes in a real-world scenario , 2019, The Egyptian Heart Journal.

[21]  D. Lascano,et al.  Manufacturing and Characterization of Functionalized Aliphatic Polyester from Poly(lactic acid) with Halloysite Nanotubes , 2019, Polymers.

[22]  R. Virmani,et al.  Drug-eluting coronary stents: insights from preclinical and pathology studies , 2019, Nature Reviews Cardiology.

[23]  Hyoun‐Ee Kim,et al.  In-vitro blood and vascular compatibility of sirolimus-eluting organic/inorganic hybrid stent coatings. , 2019, Colloids and surfaces. B, Biointerfaces.

[24]  Shabana Urooj,et al.  A Review based on Biodegradable and Bioabsorbable Stents for Coronary Artery Disease , 2019, Procedia Computer Science.

[25]  John Canfield,et al.  40 Years of Percutaneous Coronary Intervention: History and Future Directions , 2018, Journal of personalized medicine.

[26]  C. Park,et al.  Mussel-inspired elastic interpenetrated network hydrogel as an alternative for anti-thrombotic stent coating membrane , 2018, Chemical Engineering Journal.

[27]  Guixue Wang,et al.  Drug Eluting Stents: Arsenic Trioxide-Coated Stent Is an Endothelium-Friendly Drug Eluting Stent (Adv. Healthcare Mater. 15/2018) , 2018, Advanced Healthcare Materials.

[28]  Wenxin Wang,et al.  Bio-resorbable polymer stents: a review of material progress and prospects , 2018 .

[29]  Guixue Wang,et al.  Arsenic Trioxide–Coated Stent Is an Endothelium‐Friendly Drug Eluting Stent , 2018, Advanced healthcare materials.

[30]  D. Pasini,et al.  Assessment of structural and hemodynamic performance of vascular stents modelled as periodic lattices. , 2018, Medical engineering & physics.

[31]  S. Ylä-Herttuala,et al.  Biodegradable coronary scaffolds: their future and clinical and technological challenges. , 2018, Cardiovascular research.

[32]  Rui Yang,et al.  The Surface Modification Methods for Constructing Polymer-Coated Stents , 2018, International Journal of Polymer Science.

[33]  J. Abbott,et al.  Coronary Stents: History, Design, and Construction , 2018, Journal of clinical medicine.

[34]  C. Mario,et al.  Breve historia de los stents coronarios , 2018 .

[35]  P. Meraj,et al.  Comparison of drug eluting stents (DESs) and bare metal stents (BMSs) with STEMI: who received BMS in the era of 2nd generation DES? , 2018, Heart & lung : the journal of critical care.

[36]  H. Ince,et al.  Direct comparison of coronary bare metal vs. drug-eluting stents: same platform, different mechanics? , 2018, European Journal of Medical Research.

[37]  Sundeep Mishra Structural and Design Evolution of Bio-resorbable Scaffolds: The Journey so Far. , 2017, Current pharmaceutical design.

[38]  Atul R. Saraf,et al.  Fundamentals of bare-metal stents , 2018 .

[39]  Timothy Watson,et al.  Long and short of optimal stent design , 2017, Open Heart.

[40]  I. Baumgartner,et al.  Self-Expanding Versus Balloon-Expandable Stents for Iliac Artery Occlusive Disease: The Randomized ICE Trial. , 2017, JACC. Cardiovascular interventions.

[41]  Soo Teik Lim,et al.  Mechanical behavior of polymer-based vs. metallic-based bioresorbable stents. , 2017, Journal of thoracic disease.

[42]  F. Burzotta,et al.  Coronary stents and vascular response to implantation: literature review , 2017, Pragmatic and observational research.

[43]  Qiang Chen,et al.  Study on the impact of straight stents on arteries with different curvatures , 2016 .

[44]  Wei-Hsin Liao,et al.  Self-expanding/shrinking structures by 4D printing , 2016 .

[45]  Feng Xu,et al.  4D Bioprinting for Biomedical Applications. , 2016, Trends in biotechnology.

[46]  Ming-Jer Hsieh,et al.  The Development of Coronary Artery Stents: From Bare-Metal to Bio-Resorbable Types , 2016 .

[47]  Patrick K. Bowen,et al.  Biodegradable Metals for Cardiovascular Stents: from Clinical Concerns to Recent Zn‐Alloys , 2016, Advanced healthcare materials.

[48]  B. Tesfamariam Bioresorbable vascular scaffolds: Biodegradation, drug delivery and vascular remodeling. , 2016, Pharmacological research.

[49]  F. Auricchio,et al.  Fatigue of Metallic Stents: From Clinical Evidence to Computational Analysis , 2016, Annals of Biomedical Engineering.

[50]  H. Zafar,et al.  Coronary Stent Materials and Coatings: A Technology and Performance Update , 2016, Annals of Biomedical Engineering.

[51]  Caoimhe A. Sweeney,et al.  A Review of Material Degradation Modelling for the Analysis and Design of Bioabsorbable Stents , 2015, Annals of Biomedical Engineering.

[52]  Neil W. Bressloff,et al.  Design Optimisation of Coronary Artery Stent Systems , 2015, Annals of Biomedical Engineering.

[53]  M. Kamalesh,et al.  Clinical utility of self-expanding stents in coronary artery disease , 2015 .

[54]  Yong Liu,et al.  3D printing of smart materials: A review on recent progresses in 4D printing , 2015 .

[55]  Alexandre Barna,et al.  Fully bioresorbable drug-eluting coronary scaffolds: A review. , 2015, Archives of cardiovascular diseases.

[56]  Aike Qiao,et al.  Numerical simulation of vertebral artery stenosis treated with different stents. , 2014, Journal of biomechanical engineering.

[57]  R. V. van Geuns,et al.  The Role of Self-expanding Stents in Patients with Atypical Coronary Anatomy. , 2013, Interventional cardiology.

[58]  R. Noad,et al.  Clinical Impact of Stent Design. , 2014, Interventional cardiology.

[59]  P. Serruys,et al.  Coronary stents: historical development, current status and future directions. , 2013, British medical bulletin.

[60]  Salim Belouettar,et al.  Numerical investigations of the structural behavior of a balloon expandable stent design using finite element method , 2013 .

[61]  Salim Belouettar,et al.  Deployment of a self-expanding stent inside an artery: A finite element analysis , 2012 .

[62]  P. E. McHugh,et al.  Comparing coronary stent material performance on a common geometric platform through simulated bench testing. , 2012, Journal of the mechanical behavior of biomedical materials.

[63]  Wahid Khan,et al.  Drug eluting stents: developments and current status. , 2012, Journal of controlled release : official journal of the Controlled Release Society.

[64]  M. Driver Coatings for cardiovascular devices: coronary stents , 2012 .

[65]  M. Petrzhik,et al.  Bulk and porous metastable beta Ti–Nb–Zr(Ta) alloys for biomedical applications , 2011 .

[66]  A. Roguin Stent: the man and word behind the coronary metal prosthesis. , 2011, Circulation. Cardiovascular interventions.

[67]  David Martin,et al.  Computational structural modelling of coronary stent deployment: a review , 2011, Computer methods in biomechanics and biomedical engineering.

[68]  David M Martin,et al.  Drug-eluting stents for coronary artery disease: a review. , 2011, Medical engineering & physics.

[69]  E. Edelman,et al.  Stent Thrombogenicity Early in High-Risk Interventional Settings Is Driven by Stent Design and Deployment and Protected by Polymer-Drug Coatings , 2011, Circulation.

[70]  M. H. Hojjati,et al.  Finite Element Analysis of Mechanical Behaviors of Coronary Stent , 2011 .

[71]  Patrick W Serruys,et al.  Coronary stents: looking forward. , 2010, Journal of the American College of Cardiology.

[72]  D. Mantovani,et al.  Developments in metallic biodegradable stents. , 2010, Acta biomaterialia.

[73]  G. Phillips,et al.  7 – Cardiovascular stents , 2010 .

[74]  B. Gersh,et al.  Chronic coronary artery disease: diagnosis and management. , 2009, Mayo Clinic proceedings.

[75]  Huajiang Ouyang,et al.  Shape optimization of coronary artery stent based on a parametric model , 2009 .

[76]  Barry O'Brien,et al.  The evolution of cardiovascular stent materials and surfaces in response to clinical drivers: a review. , 2009, Acta biomaterialia.

[77]  Beverley Adams-Huet,et al.  Open-cell versus closed-cell stent design differences in blood flow velocities after carotid stenting. , 2009, Journal of Vascular Surgery.

[78]  H H Woo,et al.  Self-expanding stents for recanalization of acute cerebrovascular occlusions. , 2007, AJNR. American journal of neuroradiology.

[79]  Ralph D'Agostino,et al.  Stent thrombosis in randomized clinical trials of drug-eluting stents. , 2007, The New England journal of medicine.

[80]  Johan Lindbäck,et al.  Long-term outcomes with drug-eluting stents versus bare-metal stents in Sweden. , 2007, The New England journal of medicine.

[81]  S. Pocock,et al.  Safety and efficacy of sirolimus- and paclitaxel-eluting coronary stents. , 2007, The New England journal of medicine.

[82]  P. Serruys,et al.  A pooled analysis of data comparing sirolimus-eluting stents with bare-metal stents. , 2007, The New England journal of medicine.

[83]  Marc D Feldman,et al.  Coronary stents: a materials perspective. , 2007, Biomaterials.

[84]  R. Virmani,et al.  Engineering aspects of stents design and their translation into clinical practice. , 2007, Annali dell'Istituto superiore di sanita.

[85]  Patrick Hunziker,et al.  Late clinical events after clopidogrel discontinuation may limit the benefit of drug-eluting stents: an observational study of drug-eluting versus bare-metal stents. , 2006, Journal of the American College of Cardiology.

[86]  Deepak L. Bhatt,et al.  Bare metal stent restenosis is not a benign clinical entity. , 2006, American heart journal.

[87]  Takashi Saito,et al.  Effects of Stent Structure on Stent Flexibility Measurements , 2005, Annals of Biomedical Engineering.

[88]  B. Rutherford,et al.  Evaluation of the Medtronic (Driver) cobalt-chromium alloy coronary stent system. , 2005, The American journal of cardiology.

[89]  P. Erne,et al.  The Road to Bioabsorbable Stents: Reaching Clinical Reality? , 2006, CardioVascular and Interventional Radiology.

[90]  G. Stone,et al.  A polymer-based, paclitaxel-eluting stent in patients with coronary artery disease. , 2004, The New England journal of medicine.

[91]  Jeffrey W Moses,et al.  Sirolimus-eluting stents versus standard stents in patients with stenosis in a native coronary artery. , 2003, The New England journal of medicine.

[92]  M. Leon,et al.  Usefulness of a cobalt chromium coronary stent alloy. , 2003, The American journal of cardiology.

[93]  Antonio Colombo,et al.  Selection of coronary stents. , 2002, Journal of the American College of Cardiology.

[94]  P. Serruys,et al.  A randomized comparison of a sirolimus-eluting stent with a standard stent for coronary revascularization. , 2002, The New England journal of medicine.

[95]  D. Stoeckel,et al.  A survey of stent designs , 2002, Minimally invasive therapy & allied technologies : MITAT : official journal of the Society for Minimally Invasive Therapy.

[96]  T. Duerig,et al.  A comparison of balloon- and self-expanding stents , 2002, Minimally invasive therapy & allied technologies : MITAT : official journal of the Society for Minimally Invasive Therapy.

[97]  F. Etave,et al.  Mechanical properties of coronary stents determined by using finite element analysis. , 2001, Journal of biomechanics.

[98]  Jeffrey J. Popma,et al.  Lack of Neointimal Proliferation After Implantation of Sirolimus-Coated Stents in Human Coronary Arteries: A Quantitative Coronary Angiography and Three-Dimensional Intravascular Ultrasound Study , 2001, Circulation.

[99]  Z. Fan,et al.  Expandable thermal-shaped memory metal esophageal stent: experiences with a new nitinol stent in 129 patients. , 1997, Gastrointestinal endoscopy.

[100]  M. Leon,et al.  Patterns and mechanisms of in-stent restenosis. A serial intravascular ultrasound study. , 1996, Circulation.

[101]  M. Hadamitzky,et al.  A randomized comparison of antiplatelet and anticoagulant therapy after the placement of coronary-artery stents. , 1996, The New England journal of medicine.

[102]  P Hall,et al.  Intracoronary stenting without anticoagulation accomplished with intravascular ultrasound guidance. , 1995, Circulation.

[103]  W Rutsch,et al.  A comparison of balloon-expandable-stent implantation with balloon angioplasty in patients with coronary artery disease. Benestent Study Group. , 1994, The New England journal of medicine.

[104]  P. Teirstein,et al.  A randomized comparison of coronary-stent placement and balloon angioplasty in the treatment of coronary artery disease. Stent Restenosis Study Investigators. , 1994, The New England journal of medicine.

[105]  Y. Shimizu,et al.  A new thermal shape memory Ti-Ni alloy stent covered with silicone. , 1992, ASAIO journal.

[106]  F Joffre,et al.  Intravascular stents to prevent occlusion and restenosis after transluminal angioplasty. , 1987, The New England journal of medicine.

[107]  L. Hillis,et al.  Percutaneous transluminal coronary angioplasty. , 1994, The American journal of the medical sciences.

[108]  William Wijns,et al.  A Cause for Concern , 2007 .

[109]  J. Rösch,et al.  Transluminal expandable nitinol coil stent grafting: preliminary report. , 1983, Radiology.

[110]  D. Cumberland Percutaneous transluminal angioplasty: a review. , 1983, Clinical radiology.

[111]  P. Block,et al.  Percutaneous transluminal coronary angioplasty. , 1980, Modern concepts of cardiovascular disease.

[112]  W. Siegenthaler,et al.  Nonoperative dilatation of coronary-artery stenosis: percutaneous transluminal coronary angioplasty. , 1979, The New England journal of medicine.

[113]  L. Bentivoglio Percutaneous transluminal coronary angioplasty. , 1979, Annals of internal medicine.

[114]  C. Dotter,et al.  Transluminally-placed coilspring endarterial tube grafts. Long-term patency in canine popliteal artery. , 1969, Investigative radiology.

[115]  M. P. Judkins,et al.  PERCUTANEOUS TRANSLUMINAL TREATMENT OF ARTERIOSCLEROTIC OBSTRUCTION. , 1965, Radiology.