Intravascular Lithotripsy for Treatment of Severely Calcified Coronary Artery Disease

Journal of the American College of Cardiology - Tập 76 - Trang 2635-2646 - 2020
Jonathan M. Hill1, Dean J. Kereiakes2, Richard A. Shlofmitz3, Andrew J. Klein4, Robert F. Riley2, Matthew J. Price5, Howard C. Herrmann6, William Bachinsky7, Ron Waksman8, Gregg W. Stone9
1Department of Cardiology, Royal Brompton Hospital, London, United Kingdom
2The Christ Hospital and Lindner Research Center, Cincinnati, Ohio
3The Heart Center, St. Francis Hospital, Roslyn, New York
4Piedmont Heart Interventional Cardiology, Atlanta, Georgia
5Division of Cardiovascular Diseases, Scripps Clinic, La Jolla, California
6Cardiac Catheterizaton Laboratories, University of Pennsylvania Medical Center, Philadelphia, Pennsylvania
7Heart & Vascular Institute, UPMC Pinnacle Health, Harrisburg, Pennsylvania
8Division of Cardiology, MedStar Cardiovascular Research Network, MedStar Washington Hospital Center, Washington, DC
9The Zena and Michael A. Wiener Cardiovascular Institute, Icahn School of Medicine at Mount Sinai, New York, New York

Tài liệu tham khảo

Allison, 2004, Patterns and risk factors for systemic calcified atherosclerosis, Arterioscler Thromb Vasc Biol, 24, 331, 10.1161/01.ATV.0000110786.02097.0c Chen, 2012, Vascular calcification: pathophysiology and risk factors, Curr Hypertens Rep, 14, 228, 10.1007/s11906-012-0265-8 Madhavan, 2014, Coronary artery calcification: pathogenesis and prognostic implications, J Am Coll Cardiol, 63, 1703, 10.1016/j.jacc.2014.01.017 Chambers, 2014, Pivotal trial to evaluate the safety and efficacy of the Orbital Atherectomy System In Treating De Novo, Severely Calcified Coronary Lesions (ORBIT II), J Am Coll Cardiol Intv, 7, 510, 10.1016/j.jcin.2014.01.158 Genereux, 2015, Orbital atherectomy for treating de novo severely calcified coronary narrowing (1-year results from the pivotal ORBIT II Trial), Am J Cardiol, 115, 1685, 10.1016/j.amjcard.2015.03.009 Yamamoto, 2017, Mechanisms of orbital versus rotational atherectomy plaque modification in severely calcified lesions assessed by optical coherence tomography, J Am Coll Cardiol Intv, 10, 2584, 10.1016/j.jcin.2017.09.031 Kini, 2015, Optical coherence tomography assessment of the mechanistic effects of rotational and orbital atherectomy in severely calcified coronary lesions, Catheter Cardiovasc Interv, 86, 1024, 10.1002/ccd.26000 Mori, 2009, Significant association of coronary artery calcification in stent delivery route with restenosis after sirolimus-eluting stent implantation, Circ J, 73, 1856, 10.1253/circj.CJ-09-0080 Wiemer, 2010, Scanning electron microscopic analysis of different drug eluting stents after failed implantation: from nearly undamaged to major damaged polymers, Catheter Cardiovasc Interv, 75, 905, 10.1002/ccd.22347 Tzafriri, 2017, Calcified plaque modification alters local drug delivery in the treatment of peripheral atherosclerosis, J Control Release, 264, 203, 10.1016/j.jconrel.2017.08.037 Kobayashi, 2014, Impact of target lesion coronary calcification on stent expansion, Circ J, 78, 2209, 10.1253/circj.CJ-14-0108 Guedeney, 2020, Coronary calcification and long-term outcomes according to drug-eluting stent generation, J Am Coll Cardiol Intv, 13, 1417, 10.1016/j.jcin.2020.03.053 di Mario, 2018, Clinical benefit of IVUS guidance for coronary stenting: the ULTIMATE step toward definitive evidence?, J Am Coll Cardiol, 72, 3138, 10.1016/j.jacc.2018.10.029 Zhang, 2018, Intravascular ultrasound versus angiography-guided drug-eluting stent implantation: the ULTIMATE Trial, J Am Coll Cardiol, 72, 3126, 10.1016/j.jacc.2018.09.013 Choi, 2019, Impact of intravascular ultrasound-guided percutaneous coronary intervention on long-term clinical outcomes in patients undergoing complex procedures, J Am Coll Cardiol Intv, 12, 607, 10.1016/j.jcin.2019.01.227 Hong, 2020, Effect of intravascular ultrasound-guided drug-eluting stent implantation: 5-year follow-up of the IVUS-XPL randomized trial, J Am Coll Cardiol Intv, 13, 62, 10.1016/j.jcin.2019.09.033 de Waha, 2016, Rotational atherectomy before paclitaxel-eluting stent implantation in complex calcified coronary lesions: two-year clinical outcome of the randomized ROTAXUS trial, Catheter Cardiovasc Interv, 87, 691, 10.1002/ccd.26290 Abdel-Wahab, 2013, High-speed rotational atherectomy before paclitaxel-eluting stent implantation in complex calcified coronary lesions: the randomized ROTAXUS (Rotational Atherectomy Prior to Taxus Stent Treatment for Complex Native Coronary Artery Disease) trial, J Am Coll Cardiol Intv, 6, 10, 10.1016/j.jcin.2012.07.017 Dippel, 2001, Coronary perforation during percutaneous coronary intervention in the era of abciximab platelet glycoprotein IIb/IIIa blockade: an algorithm for percutaneous management, Catheter Cardiovasc Interv, 52, 279, 10.1002/ccd.1065 Dini, 2019, Intravascular lithotripsy for calcific coronary and peripheral artery stenoses, EuroIntervention, 15, 714, 10.4244/EIJ-D-18-01056 Yeoh, 2019, Intracoronary lithotripsy for the treatment of calcified plaque, Interv Cardiol Clin, 8, 411 Ali, 2017, Optical coherence tomography characterization of coronary lithoplasty for treatment of calcified lesions: first description, J Am Coll Cardiol Img, 10, 897, 10.1016/j.jcmg.2017.05.012 Brinton, 2019, Feasibility of shockwave coronary intravascular lithotripsy for the treatment of calcified coronary stenoses: first description, Circulation, 139, 834, 10.1161/CIRCULATIONAHA.118.036531 Ali, 2019, Safety and effectiveness of coronary intravascular lithotripsy for treatment of severely calcified coronary stenoses: the disrupt CAD II study, Circ Cardiovasc Interv, 12, 10.1161/CIRCINTERVENTIONS.119.008434 Kereiakes, 2020, Evaluation of safety and efficacy of coronary intravascular lithotripsy for treatment of severely calcified coronary stenoses: design and rationale for the Disrupt CAD III trial, Am Heart J, 225, 10, 10.1016/j.ahj.2020.04.005 Karimi Galougahi, 2020, Calcific plaque modification by acoustic shockwaves: intravascular lithotripsy in coronary interventions, Circ Cardiovasc Interv Valgimigli, 2018, Eur Heart J, 39, 213, 10.1093/eurheartj/ehx419 Capodanno, 2019, Management of antithrombotic therapy in atrial fibrillation patients undergoing PCI: JACC state-of-the-art review, J Am Coll Cardiol, 74, 83, 10.1016/j.jacc.2019.05.016 Wilson, 2020, Incidence of “shocktopics” and asynchronous cardiac pacing in patients undergoing coronary intravascular lithotripsy, EuroIntervention, 15, 1429, 10.4244/EIJ-D-19-00484 Thygesen, 2018, Fourth universal definition of myocardial infarction, J Am Coll Cardiol, 72, 2231, 10.1016/j.jacc.2018.08.1038 Moussa, 2013, Consideration of a new definition of clinically relevant myocardial infarction after coronary revascularization: an expert consensus document from the Society for Cardiovascular Angiography and Interventions (SCAI), J Am Coll Cardiol, 62, 1563, 10.1016/j.jacc.2013.08.720 Fujino, 2018, A new optical coherence tomography-based calcium scoring system to predict stent underexpansion, EuroIntervention, 13, e2182, 10.4244/EIJ-D-17-00962 Abdel-Wahab, 2018, High-speed rotational atherectomy versus modified balloons prior to drug-eluting stent implantation in severely calcified coronary lesions, Circ Cardiovasc Interv, 11, 10.1161/CIRCINTERVENTIONS.118.007415 Wang, 2018, Imaging cardiovascular calcification, J Am Heart Assoc, 7 Jurado-Roman, 2019, Moreno R. RotaTripsy: combination of rotational atherectomy and intravascular lithotripsy for the treatment of severely calcified lesions, J Am Coll Cardiol Intv, 12, e127