REFERENCES
1. Grüntzig AR, Senning Å, Siegenthaler WE. Nonoperative dilatation of coronary-artery stenosis: percutaneous transluminal coronary angioplasty. N Engl J Med 1979;301:61-8.
2. Seung KB, Park DW, Kim YH, et al. Stents versus coronary-artery bypass grafting for left main coronary artery disease. N Engl J Med 2008;358:1781-92.
3. Baber U, Kini AS, Sharma SK. Stenting of complex lesions: an overview. Nat Rev Cardiol 2010;7:485-96.
4. Wilensky RL, Selzer F, Johnston J, et al. Relation of percutaneous coronary intervention of complex lesions to clinical outcomes (from the NHLBI Dynamic Registry). Am J Cardiol 2002;90:216-21.
5. Généreux P, Madhavan MV, Mintz GS, et al. Ischemic outcomes after coronary intervention of calcified vessels in acute coronary syndromes. Pooled analysis from the HORIZONS-AMI (Harmonizing Outcomes with Revascularization and Stents in Acute Myocardial Infarction) and ACUITY (Acute Catheterization and Urgent Intervention Triage Strategy) TRIALS. J Am Coll Cardiol 2014;63:1845-54.
6. Allison MA, Criqui MH, Wright CM. Patterns and risk factors for systemic calcified atherosclerosis. Arterioscler Thromb Vasc Biol 2004;24:331-6.
7. Bourantas CV, Zhang YJ, Garg S, et al. Prognostic implications of coronary calcification in patients with obstructive coronary artery disease treated by percutaneous coronary intervention: a patient-level pooled analysis of 7 contemporary stent trials. Heart 2014;100:1158-64.
8. Barbato E, Shlofmitz E, Milkas A, Shlofmitz R, Azzalini L, Colombo A. State of the art: evolving concepts in the treatment of heavily calcified and undilatable coronary stenoses - from debulking to plaque modification, a 40-year-long journey. EuroIntervention 2017;13:696-705.
9. Madhavan MV, Tarigopula M, Mintz GS, Maehara A, Stone GW, Généreux P. Coronary artery calcification: pathogenesis and prognostic implications. J Am Coll Cardiol 2014;63:1703-14.
10. Guedeney P, Claessen BE, Mehran R, et al. Coronary calcification and long-term outcomes according to drug-eluting stent generation. JACC Cardiovasc Interv 2020;13:1417-28.
11. Barbato E, Gallinoro E, Abdel-Wahab M, et al. Management strategies for heavily calcified coronary stenoses: an EAPCI clinical consensus statement in collaboration with the EURO4C-PCR group. Eur Heart J ;2023:ehad342.
12. Ali ZA, Brinton TJ, Hill JM, et al. Optical coherence tomography characterization of coronary lithoplasty for treatment of calcified lesions: first description. JACC Cardiovasc Imaging 2017;10:897-906.
13. Hill JM, Kereiakes DJ, Shlofmitz RA, et al. Intravascular lithotripsy for treatment of severely calcified coronary artery disease. J Am Coll Cardiol 2020;76:2635-46.
14. Rheude T, Rai H, Richardt G, et al. Super high-pressure balloon versus scoring balloon to prepare severely calcified coronary lesions: the ISAR-CALC randomised trial. EuroIntervention 2021;17:481-8.
15. Abdel-Wahab M, Richardt G, Joachim Büttner H, et al. 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. JACC Cardiovasc Interv 2013;6:10-9.
16. Kereiakes DJ, Virmani R, Hokama JY, et al. Principles of intravascular lithotripsy for calcific plaque modification. JACC Cardiovasc Interv 2021;14:1275-92.
17. Powers CJ, Tinterow MM, Burpee JF. Extracorporeal shock wave lithotripsy: a study of renal stone differences. Kans Med 1989;90:19-22.
18. Karimi Galougahi K, Patel S, Shlofmitz RA, et al. Calcific plaque modification by acoustic shock waves: intravascular lithotripsy in coronary interventions. Circ Cardiovasc Interv 2021;14:e009354.
19. Dini CS, Tomberli B, Mattesini A, et al. Intravascular lithotripsy for calcific coronary and peripheral artery stenoses. EuroIntervention 2019;15:714-21.
21. Forero MNT, Daemen J. The coronary intravascular lithotripsy system. Interv Cardiol 2019;14:174-81.
22. Sapozhnikov OA, Maxwell AD, MacConaghy B, Bailey MR. A mechanistic analysis of stone fracture in lithotripsy. J Acoust Soc Am 2007;121:1190-202.
23. Chitnis PV, Cleveland RO. Quantitative measurements of acoustic emissions from cavitation at the surface of a stone in response to a lithotripter shock wave. J Acoust Soc Am 2006;119:1929-32.
24. Zohdi TI, Szeri AJ. Fatigue of kidney stones with heterogeneous microstructure subjected to shock-wave lithotripsy. J Biomed Mater Res B Appl Biomater 2005;75:351-8.
25. Brinton TJ, Ali ZA, Hill JM, et al. Feasibility of shockwave coronary intravascular lithotripsy for the treatment of calcified coronary stenoses. Circulation 2019;139:834-6.
26. Ali ZA, Nef H, Escaned J, et al. Safety and effectiveness of coronary intravascular lithotripsy for treatment of severely calcified coronary stenoses: the disrupt CAD II study. Circ Cardiovasc Interv 2019;12:e008434.
27. Saito S, Yamazaki S, Takahashi A, et al. Intravascular lithotripsy for vessel preparation in severely calcified coronary arteries prior to stent placement - primary outcomes from the japanese disrupt CAD IV study. Circ J 2021;85:826-33.
28. Aksoy A, Salazar C, Becher MU, et al. Intravascular lithotripsy in calcified coronary lesions: a prospective, observational, multicenter registry. Circ Cardiovasc Interv 2019;12:e008154.
29. Cubero-Gallego H, Calvo-Fernandez A, Tizon-Marcos H, et al. Real-world multicenter coronary lithotripsy registry: long-term clinical follow-up. J Invasive Cardiol 2022;34:E701-8.
30. El Jattari H, Holvoet W, De Roeck F, et al. Intracoronary lithotripsy in calcified coronary lesions: a multicenter observational study. J Invasive Cardiol 2022;34:E24-31.
31. Honton B, Lipiecki J, Monségu J, et al. Mid-term outcome of de novo lesions vs. in stent restenosis treated by intravascular lithotripsy procedures: insights from the French shock initiative. Int J Cardiol 2022;365:106-11.
32. Tian F, Zhou SS, Liu JH, et al. Treatment of severely calcified coronary artery disease by intravascular lithotripsy primary outcomes and 180-day follow-up from the Chinese SOLSTICE trial. J Geriatr Cardiol 2023;20:32-9.
33. Aziz A, Bhatia G, Pitt M, et al. Intravascular lithotripsy in calcified-coronary lesions: a real-world observational, European multicenter study. Catheter Cardiovasc Interv 2021;98:225-35.
34. Rola P, Włodarczak A, Kulczycki JJ, et al. Feasibility of the intravascular lithotripsy in coronary artery disease. Short-term outcomes of the Lower-Silesia Shockwave Registry. Kardiol Pol 2021;79:1133-5.
35. Iwańczyk S, Włodarczak A, Hiczkiewicz J, et al. Feasibility of intravascular lithotripsy for calcific coronary lesions: a multi-institutional experience. Catheter Cardiovasc Interv 2021;98:E540-7.
36. Basavarajaiah S, Ielasi A, Raja W, et al. Long-term outcomes following intravascular lithotripsy (IVL) for calcified coronary lesions: a real-world multicenter European study. Catheter Cardiovasc Interv 2022;101:250-60.
37. Kassimis G, Ziakas A, Didagelos M, et al. Shockwave coronary intravascular lithotripsy system for heavily calcified de novo lesions and the need for a cost-effectiveness analysis. Cardiovasc Revasc Med 2022;37:128-34.
38. Salazar CH, Gonzalo N, Aksoy A, et al. Feasibility, safety, and efficacy of intravascular lithotripsy in severely calcified left main coronary stenosis. JACC Cardiovasc Interv 2020;13:1727-9.
39. Cosgrove CS, Wilson SJ, Bogle R, et al. Intravascular lithotripsy for lesion preparation in patients with calcific distal left main disease. EuroIntervention 2020;16:76-9.
40. Rola P, Włodarczak A, Kulczycki JJ, et al. Efficacy and safety of shockwave intravascular lithotripsy (S-IVL) in calcified unprotected left main percutaneous coronary intervention - short-term outcomes. Postepy Kardiol Interwencyjnej 2021;17:344-8.
41. Cosgrove C, Hanratty CG, Hill JM, et al. Intravascular lithotripsy for treatment of calcific coronary lesions in ST elevation myocardial infarction. Catheter Cardiovasc Interv 2022;99:322-8.
42. Souteyrand G, Amabile N, Mangin L, et al. Mechanisms of stent thrombosis analysed by optical coherence tomography: insights from the national PESTO French registry. Eur Heart J 2016;37:1208-16.
43. Ielasi A, Moscarella E, Testa L, et al. IntravaScular lithotripsy for the management of UndILatable coronary StEnt: the SMILE registry. Cardiovasc Revasc Med 2020;21:1555-9.
44. Wańha W, Tomaniak M, Wańczura P, et al. Intravascular lithotripsy for the treatment of stent underexpansion: the multicenter IVL-DRAGON registry. J Clin Med 2022;11:1779.
45. Hinton J, Mariathas M, Chan E, et al. Novel application of intravascular lithotripsy in stent under-expansion: a single-center experience. Catheter Cardiovasc Interv 2022;101:243-9.
46. Tovar Forero MN, Sardella G, Salvi N, et al. Coronary lithotripsy for the treatment of underexpanded stents: the international & multicentre CRUNCH registry. EuroIntervention 2022;18:574-81.
47. Øksnes A, Cosgrove C, Walsh S, et al. Intravascular lithotripsy for calcium modification in chronic total occlusion percutaneous coronary intervention. J Interv Cardiol 2021;2021:9958035.
48. Rola P, Włodarczak A, Barycki M, et al. Shockwave intravascular lithotripsy as a novel strategy for balloon undilatable heavily calcified chronic total occlusion lesions. Cardiol J 2021.
49. Kostantinis S, Simsek B, Karacsonyi J, et al. Intravascular lithotripsy in chronic total occlusion percutaneous coronary intervention: insights from the PROGRESS-CTO registry. Catheter Cardiovasc Interv 2022;100:512-9.
50. Garbo R, Di Russo C, Sciahbasi A, Fedele S. The last resort during complex retrograde percutaneous coronary chronic total occlusion intervention: extraplaque intracoronary lithotripsy to externally crush a heavy calcified occluded stent. Catheter Cardiovasc Interv 2022;99:497-501.
51. Wilson SJ, Spratt JC, Hill J, et al. Incidence of "shocktopics" and asynchronous cardiac pacing in patients undergoing coronary intravascular lithotripsy. EuroIntervention 2020;15:1429-35.