Long-Term Outcome of Unprotected Left Main Percutaneous Coronary Interventions—An 8-Year Single-Tertiary-Care-Center Experience
Abstract
1. Introduction
2. Materials and Methods
2.1. Study Design and Population
2.2. Procedure
2.3. Study Definitions
2.4. Outcome and Follow-Up
2.5. Statistical Analysis
3. Results
3.1. Patients and Procedures
3.2. Follow-Up
3.3. Outcome of Elective and Acute Patients
3.4. Predictive Power of the Risk Score Systems
3.5. Predictors of Event-Free Survival
4. Discussion
Limitations
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
AUC | area under curve |
BMS | Bare-metal stent |
CABG | coronary artery bypass grafting |
CI | confidence interval |
DES | drug-eluting stent |
FFR | fractional flow reserve |
GFR | glomerular filtration rate |
GPIIb/IIIa | glycoprotein IIb/IIIa inhibitor |
HR | hazard ratio |
IABP | intra-aortic balloon pump |
IVUS | intravascular ultrasound |
LVEF | left ventricular ejection fraction |
MI | myocardial infarction |
OCT | optical coherence tomography |
PCI | percutaneous coronary intervention |
ROC | receiver operating characteristic |
STEMI | ST-elevation myocardial infarction |
TLMI | target lesion myocardial infarction |
TLR | target lesion revascularization |
TVMI | target vessel myocardial infarction |
UDMI | Universal Definition of Myocardial Infarction |
UFH | unfractionated heparin |
ULMCA | unprotected left main coronary artery |
References
- Caracciolo, E.A.; Davis, K.B.; Sopko, G.; Kaiser, G.C.; Corley, S.D.; Schaff, H.; Taylor, H.A.; Chaitman, B.R. Comparison of surgical and medical group survival in patients with left main equivalent coronary artery disease. Long-term CASS experience. Circulation 1995, 91, 2335–2344. [Google Scholar] [CrossRef] [PubMed]
- Gaudino, M.; Audisio, K.; Hueb, W.A.; Stone, G.W.; Farkouh, M.E.; Di Franco, A.; Rahouma, M.; Serruys, P.W.; Bhatt, D.L.; Biondi Zoccai, G.; et al. Coronary artery bypass grafting versus medical therapy in patients with stable coronary artery disease: An individual patient data pooled meta-analysis of randomized trials. J. Thorac. Cardiovasc. Surg. 2024, 167, 1022–1032.e14. [Google Scholar] [CrossRef] [PubMed]
- Morice, M.C.; Serruys, P.W.; Kappetein, A.P.; Feldman, T.E.; Ståhle, E.; Colombo, A.; Mack, M.J.; Holmes, D.R.; Choi, J.W.; Ruzyllo, W.; et al. Five-year outcomes in patients with left main disease treated with either percutaneous coronary intervention or coronary artery bypass grafting in the synergy between percutaneous coronary intervention with taxus and cardiac surgery trial. Circulation 2014, 129, 2388–2394. [Google Scholar] [CrossRef] [PubMed]
- Ahn, J.M.; Roh, J.H.; Kim, Y.H.; Park, D.W.; Yun, S.C.; Lee, P.H.; Chang, M.; Park, H.W.; Lee, S.W.; Lee, C.W.; et al. Randomized Trial of Stents Versus Bypass Surgery for Left Main Coronary Artery Disease: 5-Year Outcomes of the PRECOMBAT Study. J. Am. Coll. Cardiol. 2015, 65, 2198–2206. [Google Scholar] [CrossRef]
- Stone, G.W.; Sabik, J.F.; Serruys, P.W.; Simonton, C.A.; Généreux, P.; Puskas, J.; Kandzari, D.E.; Morice, M.C.; Lembo, N.; Brown, W.M., 3rd; et al. Everolimus-Eluting Stents or Bypass Surgery for Left Main Coronary Artery Disease. N. Engl. J. Med. 2016, 375, 2223–2235. [Google Scholar] [CrossRef]
- Mäkikallio, T.; Holm, N.R.; Lindsay, M.; Spence, M.S.; Erglis, A.; Menown, I.B.; Trovik, T.; Eskola, M.; Romppanen, H.; Kellerth, T.; et al. Percutaneous coronary angioplasty versus coronary artery bypass grafting in treatment of unprotected left main stenosis (NOBLE): A prospective, randomised, open-label, non-inferiority trial. Lancet 2016, 38, 2743–2752. [Google Scholar] [CrossRef]
- Park, S.J.; Kim, Y.H.; Park, D.W.; Yun, S.C.; Ahn, J.M.; Song, H.G.; Lee, J.Y.; Kim, W.J.; Kang, S.J.; Lee, S.W.; et al. Randomized trial of stents versus bypass surgery for left main coronary artery disease. N. Engl. J. Med. 2011, 364, 1718–1727. [Google Scholar] [CrossRef]
- Vrints, C.; Andreotti, F.; Koskinas, K.C.; Rossello, X.; Adamo, M.; Ainslie, J.; Banning, A.P.; Budaj, A.; Buechel, R.R.; Chiariello, G.A.; et al. 2024 ESC Guidelines for the management of chronic coronary syndromes. Eur. Heart J. 2024, 45, 3415–3537. [Google Scholar] [CrossRef]
- Thygesen, K.; Alpert, J.S.; Jaffe, A.S.; Chaitman, B.R.; Bax, J.J.; Morrow, D.A.; White, H.D. Executive Group on behalf of the Joint European Society of Cardiology (ESC)/American College of Cardiology (ACC)/American Heart Association (AHA)/World Heart Federation (WHF) Task Force for the Universal Definition of Myocardial Infarction. Fourth Universal Definition of Myocardial Infarction (2018). J. Am. Coll. Cardiol. 2018, 72, 2231–2264. [Google Scholar]
- Cutlip, D.E.; Windecker, S.; Mehran, R.; Boam, A.; Cohen, D.J.; van Es, G.A.; Steg, P.G.; Morel, M.A.; Mauri, L.; Vranckx, P.; et al. Clinical end points in coronary stent trials: A case for standardized definitions. Circulation 2007, 115, 2344–2351. [Google Scholar] [CrossRef]
- Grambsch, P.M.; Therneau, T.M. Proportional hazards tests and diagnostics based on weighted residuals. Biometrika 1994, 81, 515–526. [Google Scholar] [CrossRef]
- Fine, J.P.; Gray, R.J. A proportional hazards model for the subdistribution of a competing risk. J. Am. Stat. Assoc. 1999, 94, 496–509. [Google Scholar] [CrossRef]
- Cutlip, D.E.; Windecker, S.; Mehran, R.; Boam, A.; Cohen, D.J.; van Es, G.A.; Steg, P.G.; Morel, M.A.; Mauri, L.; Vranckx, P.; et al. Percutaneous coronary intervention for bifurcation coronary lesions using optimised angiographic guidance: The 18th consensus document from the European Bifurcation Club. EuroIntervention 2024, 20, e915–e926. [Google Scholar]
- Hildick-Smith, D.; Egred, M.; Banning, A.; Brunel, P.; Ferenc, M.; Hovasse, T.; Wlodarczak, A.; Pan, M.; Schmitz, T.; Silvestri, M.; et al. The European bifurcation club Left Main Coronary Stent study: A randomized comparison of stepwise provisional vs. systematic dual stenting strategies (EBC MAIN). Eur. Heart J. 2021, 42, 3829–3839. [Google Scholar] [CrossRef]
- Arunothayaraj, S.; Egred, M.; Banning, A.P.; Brunel, P.; Ferenc, M.; Hovasse, T.; Wlodarczak, A.; Pan, M.; Schmitz, T.; Silvestri, M.; et al. Stepwise Provisional Versus Systematic Dual-Stent Strategies for Treatment of True Left Main Coronary Bifurcation Lesions. Circulation 2025, 151, 612–622. [Google Scholar] [CrossRef]
- Cortese, B.; Piraino, D.; Gentile, D.; Onea, H.L.; Lazar, L. Intravascular imaging for left main stem assessment: An update on the most recent clinical data. Catheter. Cardiovasc. Interv. 2022, 100, 1220–1228. [Google Scholar] [CrossRef] [PubMed]
- Kinnaird, T.; Johnson, T.; Anderson, R.; Gallagher, S.; Sirker, A.; Ludman, P.; de Belder, M.; Copt, S.; Oldroyd, K.; Banning, A.; et al. Intravascular Imaging and 12-Month Mortality After Unprotected Left Main Stem PCI: An Analysis From the British Cardiovascular Intervention Society Database. JACC Cardiovasc. Interv. 2020, 13, 346–357. [Google Scholar] [CrossRef]
- Kim, T.; Kang, D.Y.; Kim, S.; Lee, J.H.; Kim, A.R.; Lee, Y.; Oh, H.J.; Jang, M.; Lee, J.; Kim, J.H.; et al. Impact of Complete or Incomplete Revascularization for Left Main Coronary Disease: The Extended PRECOMBAT Study. JACC Asia 2023, 3, 65–74. [Google Scholar] [CrossRef]
- Ali, Z.A.; Garcia, J.J.; Karimi Galougahi, K.; Horst, J.; Gallo, A.; Shin, D.; Ben-Yehuda, O.; Chen, S.; Redfors, B.; Kappetein, A.P.; et al. Impact of Incomplete Revascularization After PCI in Left Main Disease: The EXCEL Trial. Circ. Cardiovasc. Interv. 2024, 17, e013192. [Google Scholar] [CrossRef]
- Kim, T.O.; Kang, D.Y.; Ahn, J.M.; Kim, M.J.; Lee, P.H.; Kim, H.; Choi, Y.; Lee, J.; Lee, J.M.; Jo, H.H.; et al. Impact of Target Lesion Revascularization on Long-Term Mortality After Percutaneous Coronary Intervention for Left Main Disease. JACC Cardiovasc. Interv. 2024, 17, 32–42. [Google Scholar] [CrossRef]
- Byrne, R.A.; Rossello, X.; Coughlan, J.J.; Barbato, E.; Berry, C.; Chieffo, A.; Claeys, M.J.; Dan, G.A.; Dweck, M.R.; Galbraith, M.; et al. 2023 ESC Guidelines for the management of acute coronary syndromes. Eur. Heart J. 2023, 44, 3720–3826. [Google Scholar] [CrossRef]
- Gaba, P.; Sabik, J.F.; Murphy, S.A.; Bellavia, A.; O’Gara, P.T.; Smith, P.K.; Serruys, P.W.; Kappetein, A.P.; Park, S.J.; Park, D.W.; et al. Percutaneous Coronary Intervention Versus Coronary Artery Bypass Grafting in Patients With Left Main Disease With and Without Diabetes: Findings From a Pooled Analysis of 4 Randomized Clinical Trials. Circulation 2024, 149, 1328–1338. [Google Scholar] [CrossRef]
- Salisbury, A.C.; Grantham, J.A.; Brown, W.M.; Ballard, W.L.; Allen, K.B.; Kirtane, A.J.; Argenziano, M.; Yeh, R.W.; Khabbaz, K.; Lasala, J.; et al. Outcomes of Medical Therapy Plus PCI for Multivessel or Left Main CAD Ineligible for Surgery. JACC Cardiovasc. Interv. 2023, 16, 261–273. [Google Scholar] [CrossRef] [PubMed]
- Gaudino, M.; Hameed, I.; Di Franco, A.; Naik, A.; Demetres, M.; Biondi-Zoccai, G.; Bangalore, S. Comparison of SYNTAX score strata effects of percutaneous and surgical revascularization trials: A meta-analysis. J. Thorac. Cardiovasc. Surg. 2023, 165, 1405–1413.e13. [Google Scholar] [CrossRef] [PubMed]
- Kosmidou, I.; Shahim, B.; Dressler, O.; Redfors, B.; Morice, M.C.; Puskas, J.D.; Kandzari, D.E.; Karmpaliotis, D.; Brown, W.M., 3rd; Lembo, N.J.; et al. Incidence, Predictors, and Impact of Hospital Readmission After Revascularization for Left Main Coronary Disease. J. Am. Coll. Cardiol. 2024, 83, 1073–1081. [Google Scholar] [CrossRef] [PubMed]
- Shrivastava, A.K.; Singh, H.V.; Raizada, A.; Singh, S.K. Serial measurement of lipid profile and inflammatory markers in patients with acute myocardial infarction. EXCLI J. 2015, 14, 517–526. [Google Scholar]
- Kim, Y.H.; Her, A.Y.; Rha, S.W.; Choi, B.G.; Shim, M.; Choi, S.Y.; Byun, J.K.; Li, H.; Kim, W.; Kang, J.H.; et al. Routine Angiographic Follow-Up versus Clinical Follow-Up after Percutaneous Coronary Intervention in Acute Myocardial Infarction. Yonsei Med. J. 2017, 58, 720–730. [Google Scholar] [CrossRef]
- Shiomi, H.; Morimoto, T.; Kitaguchi, S.; Nakagawa, Y.; Ishii, K.; Haruna, Y.; Takamisawa, I.; Motooka, M.; Nakao, K.; Matsuda, S.; et al. The ReACT Trial: Randomized Evaluation of Routine Follow-up Coronary Angiography After Percutaneous Coronary Intervention Trial. JACC Cardiovasc. Interv. 2017, 10, 109–117. [Google Scholar] [CrossRef]
- Goel, S.; Pasam, R.T.; Raheja, H.; Gotesman, J.; Gidwani, U.; Ahuja, K.R.; Reed, G.; Puri, R.; Khatri, J.K.; Kapadia, S.R. Left main percutaneous coronary intervention-Radial versus femoral access: A systematic analysis. Catheter. Cardiovasc. Interv. 2020, 95, E201–E213. [Google Scholar] [CrossRef]
- Piccolo, R.; Bonaa, K.H.; Efthimiou, O.; Varenne, O.; Urban, P.; Kaiser, C.; Räber, L.; de Belder, A.; Remkes, W.; Van’t Hof, A.W.J.; et al. Drug-Eluting or Bare-Metal Stents for Left Anterior Descending or Left Main Coronary Artery Revascularization. J. Am. Heart Assoc. 2021, 10, e018828. [Google Scholar] [CrossRef]
- Canton, L.; Suma, N.; Amicone, S.; Impellizzeri, A.; Bodega, F.; Marinelli, V.; Ciarlantini, M.; Casuso, M.; Bavuso, L.; Belà, R.; et al. Clinical impact of multimodality assessment of myocardial viability. Echocardiography 2024, 41, e15854. [Google Scholar] [CrossRef] [PubMed]
Elective (N = 157) | Acute (N = 356) | |
---|---|---|
Age, year | 66.3 ± 10.7 | 69.2 ± 11.9 |
Male sex | 107 (68.2) | 220 (61.8) |
Hypertension | 136 (86.6) | 283 (79.5) |
Diabetes mellitus | 65 (41.4) | 138 (38.8) |
Treated with oral antidiabetics | 45 (28.7) | 90 (25.3) |
Treated with insulin | 20 (12.7) | 48 (13.5) |
Hyperlipidemia | 112 (71.3) | 236 (66.3) |
Previous myocardial infarction | 55 (35.0) | 92 (25.8) |
Previous PCI | 46 (29.3) | 60 (16.9) |
Previous CABG * | 7 (4.5) | 6 (1.7) |
GFR, mL/min/1.73 m2 | 68.8 ± 25.3 | 60.6 ± 25.2 |
Left ventricular ejection fraction, % | 55.8 ± 13.2 | 41.3 ± 15.2 |
Clinical presentation | ||
Stable angina | 157 (100) | n.a. |
Non-ST-segment acute coronary syndrome | n.a. | 196 (55.1) |
ST-elevation myocardial infarction | n.a. | 94 (26.4) |
Cardiogenic shock caused by myocardial infarction | n.a. | 66 (18.5) |
SYNTAX score | 21.1 ± 9.2 | 29.3 ± 12.4 |
Low (<23) | 105 (66.9) | 123 (34.6) |
Intermediate (23 to 32) | 35 (22.3) | 92 (25.8) |
High (>32) | 17 (10.8) | 141 (39.6) |
SYNTAX II score PCI | 34.5 ± 13.1 | 46.1 ± 16.4 |
SYNTAX II score CABG | 34.1 ± 14.1 | 39.7 ± 28.4 |
EuroSCORE II | 2.9 ± 4.0 | 17.4 ± 18.1 |
Additive EuroSCORE | 4.3 ± 3.1 | 11.3 ± 4.1 |
Logistic EuroSCORE | 5.2 ± 6.9 | 29.3 ± 22.3 |
ACEF | 1.4 ± 0.6 | 2.0 ± 1.0 |
GRACE 2.0 score | 92.5 ± 26.2 | 140.5 ± 38.9 |
Elective (N = 157) | Acute (N = 356) | |
---|---|---|
Right dominant coronary artery | 138 (87.9) | 307 (86.2) |
Occluded dominant RCA | 14 (8.9) | 78 (21.9) |
True bifurcation | 35 (22.3) | 142 (39.9) |
Trifurcation | 18 (11.5) | 59 (16.6) |
Ostial/shaft ULMCA PCI | 24 (15.3) | 59 (16.6) |
Distal ULMCA PCI | 133 (84.7) | 297 (83.4) |
Provisional T-stenting | 105 (66.9) | 228 (64.0) |
Final kissing balloon dilatation | 116 (73.9) | 222 (62.4) |
Direct stenting | 36 (22.9) | 47 (13.2) |
ULMCA PCI only | 75 (47.8) | 145 (40.7) |
BMS | 9 (5.7) | 76 (21.3) |
DES | ||
First generation | 28 (17.8) | 92 (25.8) |
New generation | 120 (76.4) | 188 (52.9) |
>1 stent implanted to the ULMCA | 17 (10.8) | 39 (11.0) |
ULMCA stent diameter, mm | 3.5 ± 0.3 | 3.4 ± 0.7 |
ULMCA total stent length, mm | 22.6 ± 11.1 | 21.7 ± 10.0 |
Post-dilatation | 150 (95.6) | 321 (90.2) |
Maximum post-dilatation pressure, atm. | 18.3 ± 5.1 | 19.0 ± 6.7 |
Intra-aortic ballon pump | 9 (5.7) | 128 (36.0) |
GPIIb/IIIa usage | 2 (1.3) | 35 (9.8) |
Radial access | 108 (68.8) | 184 (51.7) |
Use of FFR | 47 (29.9) | 13 (3.7) |
Outcome | Elective (N = 149) | Acute (N = 316) |
---|---|---|
Primary endpoint ** | 25 (16.8) | 120 (38) |
Cardiac death | 19 (12.8) | 95 (30.1) |
TLMI | 3 (2) | 15 (4.7) |
TLR | 8 (5.4) | 33 (10.4) |
Target lesion PCI | 7 (4.7) | 26 (8.2) |
Target lesion CABG | 1 (0.7) | 7 (2.2) |
Definite stent thrombosis | 0 (0) | 3 (0.9) |
Probable stent thrombosis | 1 (0.7) | 13 (4.1) |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2025 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Nemeth, O.; Ferenci, T.; Szonyi, T.; Szoke, S.; Fulop, G.; Pinter, T.; Fontos, G.; Andreka, P.; Piroth, Z. Long-Term Outcome of Unprotected Left Main Percutaneous Coronary Interventions—An 8-Year Single-Tertiary-Care-Center Experience. J. Pers. Med. 2025, 15, 316. https://doi.org/10.3390/jpm15070316
Nemeth O, Ferenci T, Szonyi T, Szoke S, Fulop G, Pinter T, Fontos G, Andreka P, Piroth Z. Long-Term Outcome of Unprotected Left Main Percutaneous Coronary Interventions—An 8-Year Single-Tertiary-Care-Center Experience. Journal of Personalized Medicine. 2025; 15(7):316. https://doi.org/10.3390/jpm15070316
Chicago/Turabian StyleNemeth, Orsolya, Tamas Ferenci, Tibor Szonyi, Sandor Szoke, Gabor Fulop, Tunde Pinter, Geza Fontos, Peter Andreka, and Zsolt Piroth. 2025. "Long-Term Outcome of Unprotected Left Main Percutaneous Coronary Interventions—An 8-Year Single-Tertiary-Care-Center Experience" Journal of Personalized Medicine 15, no. 7: 316. https://doi.org/10.3390/jpm15070316
APA StyleNemeth, O., Ferenci, T., Szonyi, T., Szoke, S., Fulop, G., Pinter, T., Fontos, G., Andreka, P., & Piroth, Z. (2025). Long-Term Outcome of Unprotected Left Main Percutaneous Coronary Interventions—An 8-Year Single-Tertiary-Care-Center Experience. Journal of Personalized Medicine, 15(7), 316. https://doi.org/10.3390/jpm15070316