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Advances in Interventional Cardiology/Postępy w Kardiologii Interwencyjnej
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Original paper

Early and long-term outcomes of complete revascularization with percutaneous coronary intervention in patients with multivessel coronary artery disease presenting with non-ST-segment elevation acute coronary syndromes

Michał Hawranek
,
Piotr Desperak
,
Paweł Gąsior
,
Aneta Desperak
,
Andrzej Lekston
,
Mariusz Gąsior

Adv Interv Cardiol 2018; 14, 1 (51): 32–41
Online publish date: 2018/03/22
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Introduction

Multivessel coronary artery disease (CAD) is found to be present in approximately 40–70% of patients presenting with non-ST-segment elevation acute coronary syndromes (NSTE-ACS) undergoing coronary angiography [1–7]. Presence of multivessel CAD is associated with worse clinical outcomes when compared to single vessel CAD [7, 8]. After determining the artery responsible for NSTE-ACS manifestation, in most patients the first-choice procedure is culprit-lesion percutaneous coronary intervention (PCI) [1, 2]. Nonetheless, in multivessel CAD, revascularization of vessels not directly responsible for acute myocardial ischemia still remains a controversial issue. It seems that patients with NSTE-ACS and multivessel CAD who underwent complete revascularization with percutaneous coronary intervention (CR-PCI) during index hospitalization could gain potential benefits over incomplete revascularization (IR-PCI) in terms of long-term prognosis [9–13]. It is well documented that the plaque disruption or frank rupture, presumably related to a heightened inflammatory milieu, may not be limited to the single artery but may involve other territories in the coronary artery system [14, 15]. Moreover, more complete intervention may reduce adverse cardiovascular events, in particular re-hospitalization and future revascularization [9, 10, 16–23]. Current guidelines recommend that the choice of management in the mentioned situation should be individualized, dependent on the general condition of the patient, characteristics of lesions and severity of myocardial damage [1, 2]. Although complete coronary revascularization may provide benefits, CR-PCI is frequently limited by anatomic conditions such as total chronic occlusions or severe CAD. There is lack of contemporary data regarding feasibility of CR-PCI during the index hospital stay.

Aim

We decided to perform a comparative analysis of CR-PCI and IR-PCI during index hospitalization with respect to early (30-day) and long-term (12-month) prognosis among patients with multivessel CAD presenting with NSTE-ACS.

Material and methods

Study design

An analysis of consecutive data of 1,592 patients with NSTE-ACS and multivessel CAD from 1 January, 2006 to 31 December, 2014 was comprehensively undertaken. The exclusion criteria were: prior coronary artery bypass grafting (CABG), occurrence of cardiogenic shock, treatment with CABG in the course of initial hospitalization and scheduled to planned revascularization (CABG or PCI) after discharge. In the further analysis, patients were divided into 2 groups depending on completeness of revascularization during the index hospital stay: (I) CR-PCI group – complete revascularization following PCI; and (II) IR-PCI group – incomplete revascularization.
All enrolled patients underwent PCI using standard techniques. All interventional strategies, including completeness of revascularization, the use of stents, choice of stent type, and periprocedural anti-thrombin and antiplatelet therapy, were at the operator’s or heart team’s discretion. Before and after the intervention, pharmacological treatment recommended by the European Society of Cardiology (ESC) was introduced [1, 2]. The demographic, clinical and angiographic data collected in the course of the index hospitalization were retrieved from the prospectively recorded Institutional Electronic Database. The post-hospitalization data with the accompanying exact dates of death, myocardial infarction (MI) and acute coronary syndrome (ACS) driven unplanned revascularization were obtained from the official National Health Fund records. The vital status at 12 months was available for all of the patients.
The study was granted permission from the Institutional Review Board and University Bioethics Committee, and is in accordance with the ethical standards laid down in the 1964 Declaration of Helsinki and its later amendments.
Patients with confirmed diagnosis of NSTE-ACS based on clinical symptoms and electrocardiography were enrolled in the registry, and then classified as having unstable angina or non-ST-segment elevation myocardial infarction based on measured levels of markers of myocardial necrosis [1, 24]. Multivessel CAD was defined as hemodynamically significant stenosis in the left main (LM) or in ≥ 2 major epicardial territories or in their major branches (left anterior descending (LAD), left circumflex (LCx) or right coronary artery system (RCA)) with a diameter ≥ 2.0 mm as determined by visual assessment. Lesions with ≥ 50% diameter stenosis in the LM or proximal segment of the LAD and ≥ 70% diameter stenosis in other segments were considered as hemodynamically significant. A coronary artery was considered to be a culprit if one of the following criteria was present: definite or suspect thrombus, ruptured or ulcerated plaque, presence of thrombolysis in myocardial infarction (TIMI) flow grade ≤ 2, and tight stenosis ≥ 70% consistent with non-invasive ischemia tests. Angiographic success was defined as the achievement of a minimum stenosis diameter reduction to < 20% in the presence of TIMI flow 3 grade [25].
The targeted approach in the study population was complete functional revascularization of coronary arteries. Myocardial viability was assessed using single-photon emission computed tomography or stress echocardiography. The decision on revascularization of non-culprit lesions was at the operator’s or team’s discretion. Due to observational nature of the study, we adopted the anatomic definition of CR-PCI as the successful invasive treatment of all significant stenoses in major epicardial coronary arteries or their side branches with a diameter ≥ 2.0 mm during initial hospitalization caused by NSTE-ACS irrespective of the function or viability of relevant myocardium [26, 27].

Endpoints and definitions

The primary outcome measure included the occurrence of the composite endpoint defined as the composite rate of (1) death, (2) nonfatal recurrent myocardial infarction or (3) ACS-driven unplanned revascularization in a 30-day and 12-month observation period. Death was considered as all-cause death. Non-fatal MI was defined as an ischemic event that met the ESC/American College of Cardiology criteria for myocardial infarction and clearly clinically separate from the baseline ACS at the time of admission [24]. Acute coronary syndrome-driven repeat revascularization was defined as additional, unplanned angioplasty or CABG, performed as an urgent procedure because of acute ischemic symptoms [28].
The secondary outcome measures were singular components of the primary end point, the incidence of in-hospital events (death, non-fatal MI, target vessel revascularization (TVR), contrast-induced nephropathy (CIN), and bleeding event) and the independent factors influencing the performance and achieving of CR-PCI. The CIN was defined as impaired renal function on the basis of relative ≥ 25% or absolute ≥ 44 µmol/l increase of creatinine concentration in blood serum up to 3 days after the first or following coronary angiography and absence of an alternative explanation of renal dysfunction [29]. Bleeding was defined as clinically overt bleeding: i) with an ensuing decrease in hemoglobin to below 5 g/dl (3.1 mmol/l) or absolute decrease of hematocrit by more than 15%; or ii) resulting in hemodynamic disorders; or iii) requiring blood transfusion.

Statistical analysis

The statistical analysis included comparison of baseline, angiographic and in-hospital characteristics, and occurrence of the composite endpoint and its components in the 30-day and 12-month follow-up period. Analyzed variables are expressed as numbers and percentages. Continuous variables were summarized using the arithmetic mean with standard deviation (SD) for data following a normal distribution or median with quartiles 1 and 3 (Q1–Q3) for data following a distribution other than normal. Student’s t-test was performed for comparison of continuous parameters with a normal distribution, whereas the Mann-Whitney U test was performed for parameters with a distribution other than normal. Normality of the distribution was verified using the Shapiro-Wilk test. Categorical variables were summarized using frequency tables and were compared using the 2 Pearson test. Composite endpoint, all-cause mortality, non-fatal MI and revascularization caused by ACS in the 12-month observation period for all patients were analyzed using the Kaplan-Meier method with the log-rank test. Factors affecting 30-day and 12-month outcomes were analyzed using a Cox proportional hazards model. In the analysis we included all of the covariates which were significant in the univariate analysis. Furthermore, to evaluate factors affecting the ability to achieve the CR-PCI, a logistic regression model was used. Candidate variables were all statistically significant parameters from baseline and angiographic characteristics. In the analysis we included all of the covariates which were significant in the univariate analysis. Results of the multivariate analyses were summarized as the odds ratio (OR) or hazard ratio (HR) with 95% confidence interval (CI). For all analyses a 2-tailed p-value ≤ 0.05 was considered as significant. The Statistica 10 software (StatSoft Inc., Tulsa, Oklahoma) and MedCalc 12.2.1 (MedCalc Software, Mariakerke, Belgium) were used for all calculations.

Results

The study population is presented in Figure 1. Among 695 patients with multivessel CAD presenting with NSTE-ACS enrolled in the study, complete revascularization was achieved in 137 patients (CR-PCI group), while the remaining 558 patients did not undergo complete revascularization (IR-PCI group) in the course of the initial hospitalization. In the CR-PCI group, complete revascularization was achieved in 81 cases during the index procedure, whereas it was achieved in 47 patients with multi-stage PCI. The clinical characteristics of the study population stratified by performance of CR-PCI or IR-PCI are summarized in Table I. The analysis of coronary angiography and procedural parameters is presented in Table II. The procedural success of intervention in the culprit vessel and all treated lesions in the CR-PCI group was 100% according to the adopted definition of completeness of revascularization. Among patients from the CR-PCI group, calcium antagonists (22.9 vs. 37.5%; p = 0.0035) and diuretics (32.4 vs. 42.4; p = 0.051) were less often recommended upon discharge from hospital. Moreover, there were no differences in drug therapies between groups.
At the index hospital stay, no significant differences in studied groups regarding incidence of adverse events, in particular in rates of death (1.5% vs. 3.8%; p = 0.17) and non-fatal MI (0.7% vs. 1.8%; p = 0.37), were observed. Moreover, the occurrence of bleeding (4.4% vs. 3.8%; p = 0.15) and CIN (12.4% vs. 9.3%; p = 0.28) was similar in both groups. However, at 30 days, independently lower occurrence of composite endpoint (3.6% vs. 10.2%; HR = 0.31; 95% CI: 0.12–0.87; p = 0.025) and all-cause death (0.7% vs. 5.7%; HR = 0.11; 95% CI: 0.02–0.93; p = 0.014) in CR-PCI than IR-PCI was found.
During the 12-month observation period, a significant difference in the occurrence of composite endpoint was also maintained: 16.1% for the CR-PCI group and 27.9% for the IR-PCI group (Figure 2 A; p log-rank = 0.0036). In the multivariate analysis of the entire study population, the performance of CR-PCI independently decreased the risk of 12-month composite endpoint (Table III; HR = 0.56; 95% CI: 0.31–0.99; p = 0.046). Others independent factors influencing the 12-month composite endpoint were presented in Table IV. A significant effect of completeness of revascularization on the occurrence of all-cause mortality in the 12-month observation period was observed (Figure 2 B; 8.0% vs. 15.8%; p log-rank = 0.018), but it was not confirmed in the multivariate analysis (HR = 0.78; 95% CI: 0.34–1.80; p = 0.56). There were no statistical differences observed at 12 months for rates of non-fatal MI (Figure 2 C; 5.1% vs. 9.3%; p log-rank = 0.11) and ACS-driven unplanned revascularization (Figure 2 D; 9.5% vs. 9.9%; p log-rank = 0.88). Independent predictors of incomplete revascularization were occurrence of chronic total occlusion (CTO), higher mean age, higher GRACE risk score and lower incidence of 2-vessel CAD in study patients (Table V).

Discussion

In several studies analyzing patients with NSTE-ACS and multivessel CAD, multivessel PCI during index hospitalization versus multistage procedures is one of the main raised concerns [16–23]. In contrast to stable angina (SA) patients [11–13, 30, 31], only a few studies have revolved around completeness of revascularization of significantly narrowed segments in NSTE-ACS patients [9, 10]. Summarizing the presented results we concluded that: 1) in less than 20% of the study population CR-PCI was achieved, 2) the analysis did not show any statistically significant differences in periprocedural and in-hospital outcomes and 3) possibility of performing the CR-PCI strategy was associated with a 69% reduction in occurrence of the composite endpoint at 30 days and a 44% reduction of the composite endpoint in the 12-month observation period in comparison to IR-PCI. Moreover, 4) severity of coronary artery obstruction, occurrence of CTO assessed by coronary angiography, GRACE risk score and mean age of treated patients were important factors affecting the decision of implementation of CR-PCI during the index hospital stay.
As previously noted, there is high volatility in the criteria adopted to define the complete revascularization of coronary arteries [11–13, 26, 30, 31]. Currently in clinical practice complete functional revascularization seems to be the most reasonable and the most appropriate approach in the majority of patients [27, 32]. However, as well as in the majority of cited studies, due to the retrospective nature of our analysis, the definition of CR-PCI was judged on an anatomical basis, owing to the unavailability of data on myocardial viability or fractional flow reserve revaluation of stenosed coronary segments. Another important aspect about considerations of the CR-PCI strategy is the selection of the study group. In patients with cardiogenic shock, guidelines recommend complete revascularization of critically narrowed coronary arteries; therefore occurrence of cardiogenic shock may potentially affect the choice of applied treatment [2, 33]. Patients with planned revascularization after discharge were excluded from the analysis in most studies [18, 23]. In contrast to existing publications we included patients with left main disease [9, 16, 18, 22] and CTO in a non-culprit lesion [16–18] for clear reflection of real-world patients [34]. As mentioned, according to adopted definition of CR-PCI, high diversity in inclusion and division criteria, and other differences in study methodology, direct comparisons with our results might be ambiguous.
Only in 19.7% of patients did operators perform CR-PCI during the index hospital stay, of whom 12.9% underwent a one-staged and 6.8% a multi-staged procedure. Recent studies regarding NSTE-ACS patients reported CR-PCI rates ranging from 47.0% according to Palmer et al. [9] to 63.3% in a subanalysis of the ACUITY trial [10] (cut-off point of hemodynamic significance > 50% diameter stenosis). A high percentage of achieved CR-PCI compared to our data was achieved most likely due to methodological aspects: the relatively small group (n = 151) and the intention-to-treat strategy in the study of Palmer et al., and enrollment of patients with single-vessel CAD in subanalysis of the ACUITY trial. In studies concerning multivessel procedures, the percentage of patients treated with multivessel PCI ranged between 21.3% and 61.7% [16–23]. In general, the reasons for the small proportion of patients who underwent complete revascularization are: 1) the operator’s inability to achieve the CR-PCI caused by anatomical features and 2) the decision to selectively revascularize only the culprit vessel due to the patient’s clinical condition. The results of our analysis confirm previous findings and suggest that patients with NSTE-ACS and multivessel diseases should be carefully assessed before discharge in terms of performing complete revascularization.
We did not find significant differences in occurrence of adverse cardiac events during index hospitalization depending on performed revascularization strategy, although at 30 days, significantly better early prognosis in the CR-PCI group was observed. Data from contemporary studies analyzing in-hospital and early outcomes of patients with multivessel CAD presenting with NSTE-ACS who underwent more complete revascularization in comparison with culprit-only PCI are controversial and ambiguous [9, 10, 16–23]. In contrast to our study, the analyses by Brener et al. and Bauer et al. showed that one-staged multivessel PCI was associated with more frequent occurrence of periprocedural myocardial infarction without any significant difference in in-hospital mortality [21, 22]. Also Hassanin et al. reported that multivessel compared to culprit-only PCI was unambiguously connected with worse prognosis in the in-hospital and 30-day observation period [20]. Other studies in the NSTE-ACS population did not reveal any other differences in early outcomes [9, 10, 16–18, 23]. The comparable rates of hospital MI, bleeding, and acute kidney injury in our analysis suggest that CR-PCI during initial hospitalization in selected patients is feasible and safe.
Our study shows improved long-term prognosis in patients undergoing CR-PCI in comparison with IR-PCI. In the analyzed population, after considering typical clinical and angiographic factors, implementation of CR-PCI independently reduced incidence of the composite endpoint by 44% at the 12-month follow-up. Palmer et al. demonstrated that achieving CR-PCI is correlated with reduction in residual angina, repeated PCI and need for multiple antianginal therapies at roughly 10-month observation [9]. In the subanalysis of the ACUITY trial, the IR-PCI strategy independently increased the percentage of major adverse events at one year in comparison to CR-PCI, which was mainly associated with higher rates of MI and repeated revascularization [10]. Other authors reported that multivessel PCI was associated with reduction of major adverse cardiac events due to decreased necessity of repeated revascularization at 1 year [16–18]. Kim et al. observed more frequent occurrence of the composite end point at 12-month follow-up in the single-vessel than the multivessel PCI group, mainly due to higher rates of cardiac deaths and recurrent MI [19]. Due to high diversity of patients with multivessel CAD presenting with NSTE-ACS it is worth taking steps towards selection of patients who would benefit the most from a complete revascularization strategy.
As presented, the main factors influencing choice of treatment strategy were anatomic limitations (primarily CTO), greater number of treated vessels and worse clinical conditions, which led to incomplete revascularization during the index hospital stay. The results of our analysis were similar to the study conducted by Head et al. in the SYNTAX trial population, which demonstrated that the independent predictors of IR-PCI were hyperlipidemia, total occlusions and number of significant lesions [11].Moreover, Brener et al. observed a significant association between implementation of culprit-vessel PCI with occurrence of chronic kidney disease, prior PCI, peripheral artery disease, older age of patient, smoking and low left ventricular ejection fraction. However, in patients with heart failure operators more frequently decided to conduct multivessel PCI [21]. In our study the main cause of incomplete revascularization was occurrence of CTO, which concerned almost 70% of patients in the IR-PCI group. Patients scheduled for percutaneous intervention or cardiac surgery after discharge were excluded from our analysis; therefore, it may be assumed that the operator did not anticipate intervention within CTO in the future. It has been demonstrated that CTO is an independent factor of adverse prognosis in patients with NSTE-ACS [34]. In view of these data, it appears that the presence of CTO in the discussed population of patients is one of the most demanding clinical scenarios and requires careful planning of the treatment strategy including consideration of performing CABG or percutaneous CTO recanalization. Nonetheless, in our study multivariate analysis demonstrated that CR-PCI regardless of the presence of CTO is related to a favorable long-term prognosis.
The most important limitation of our study is the relatively small numbers of patients in each group. In addition, the retrospective nature of the study and the related consequences (selection biases) makes it difficult to generalize the conclusions of the present results. Multivariate analysis models may be biased because of the potential effect of confounding predictors that were not accessible. The decision of an invasive treatment strategy was dependent on the opinion of the operator or heart team, and could change during the period of hospitalization. Another important limitation was the method of angiographic data collection. The severity and location of coronary lesions were based on visual examination of the operator or quantitative analysis without functional assessment or available data of the SYNTAX or residual SYNTAX score. It is also assumed that the first treated artery was the culprit vessel. The results of multivariate analysis may be biased due to the potential impact of factors that were not available in our database.
Due to the observational design of the present study and despite the use of advanced adjustment methods, potential selection biases could have occurred. Multivariate analysis and propensity score-matching models may be biased because of the potential effect of confounding predictors that were not accessible. Coronary angiographic analysis was based on visual estimation with QCA, without available data of the SYNTAX score.

Conclusions

Completeness of revascularization in patients with NSTE-ACS and multivessel CAD depends on the complexity of coronary disease and individual risk profile and regards a minority of patients. CR-PCI is an independent predictor of improved 12-month outcomes and therefore should be considered when it is feasible. However, CR-PCI is not independently associated with 12-month mortality. The findings of this single-center observational study may not be generalizable for the overall NSTE-ACS population and are only hypothesis generating.

Conflict of interest

The authors declare no conflict of interest.

References

1. Hamm C, Bassand JP, Agewall S, et al. ESC Guidelines for the management of acute coronary syndromes in patients presenting without persistent ST-segment elevation. The Task Force for the management of acute coronary syndromes (ACS) in patients presenting without persistent ST-segment elevation of the European Society of Cardiology (ESC). Eur Heart J 2011; 32: 2999-3054.
2. Windecker S, Kolh P, Alfonso F, et al. 2014 ESC/EACTS Guidelines on myocardial revascularization: The Task Force on Myocardial Revascularization of the European Society of Cardiology (ESC) and the European Association for Cardio-Thoracic Surgery (EACTS) Developed with the special contribution of the European Association of Percutaneous Cardiovascular Interventions (EAPCI). Eur Heart J 2014; 35: 2541-619.
3. Mehta SR, Cannon CP, Fox KA, et al. Routine vs selective invasive strategies in patients with acute coronary syndromes: a collaborative meta-analysis of randomized trials. JAMA 2005; 293: 2908-17.
4. Neumann FJ, Kastrati A, Pogatsa-Murray G, et al. Evaluation of prolonged antithrombotic pretreatment (‘cooling-off’ strategy) before intervention in patients with unstable coronary syndromes: a randomized controlled trial. JAMA 2003; 290: 1593-9.
5. Rasoul S, Ottervanger JP, de Boer MJ, et al. A comparison of dual vs. triple antiplatelet therapy in patients with non-ST-segment elevation acute coronary syndrome: results of the ELISA-2 trial. Eur Heart J 2006; 27: 1401-7.
6. Montalescot G, Cayla G, Collet JP, et al. Immediate vs delayed intervention for acute coronary syndromes: a randomized clinical trial. JAMA 2009; 302: 947-54.
7. Lansky JA, Goto K, Cristea E, et al. Clinical and angiographic predictors of short- and long-term ischemic events in acute coronary syndromes: results from the Acute Catheterization and Urgent Intervention Triage strategY (ACUITY) Trial. Circ Cardiovasc Interv 2010; 3: 308-16.
8. Beigel R, Matetzky S, Gavrielov-Yusim N, et al. Predictors of high-risk angiographic findings in patients with non-ST-segment elevation acute coronary syndrome. Catheter Cardiovasc Interv 2014; 83: 677-83.
9. Palmer ND, Causer JP, Ramsdale DR, et al. Effect of completeness of revascularization on clinical outcome in patients with multivessel disease presenting with unstable angina who undergo percutaneous coronary intervention. J Invasive Cardiol 2004; 16: 185-8.
10. Rosner GF, Kirtane AJ, Genereux P, et al. Impact of the presence and extent of incomplete angiographic revascularization after percutaneous coronary intervention in acute coronary syndromes: the Acute Catheterization and Urgent Intervention Triage Strategy (ACUITY) trial. Circulation 2012; 125: 2613-20.
11. Head SJ, Mack MJ, Holmes DR Jr, et al. Incidence, predictors and outcomes of incomplete revascularization after percutaneous coronary intervention and coronary artery bypass grafting: a subgroup analysis of 3-year SYNTAX data. Eur J Cardiothorac Surg 2012; 41: 535-41.
12. van den Brand MJ, Rensing BJ, Morel MA, et al. The effect of completeness of revascularization on event-free survival at one year in the ARTS trial. J Am Coll Cardiol 2002; 39: 559-64.
13. Hannan EL, Racz M, Holmes DR, et al. Impact of completeness of percutaneous coronary intervention revascularization on long-term outcomes in the stent era. Circulation 2006; 113: 2406-12.
14. Goldstein JA, Demetriou D, Grines CL, et al. Multiple complex coronary plaques in patients with acute myocardial infarction. N Engl J Med 2000; 343: 915-22.
15. Asakura M, Ueda Y, Yamaguchi O, et al. Extensive development of vulnerable plaques as a pan-coronary process in patients with myocardial infarction: an angioscopic study. J Am Coll Cardiol 2001; 37: 1284-8.
16. Shishehbor MH, Lauer MS, Singh IM, et al. In unstable angina or non-ST-segment acute coronary syndrome, should patients with multivessel coronary artery disease undergo multivessel or culprit-only stenting? J Am Coll Cardiol 2007; 49: 849-54.
17. Zapata GO, Lasave LI, Kozak F, et al. Culprit-only or multivessel percutaneous coronary stenting in patients with non-ST-segment elevation acute coronary syndrome: one-year follow-up. J Interv Cardiol 2009; 22: 329-35.
18. Lee HJ, Song YB, Hahn JY, et al. Multivessel vs single-vessel revascularization in patients with non-ST-segment elevation acute coronary syndrome and multivessel disease in the drug-eluting stent era. Clin Cardiol 2011; 34: 160-5.
19. Kim MC, Jeong MH, Ahn Y, et al. What is optimal revascularization strategy in patients with multivessel coronary artery disease in non-ST-elevation myocardial infarction? Multivessel or culprit-only revascularization. Int J Cardiol 2011; 153: 148-53.
20. Hassanin A, Brener SJ, Lansky AJ, et al. Prognostic impact of multivessel versus culprit vessel only percutaneous intervention for patients with multivessel coronary artery disease presenting with acute coronary syndrome. Eurointervention 2015; 11: 293-300.
21. Brener SJ, Milford-Beland S, Roe MT, et al. Culprit-only or multivessel revascularization in patients with acute coronary syndrome: an American College of Cardiology National Cardiovascular Database Registry report. Am Heart J 2008; 155: 140-6.
22. Bauer T, Zeymer U, Hochadel M, et al. Prima-vista multi-vessel percutaneous coronary intervention in haemodynamically stable patients with acute coronary syndromes: analysis of over 4.400 patients in the EHS-PCI registry. Int J Cardiol 2013; 166: 596-600.
23. Onuma Y, Muramatsu T, Girasis C, et al. Single-vessel or multivessel PCI in patients with multivessel disease presenting with non-ST-elevation acute coronary syndromes. Eurointervention 2013; 9: 916-22.
24. Thygesen K, Alpert JS, White HD, Joint ESC/ACCF/AHA/WHF Task Force for the Redefinition of Myocardial Infarction. Universal definition of myocardial infarction. Joint ESC/ACCF/AHA/WHF Task Force for the Redefinition of Myocardial Infarction. Eur Heart J 2007; 28: 2525-38.
25. Levine GN, Bates ER, Blankenship JC, et al. American College of Cardiology Foundation; American Heart Association Task Force on Practice Guidelines; Society for Cardiovascular Angiography and Interventions. 2011 ACCF/AHA/SCAI Guideline for Percutaneous Coronary Intervention. J Am Coll Cardiol 2011; 58: e44-122.
26. Ong ATL, Serruys PW. Complete revascularization: coronary artery bypass graft surgery versus percutaneous coronary intervention. Circulation 2006; 114: 249-55.
27. de Bruyne B. Multivessel disease: from reasonably incomplete to functionally complete revascularization. Circulation 2012; 125: 2557-9.
28. Cutlip DE, Windecker S, Mehran R; the Academic Research Consortium. Clinical end points in coronary stent trials a case for standardized definitions. Circulation 2007; 115: 2344-51.
29. Kidney Disease: Improving Global Outcomes (KDIGO) Acute Kidney Injury Work Group. KDIGO Clinical Practice Guideline for Acute Kidney Injury. Kidney Inter Suppl 2012; 2: 1-138.
30. Shaw LJ, Berman DS, Maron DJ, et al. Optimal medical therapy with or without percutaneous coronary intervention to reduce ischemic burden: results from the Clinical Outcomes Utilizing Revascularization and Aggressive Drug Evaluation (COURAGE) trial nuclear substudy. Circulation 2008; 117: 1283-91.
31. Hannan EL, Wu C, Walford G, et al. Incomplete revascularization in the era of drug-eluting stents: impact on adverse outcomes. J Am Coll Cardiol Intv 2009; 2: 17-25.
32. Gössl M, Faxon DP, Bell MR, et al. Complete versus incomplete revascularization with coronary artery bypass graft or percutaneous intervention in stable coronary artery disease. Circ Cardiovasc Interv 2012; 5: 597-604.
33. Hochman JS, Sleeper LA, Webb JG, et al. Early revascularization and long-term survival in cardiogenic shock complicating acute myocardial infarction. JAMA 2006; 295: 2511-5.
34. Gierlotka M, Tajstra M, Gąsior M, et al. Impact of chronic total occlusion artery on 12-month mortality in patients with non-ST-segment elevation myocardial infarction treated by percutaneous coronary intervention (From the PL-ACS Registry). Int J Cardiol 2013; 168: 250-4.
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