Long-Term Prognostic Implications of Non-Culprit Lesions in Patients Presenting With an Acute Myocardial Infarction: Is It the Angiographic Stenosis Severity or the Underlying High-Risk Morphology?
Abstract
BACKGROUND: Patients with acute myocardial infarction and angiographically obstructive non-culprit lesions are at high risk for recurrent major adverse cardiac events (MACEs). However, it remains largely unknown whether events are due to stenosis severity or due to the underlying high-risk lesion morphology. METHODS: Between January 2017 and December 2021, 1312 patients with acute myocardial infarction underwent optical coherence tomography of all the 3 main epicardial arteries after successful percutaneous coronary intervention. Patients and lesions were categorized according to the presence or absence of (1) 1 or more non-culprit angiographic obstructive stenoses with a visual diameter stenosis of ≥50% and (2) 1 or more lesions with an underlying high-risk morphology defined as an optical coherence tomography thin-cap fibroatheroma (TCFA). Patients were followed for up to 5 years (median 4.1 [interquartile range: 3.0–5.0] years). MACEs comprised cardiac death, non-fatal myocardial infarction, and unplanned coronary revascularization. RESULTS: Overall, 492 patients had at least 1 obstructive non-culprit lesion, 352 had a single lesion, and 140 had multiple obstructive non-culprit lesions. The presence and number of angiographic obstructive non-culprit lesions correlated with the proportion and number of optical coherence tomography–derived TCFAs. At the lesion level, the prevalence of TCFA was twice as high in obstructive lesions compared with nonobstructive lesions. Patients with obstructive non-culprit lesions had an increased risk of overall MACEs (17.7% versus 12.8%; hazard ratio, 1.39 [95% CI, 1.02–1.91]) and non-culprit lesion–related MACEs (8.7% versus 3.9%; HR, 2.13 [95% CI, 1.26–3.59). Results were similar when patients were categorized on the basis of the underlying TCFA. A proportionally higher rate of overall and non-culprit lesion–related MACEs was observed as the number of obstructive stenoses or TCFAs in non-culprit segments increased. The lesion-specific HRs for obstructive lesion and TCFA were 2.03 (95% CI, 1.06–3.89) and 2.39 (95% CI, 1.29–4.43), respectively. Optical coherence tomography–derived TCFA, but not angiographic obstructive stenosis, was independently predictive of recurrent MACEs in both patient-level and lesion-level multivariable models in which these 2 characteristics were introduced simultaneously. CONCLUSIONS: The long-term prognostic implications of the presence and extent of angiographic obstructive non-culprit lesions in patients with acute myocardial infarction are primarily due to their correlation with the underlying high-risk morphology, which confers an increased risk of recurrent MACEs.
Article Details
Authors (22)
Jiannan Dai
Jiawei Zhao
State Key Laboratory of Physical Chemistry of Solid Surfaces, iChEM, College of Chemistry and Chemical Engineering, Innovation Laboratory for Sciences and Technologies of Energy Materials of Fujian Province (IKKEM), Xiamen University, Xiamen 361005, China
Xueming Xu
Department of Cardiology, The 2nd Affiliated Hospital of Harbin Medical University, Harbin, China (J.D., J.Z., X.X., Y.C., S.S., S.L., L.C., Y.W., L.L., R.G., D.H., X.M., R.Z., H.Y., T.C., J.T., X.L., S.J., J.H., C.F., B.Y.).
Yuzhu Chen
Key Laboratory of Automobile Materials MOE, School of Materials Science & Engineering, Electron Microscopy Center, International Center of Future Science, Changbaishan Laboratory Jilin University Changchun 130012 China
Sibo Sun
Shuang Li
Lina Cui
Yini Wang
Lulu Li
Institute of Chemical Research of Catalonia (ICIQ-CERCA)
Ruirong Guo
Department of Cardiology, The 2nd Affiliated Hospital of Harbin Medical University, Harbin, China (J.D., J.Z., X.X., Y.C., S.S., S.L., L.C., Y.W., L.L., R.G., D.H., X.M., R.Z., H.Y., T.C., J.T., X.L., S.J., J.H., C.F., B.Y.).
Dongxu Huang
Harbin Medical University, 2nd hosp, Harbin, China
xianqin ma
Harbin Medical University, 2nd hosp, Harbin, China
Rui Zhao
Huai Yu
Tao Chen
Jinfeng Tan
Department of Cardiology, The 2nd Affiliated Hospital of Harbin Medical University, Harbin, China (J.D., J.Z., X.X., Y.C., S.S., S.L., L.C., Y.W., L.L., R.G., D.H., X.M., R.Z., H.Y., T.C., J.T., X.L., S.J., J.H., C.F., B.Y.).
Xiaohui Liu
Hydrogen Energy Industry Institute of Jilin Province
Senqing Jiang
Department of Cardiology, The 2nd Affiliated Hospital of Harbin Medical University, Harbin, China (J.D., J.Z., X.X., Y.C., S.S., S.L., L.C., Y.W., L.L., R.G., D.H., X.M., R.Z., H.Y., T.C., J.T., X.L., S.J., J.H., C.F., B.Y.).
Jingbo Hou
Department of Cardiology, The 2nd Affiliated Hospital of Harbin Medical University, Harbin, China (J.D., J.Z., X.X., Y.C., S.S., S.L., L.C., Y.W., L.L., R.G., D.H., X.M., R.Z., H.Y., T.C., J.T., X.L., S.J., J.H., C.F., B.Y.).
Chao Fang
State Key Laboratory of Physical Chemistry of Solid Surfaces, College of Chemistry and Chemical Engineering & Institute of Artificial Intelligence & Innovation Laboratory for Sciences and Technologies of Energy Materials of Fujian Province (IKKEM)
Gary S. Mintz
Bo Yu