Machine Learning-Based Phenogrouping in MVP Identifies Profiles Associated With Myocardial Fibrosis and Cardiovascular Events

被引:13
作者
Huttin, Olivier [1 ,10 ]
Girerd, Nicolas [2 ,3 ]
Jobbe-Duval, Antoine [4 ]
Beaufils, Anne-Laure Constant Dit [4 ]
Senage, Thomas [4 ,5 ]
Filippetti, Laura [1 ]
Cueff, Caroline [4 ,6 ]
Duarte, Kevin [2 ,3 ]
Fraix, Antoine [1 ]
Piriou, Nicolas [4 ]
Mandry, Damien [1 ]
Pace, Nathalie [1 ]
Le Scouarnec, Solena [6 ]
Capoulade, Romain [6 ]
Echivard, Matthieu [1 ]
Sellal, Jean Marc [1 ]
Marrec, Marie [4 ]
Beaumont, Marine [7 ]
Hossu, Gabriella [7 ,8 ]
Trochu, Jean-Noel [4 ,6 ]
Sadoul, Nicolas [1 ]
Marie, Pierre-Yves [1 ]
Guenancia, Charles [9 ]
Schott, Jean-Jacques [6 ]
Roussel, Jean-Christian [4 ,6 ]
Serfaty, Jean-Michel [6 ]
Selton-Suty, Christine [1 ]
Le Tourneau, Thierry [4 ,6 ]
机构
[1] Ctr Hosp Univ Nancy, Inst Lorrain Coeur & Vaisseaux, Serv Cardiol, Nancy, France
[2] Univ Lorraine, INSERM, Ctr Invest Clin 1433, Nancy, France
[3] CHRU Nancy, INSERM, French Clin Res Infrastructure Network Invest Netw, U1116, Nancy, France
[4] Univ Nantes, CHU Nantes, Inst Thorax, Ctr Invest Clin 1413, Nantes, France
[5] Univ Nantes, Thorax Inst, Dept Thorac & Cardiovasc Surg, Nantes, France
[6] Univ Nantes, CHU Nantes, Inst Thorax, CNRS, Nantes, France
[7] CHRU Nancy, CIC IT, U1433, Nancy, France
[8] Univ Lorraine, INSERM, Imagerie Adaptat Diagnost & Intervent, U1254, Nancy, France
[9] Univ Hosp, Cardiol Dept, Dijon, France
[10] CHRU Nancy, Dept Cardiol, Site Brabois,Rue Morvan, F-54500 Vandoeuvre Les Nancy, France
关键词
cardiac magnetic resonance; echocardiography; machine learning; mitral regurgitation; mitral valve prolapse; myocardial fibrosis; prognosis value; MITRAL-VALVE-PROLAPSE; GLOBAL LONGITUDINAL STRAIN; TERM FOLLOW-UP; PROGNOSTIC IMPLICATIONS; AMERICAN SOCIETY; REGURGITATION; ECHOCARDIOGRAPHY; RECOMMENDATIONS; QUANTIFICATION; ARRHYTHMIAS;
D O I
10.1016/j.jcmg.2023.03.009
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
BACKGROUND Structural changes and myocardial fibrosis quantification by cardiac imaging have become increasingly important to predict cardiovascular events in patients with mitral valve prolapse (MVP). In this setting, it is likely that an unsupervised approach using machine learning may improve their risk assessment.OBJECTIVES This study used machine learning to improve the risk assessment of patients with MVP by identifying echocardiographic phenotypes and their respective association with myocardial fibrosis and prognosis.METHODS Clusters were constructed using echocardiographic variables in a bicentric cohort of patients with MVP (n 1/4 429, age 54 +/- 15 years) and subsequently investigated for their association with myocardial fibrosis (assessed by cardiac magnetic resonance) and cardiovascular outcomes.RESULTS Mitral regurgitation (MR) was severe in 195 (45%) patients. Four clusters were identified: cluster 1 comprised no remodeling with mainly mild MR, cluster 2 was a transitional cluster, cluster 3 included significant left ventricular (LV) and left atrial (LA) remodeling with severe MR, and cluster 4 included remodeling with a drop in LV systolic strain. Clusters 3 and 4 featured more myocardial fibrosis than clusters 1 and 2 (P < 0.0001) and were associated with higher rates of cardiovascular events. Cluster analysis significantly improved diagnostic accuracy over conventional analysis. The decision tree identified the severity of MR along with LV systolic strain <21% and indexed LA volume >42 mL/m(2) as the 3 most relevant variables to correctly classify participants into 1 of the echocardiographic profiles.CONCLUSIONS Clustering enabled the identification of 4 clusters with distinct echocardiographic LV and LA remodeling profiles associated with myocardial fibrosis and clinical outcomes. Our findings suggest that a simple algorithm based on only 3 key variables (severity of MR, LV systolic strain, and indexed LA volume) may help risk stratification and decision making in patients with MVP. (Genetic and Phenotypic Characteristics of Mitral Valve Prolapse, NCT03884426; Myocardial Characterization of Arrhythmogenic Mitral Valve Prolapse [MVP STAMP], NCT02879825)
引用
收藏
页码:1271 / 1284
页数:14
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