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数据驱动的聚类支持运动员心脏的适应性重塑:来自台北夏季大运会的超声心动图研究。

Data-driven clustering supports adaptive remodeling of athlete's hearts: An echocardiographic study from the Taipei Summer Universiade.

机构信息

Graduate Institute of Clinical Medicine, College of Medicine, National Taiwan University, Taipei, Taiwan; Section of Cardiology, Department of Internal Medicine, National Taiwan University Hospital Hsinchu Branch, Hsinchu, Taiwan.

Department of Medical Education, Taipei Municipal Wan Fang Hospital, Taipei, Taiwan.

出版信息

J Formos Med Assoc. 2022 Aug;121(8):1495-1505. doi: 10.1016/j.jfma.2021.10.017. Epub 2021 Nov 2.

Abstract

BACKGROUND/PURPOSE: Sport-specific adaptations of athlete's hearts are still under investigation. This study sought to 1) identify athlete groups with similar characteristics by clustering echocardiographic data; 2) externally validate the data-driven clusters with sport classifications of various dynamic or static loads to support the conventional hypothesis-driven approach in delineating the athlete's heart.

METHODS

Anthropometric, echocardiographic and electrocardiographic assessments were collected during the 2017 Summer Universiade in Taiwan. Besides standard echocardiography and strain measurements, ventricular-arterial coupling (VAC) was assessed by the ratio of effective arterial elastance (Ea) to left ventricular end-systolic elastance (Ees) as calculated by a modified single-beat algorithm.

RESULTS

We grouped 598 elite athletes (348 male, age 23 ± 2.5 years, across 24 disciplines) using Mitchell's classification. The hypothesis-driven analysis showed dynamic training-related adaptations in heart rate and morphology, including ventricular size, mass, and stroke volume. In comparison, the unsupervised approach found two clusters for each sex. Male athletes participating in high dynamic-load exercises had larger chambers, supranormal diastolic functions, depressed Ees, lower Ea and preserved optimal VAC implicating the resting status of a reservoir-rich pump, which affirmed sport-specific adaptation. The female athletes could be clustered with more noticeable functional alterations, such as depressed biventricular strain. However, the imbalanced number between clusters impeded the validation of load-related remodeling.

CONCLUSION

Hierarchical clustering could analyze complicated multiparametric interactions among numerous echocardiography-derived phenotypes to discern the adaptive propensity of the athlete's heart. The endorsement or generation of hypotheses by a data-driven approach can be applied to various domains.

摘要

背景/目的:运动员心脏的特异性适应仍在研究中。本研究旨在:1)通过聚类超声心动图数据确定具有相似特征的运动员群体;2)通过各种动态或静态负荷的运动分类对数据驱动的聚类进行外部验证,以支持传统的基于假说的方法来描绘运动员的心脏。

方法

在台湾举行的 2017 年夏季世界大学生运动会期间,收集了人体测量学、超声心动图和心电图评估数据。除了标准超声心动图和应变测量外,还通过改良的单拍算法计算的有效动脉弹性(Ea)与左心室收缩末期弹性(Ees)的比值评估心室-动脉偶联(VAC)。

结果

我们使用 Mitchell 分类法对 598 名精英运动员(男性 348 名,年龄 23±2.5 岁,涉及 24 个学科)进行了分组。基于假说的分析显示,与心率和形态相关的动态训练适应性,包括心室大小、质量和每搏量。相比之下,无监督方法为每一种性别找到了两个聚类。参与高动态负荷运动的男性运动员具有更大的心室、超正常的舒张功能、降低的 Ees、较低的 Ea 和保留的最佳 VAC,提示休息状态下储备丰富的泵功能,证实了特定运动的适应性。女性运动员可以通过更明显的功能改变聚类,例如双心室应变降低。然而,聚类之间数量的不平衡阻碍了对负荷相关重塑的验证。

结论

层次聚类可以分析来自许多超声心动图衍生表型的复杂多参数相互作用,以辨别运动员心脏的适应性倾向。数据驱动方法的支持或产生假设可以应用于各个领域。

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