运动员心脏 athlete's heart - PubMed 文献(第 3 页)
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运动员心脏 的 PubMed 搜索结果(第 3 页)
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Prevalence and clinical significance of isolated low QRS voltages in young athletes. 年轻运动员中孤立性低QRS电压的患病率和临床意义
Low QRS voltages (peak to peak <0.5 mV) in limb leads (LQRSV) on the athlete's electrocardiogram (ECG) may reflect an underlying cardiomyopathy, mostly arrhythmogenic cardiomyopathy (ACM) or non-ischaemic left ventricular scar (NILVS). We studied the prevalence and clinical meaning of isolated LQRSV in a large cohort of competitive athletes. The index group included 2229 Italian competitive athletes [median age 18 years (16-25), 67% males, 97% Caucasian] without major ECG abnormalities at pre-participation screening. Three control groups included Black athletes (N = 1115), general population (N = 1115), and patients with ACM or NILVS (N = 58). Echocardiogram was performed in all athletes with isolated LQRSV and cardiac magnetic resonance (CMR) in those with ventricular arrhythmias or echocardiographic abnormalities. The isolated LQRSV pattern was found in 1.1% index athletes and was associated with increasing age (median age 28 vs. 18 years; P < 0.001), elite status (71% vs. 34%; P < 0.001), body surface area, and body mass index but not with sex, type of sport, and echocardiographic left ventricular mass. The prevalence of isolated LQRSV was 0.2% in Black athletes and 0.3% in young individuals from the general population. Cardiomyopathy patients had a significantly greater prevalence of isolated LQRSV (12%) than index athletes, Black athletes, and general population. Five index athletes with isolated LQSRV and exercise-induced ventricular arrhythmias underwent CMR showing biventricular ACM in 1 and idiopathic NILVS in 1. Unlike cardiomyopathy patients, the ECG pattern of isolated LQRSV was rarely observed in athletes. This ECG sign should prompt clinical work-up for exclusion of an underlying cardiomyopathy.
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An acute cardiovascular event in an endurance-trained athlete. 一名耐力训练运动员的急性心血管事件
In athletes, symptoms and electrocardiographic patterns may mimic an acute coronary event. In addition, endurance athletes show significantly elevated heart-specific serum CK-MB enzyme activity in the first week after athletic competition. Also, cellular control of the CK-MB enzyme is consistently elevated in skeletal muscles of trained endurance athletes. Thus, all three criteria used in diagnosis of acute myocardial infarction may be found in the athlete's heart. Awareness of these potential findings in athletes as "heart patients" and curtail unnecessary hospitalizations.
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Athlete's Heart: Is the Morganroth Hypothesis Obsolete? 运动员心脏:Morganroth假说过时了吗?
In 1975, Morganroth and colleagues reported that the increased left ventricular (LV) mass in highly trained endurance athletes versus nonathletes was primarily due to increased end-diastolic volume while the increased LV mass in resistance trained athletes was solely due to an increased LV wall thickness. Based on the divergent remodelling patterns observed, Morganroth and colleagues hypothesised that the increased "volume" load during endurance exercise may be similar to that which occurs in patients with mitral or aortic regurgitation while the "pressure" load associated with performing a Valsalva manoeuvre (VM) during resistance exercise may mimic the stress imposed on the heart by systemic hypertension or aortic stenosis. Despite widespread acceptance of the four-decade old Morganroth hypothesis in sports cardiology, some investigators have questioned whether such a divergent "athlete's heart" phenotype exists. Given this uncertainty, the purpose of this brief review is to re-evaluate the Morganroth hypothesis regarding: i) the acute effects of resistance exercise performed with a brief VM on LV wall stress, and the patterns of LV remodelling in resistance-trained athletes; ii) the acute effects of endurance exercise on biventricular wall stress, and the time course and pattern of LV and right ventricular (RV) remodelling with endurance training; and iii) the value of comparing "loading" conditions between athletes and patients with cardiac pathology.
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Diagnostic Differentiation Between Arrhythmogenic Cardiomyopathy and Athlete's Heart by Using Imaging. 使用影像学鉴别致心律失常性心肌病与运动员心脏的诊断
Arrhythmogenic right ventricular cardiomyopathy (ARVC) is an important cause of sudden cardiac death (SCD) in youth and athletes. In the last decade, several studies focused on right ventricular (RV) remodeling in athletes and revealed that features of the physiological adaptation of the right heart to training, such as RV dilation, may overlap with those of ARVC. Therefore, a careful multiparametric evaluation is required for differential diagnosis in order to avoid false diagnosis of ARVC or, in contrast, fail to identify the risk of causing SCD. This review summarizes physiological adaptation of the RV to exercise and describes features that could help distinguishing between athlete's heart and ARVC.
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The athlete's heart syndrome. 运动员心脏综合征
The athlete's heart is a benign condition, associated with physiologic alterations that can be detected on physical and laboratory examination. Echocardiography is a particularly useful technique is quantitating cardiac adaptation to exercise training and in screening for cardiovascular disorders that can be deleterious to the athlete. Cardiomyopathies are common causes of sudden death in young athletes, and myocarditis in physically-active young military recruits. Coronary disease is usually implicated in middle-aged athletes such as distance runners. Recent well-publicized deaths in several athletes have focused more attention on the need to detect Marfan's syndrome and cocaine use. Published guidelines such as the 16th Bethesda Conference and recent medical advances like new antihypertensive and antiarrhythmic drugs assist the clinician in counseling and managing athletes with cardiovascular disorders.
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[Athlete's heart syndrome]. [运动员心脏综合征]
Performing vigorous physical activity means a multiorgan system engagement, but the cardiovascular system plays a critical role. In order to provide enough oxygen to activate muscles during repeated physical activity of high intensity, the heart undergoes profound morphologic, functional and electrophysiological alterations, which have been identified as the "athlete's heart syndrome". "The athlete's heart" is a complex, but not precisely defined concept, anatomically and functionally and in relation to health and disease. It means the whole heart enlargement and/or hypertrophy of the cardiac muscle, also increasing economy of cardiac performance at rest and during physical activity with higher maximal functional capacities, all that having an adaptive response to vigorous physical activity. For morphological changes called the "athlete's heart, full-time, programed and intensive physical activity at maximal levels is primarily responsible. But as there are different kinds of physical activities, the degree of those morphological changes is highly variable. Considering many sudden cardiac deaths in sports, it is needless to say how important it is to know where the borderline is between normal changes of the heart due to physical activity and pathological changes due to some cardiac diseases. As sport has a growing socio-economic significance, sudden cardiac death events have to be reduced.
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Coronary microcirculation into different models of left ventricular hypertrophy-hypertensive and athlete's heart: a contrast echocardiographic study. 冠状动脉微循环在不同左心室肥厚模型中的表现——高血压性和运动员心脏:一项对比超声心动图研究
The study was carried out in two different models of left ventricular hypertrophy: athlete's heart and essential arterial hypertension. Three groups of strictly age-matched males were studied: one group of 10 young adult untreated essential hypertensive patients (H), a second group of 10 athletes (A), and a group of 10 healthy individuals as controls (C). A Sonos 5500 echograph with S4 harmonic transducer was used with Levovist (ultrasonic tracer) before and after dipyridamole injection; digitised images of quantitative myocardial contrast echocardiography were collected with Power Harmonic Doppler. Angio images were analysed using dedicated PC software by placing a region-of-interest on the septum. Peak intensity, half-time (HT), the area under the curve of appearance and disappearance of microbubbles at 2/3 of PI, both in absolute and indexed values (/LVMi), were sampled. The per cent increase of PI after dipyridamole was significantly higher in C (+73%, P < 0.01) than in H (+31%) and in A (+33%) (P < 0.05). The area of appearance was significantly lower in H in comparison with C and A, both at rest and after vasodilatation. The disappearance area after dipyridamole was significantly higher in C and in A (+124%) than in H (+104%) (P < 0.05). Some hypothesis could be made: an impairment in the coronary microcirculatory function in hypertensive patients could be because of an in-crease in the arteriolar resistance. Angiogenesis and several different functional adaptations are the mechanisms that allow an optimal distribution of oxygen and of substrates to the hypertrophied myocardium of the athletes.
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Electrocardiographic abnormalities in amateur male marathon runners. 业余男性马拉松运动员的心电图异常
Sports activity has become extremely popular among amateurs. Electrocardiography is a useful tool in screening for cardiac pathologies in athletes; however, there is little data on electrocardiographic abnormalities in the group of amateur athletes. The aim of this study was to analyze the abnormalities in resting and exercise electrocardiograms (ECGs) in a group of amateur athletes, and try to determine whether the criteria applied for the general population or for athletes' ECGs should be implemented in this group. In 40 amateur male marathon runners, 3 consecutive 12-lead ECGs were performed: 2-3 weeks before (stage 1), just after the run (stage 2) and 2-3 weeks after the marathon (stage 3). Resting (stage 1) and exercise (stage 2) ECGs were analyzed following the refined criteria for the assessment of athlete's ECG (changes classified as training-related, borderline or training-unrelated). In resting ECGs, at least 1 abnormality was found in 92.5% of the subjects and the most common was sinus bradycardia (62.5%). In post-exercise ECGs, at least 1 abnormality was present in 77.5% of the subjects and the most common was right atrium enlargement (RAE) (42.5%). Training-related ECG variants were more frequent at rest (82.5% vs 42.5%; p = 0.0008), while borderline variants - after the run (22.5% vs 57.5%; p = 0.0004). Training-unrelated abnormalities were found in 15% and 10% of the subjects, respectively (p-value - nonsignificant), and the most common was T-wave inversion. Even if the refined criteria rather than the criteria used for normal sedentary population were applied, the vast majority of amateur runners showed at least 1 abnormality in resting ECGs, which were mainly training-related variants. However, at rest, in 15% of the subjects, pathologic training-unrelated abnormalities were found. The most frequent post-exercise abnormality was right atrial enlargement. General electrocardiographic screening in amateur athletes should be taken into consideration.
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[High performance athlete's heart: Results of a cross-sectional survey conducted in Bobo-Dioulasso, Burkina Faso]. [高水平运动员心脏:布基纳法索博博-迪乌拉索的一项横断面调查研究结果]
To describe the clinical, electrocardiographic and echocardiographic features of the athlete's heart. This was a cross-sectional study conducted from August 2015 to February 2016 in the city of Bobo-Dioulasso in Burkina Faso. Athletes of high level of training (at least 8hours of weekly training, for more than six months regardless of the type of sport) have benefited from: a clinical examination, an electrocardiography and a cardiac ultrasound rest to look for electrical, morphological and functional cardiac changes. The 192 athletes with an athlete heart included had a median age of 24 years (IQI: 21-27). The median seniority in high performance sport was 6 years (IQI: 4-8) and 10hours weekly training sessions (IQI: 10-10). The consumption of tobacco, alcohol, tea/coffee, medicines and/or energy drinks was reported respectively in 4.2%, 7.3%, 99.0%, 53.4%. A history of exertional discomfort was reported by 4.7 athletes. Electrical modifications were present in 92.1%. Sinus bradycardia was the most common abnormality (75.0% of cases). The prevalence of left atrium dilatation and left ventricular dilation was 72.4 and 22.4%, respectively. That of left ventricular hypertrophy was 9.0%. In the high-performance athlete, the prevalence of electrical, morphological and functional changes was high. These need to be known by practitioners to differentiate them from cardiac pathology.
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The right heart in athletes. Evidence for exercise-induced arrhythmogenic right ventricular cardiomyopathy. 运动员的右心:运动诱导性致心律失常性右心室心肌病的证据
Although 'athlete's heart' usually constitutes a balanced dilation and hypertrophy of all four chambers, there is increasing evidence that intense endurance activity may particularly tax the right ventricle (RV), both acutely and chronically. We review the evidence that the high wall stress of the RV during intense sports may explain observed B-type natriuretic peptide (BNP) elevations immediately after a race, may lead to cellular disruption and leaking of cardiac enzymes, and may even result in transient RV dilatation and dysfunction. Over time, this could lead to chronic remodelling and a pro-arrhythmic state resembling arrhythmogenic RV cardiomyopathy (ARVC) in some cases. ARVC in high-endurance athletes most often develops in the absence of underlying desmosomal abnormalities, probably only as a result of excessive RV wall stress during exercise. Therefore, we have labelled this syndrome 'exercise-induced ARVC'. Sports cardiologists should be aware that excessive sports activity can lead to cardiac sports injuries in some individuals, just like orthopaedic specialists are familiar with musculoskeletal sports injuries. This does not negate the fact that moderate exercise has positive cardiovascular effects and should be encouraged.