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Familial restrictive cardiomyopathy with skeletal abnormalities.

A family is described in which 5 of 9 living children were found to have restrictive cardiomyopathy associated with skeletal muscle and orthopedic abnormalities. In the absence of another identifiable etiology, a genetic cause for restrictive cardiomyopathy in this family is probable. Consistent with the poor prognosis encountered for children with restrictive cardiomyopathy, 2 children in this family died, whereas a third was symptomatic by age 3 years.

Cardiac Catheterization↗

Restrictive cardiomyopathy due to primary plasma cell leukemia.

The causes of restrictive cardiomyopathy are numerous, of which neoplastic infiltration is also known. Plasma cell leukemia is considered as the, most severe form of multiple myeloma, is an extremely rare condition. Among them, primary plasma cell leukemia has got an incidence of one in one million only. We report a case summary of a patient who was admitted with clinical features suggestive of restrictive cardiomyopathy, the underlying disorder was primary plasma cell leukemia. With chemotherapy the restrictive physiology was relieved supporting the diagnosis of plasma cell infiltration in the myocardium. We report this case due to rarity of the disease itself and its rare presentation.

Cardiomyopathy, Restrictive↗

The restrictive cardiomyopathies.

In parallel with the rapidly developing interest in the diastolic properties of ventricular function in the 1970s, the restrictive cardiomyopathies have taken their place as the third major category of primary heart muscle disease. The restrictive cardiomyopathies are characterized by primary abnormalities of diastolic ventricular function with normal to near normal systolic performance and little or no increase in end-diastolic or end-systolic dimensions of either right or left ventricle. The restrictive abnormality of ventricular function can result from myocardial or endomyocardial disease, the etiologies of which may be known or unknown. Diastolic dysfunction that is essentially myocardial can be idiopathic (probably an enzymatic/metabolic disturbance), infiltrative (myocardial interstitium), or within myocardial cells (storage diseases). Diastolic dysfunction that results from endomyocardial disease is typified by endomyocardial fibrosis or the hypereosinophilic syndrome, although carcinoid, metastatic malignancies, radiation, and anthracycline toxicity may be accompanied by endomyocardial restriction. Echocardiography and Doppler ultrasound, MRI, and radionuclear techniques have been major advances in providing diagnostic precision, contributing materially to the clinical identification of the restrictive cardiomyopathies as well as discriminating certain of their etiologies.

Adult↗

Comparison of new Doppler echocardiographic methods to differentiate constrictive pericardial heart disease and restrictive cardiomyopathy.

This study assesses how the newer modalities of tissue Doppler echocardiography and color M-mode flow propagation compare with respiratory variation of Doppler flow in distinguishing between constrictive pericarditis and restrictive cardiomyopathy. We studied 30 patients referred for further evaluation of diastolic function who had a diagnosis of constrictive pericarditis or restrictive cardiomyopathy established by diagnostic tests, including clinical assessment, magnetic resonance imaging, cardiac catheterization, endomyocardial biopsy, and surgical findings. Nineteen patients had constrictive pericarditis and 11 had restrictive cardiomyopathy. We performed 2-dimensional transesophageal echocardiography combined with pulsed-wave Doppler of the pulmonary veins and mitral inflow with respiratory monitoring, tissue Doppler echocardiography of the lateral mitral annulus, and color M-mode flow propagation of left ventricular filling. Respiratory variation of the mitral inflow peak early (peak E) velocity of > or =10% predicted constrictive pericarditis with 84% sensitivity and 91% specificity and variation in the pulmonary venous peak diastolic (peak D) flow velocity of > or =18% distinguished constriction with 79% sensitivity and 91% specificity. Using tissue Doppler echocardiography, a peak early velocity of longitudinal expansion (peak Ea) of > or =8.0 cm/s differentiated patients with constriction from restriction with 89% sensitivity and 100% specificity. A slope of > or =100 cm/s for the first aliasing contour in color M-mode flow propagation predicted patients with constriction with 74% sensitivity and 91% specificity. Thus, the newer methods of tissue Doppler echocardiography and color M-mode flow propagation are equivalent and complimentary with Doppler respiratory variation in distinguishing between constrictive pericarditis and restrictive cardiomyopathy. The additive role of the new methods needs to be established in difficult cases of constrictive pericarditis where respiratory variation may be absent or decreased.

Adult↗

Differentiation of constrictive pericarditis from restrictive cardiomyopathy by Doppler transesophageal echocardiographic measurements of respiratory variations in pulmonary venous flow.

OBJECTIVES: The purpose of this study was to test the utility of measuring respiratory variation in pulmonary venous flow by transesophageal echocardiography. BACKGROUND: Respiratory variation of atrioventricular and central venous flow velocities by Doppler echocardiography has been used to differentiate constrictive pericarditis from restrictive cardiomyopathy. METHODS: We performed pulsed wave Doppler transesophageal echocardiography of the left or right pulmonary veins in 31 patients with diastolic dysfunction. Fourteen patients had constrictive pericarditis, and 17 had restrictive cardiomyopathy. We measured the pulmonary venous peak systolic and diastolic flow velocities and the systolic/diastolic flow ratio with transesophageal echocardiography during expiration and inspiration. The percent change in Doppler flow velocity from expiration to inspiration (%E) was calculated. RESULTS: Pulmonary venous peak systolic flow in both inspiration and expiration was greater in constrictive pericarditis than in restrictive cardiomyopathy. The %E for peak systolic flow tended to be higher in constrictive pericarditis (19% vs. 10%, p = 0.09). In contrast, pulmonary venous peak diastolic flow during inspiration was lower in constrictive pericarditis than in restrictive cardiomyopathy. The %E for peak diastolic flow was larger in constrictive pericarditis (29% vs. 16%, p = 0.008). The pulmonary venous systolic/diastolic flow ratio was greater in constrictive pericarditis in both inspiration and expiration. The combination of pulmonary venous systolic/diastolic flow ratio > or = 0.65 in inspiration and a %E for peak diastolic flow > or = 40% correctly classified 86% of patients with constrictive pericarditis. CONCLUSIONS: The relatively larger pulmonary venous systolic/diastolic flow ratio and greater respiratory variation in pulmonary venous systolic, and especially diastolic, flow velocities by transesophageal echocardiography can be useful signs in distinguishing constrictive pericarditis from restrictive cardiomyopathy.

Blood Flow Velocity↗

Restrictive cardiomyopathy versus constrictive pericarditis: role of endomyocardial biopsy in avoiding unnecessary thoracotomy.

Despite careful clinical, noninvasive, and hemodynamic assessment of patients with constrictive/restrictive physiology, the differentiation of restrictive cardiomyopathy from constrictive pericarditis remains difficult. We examined the role of right ventricular endomyocardial biopsy in defining the underlying process in 54 patients with evidence of constrictive/restrictive physiology, including 38 patients with profound symptoms of heart failure in whom diagnostic/therapeutic thoracotomy was contemplated (group I) and 16 patients with milder symptoms (group II). All patients in group I had NYHA class III or IV heart failure with depressed cardiac index (mean 2.5 liters/min/m2), right atrial hypertension (mean 15 mm Hg), and normal left ventricular ejection fraction (mean 59%). Endomyocardial biopsy identified a specific source of restrictive cardiomyopathy in 15 of 38 patients (39%) (11 amyloid, four myocarditis). Of the 23 remaining patients with either normal biopsy findings or nonspecific abnormalities on biopsy, 18 had intraoperative or autopsy evaluation of their pericardium, and constriction was found in 14 (77%). A specific form of restrictive cardiomyopathy was also identified in four of the 16 patients with milder symptoms (group II). We conclude that endomyocardial biopsy is useful in patients with severe constrictive/restrictive physiology. It identifies a large subset of patients with specific forms of restrictive cardiomyopathy in whom thoracotomy should be avoided. It supports the need for thoracotomy and the likelihood of finding pericardial constriction in patients without specific pathologic findings.

Adult↗

Idiopathic restrictive cardiomyopathy in the young: report of two cases.

Two cases of idiopathic restrictive cardiomyopathy in young age are reported. This rare kind of restrictive cardiomyopathy is characterized by the absence of specific histologic features of myocardial abnormalities. In both cases (aged 12 and 9 years at diagnosis), the clinical picture was characterized by severe and slowly progressive congestive heart failure. The electrocardiogram showed biventricular hypertrophy, right bundle branch block and pseudoinfarctional Q waves. Echocardiography revealed moderate pericardial effusion, biatrial enlargement, and normal or nearly normal biventricular dimensions and systolic function. Cardiac catheterization disclosed the typically restrictive filling pattern. Right ventricular endomyocardial biopsy demonstrated moderate interstitial fibrosis and cellular hypertrophy without any evidence of infiltrative or storage myocardial disease or endocardial pathology. One patient underwent cardiac transplantation, whereas in the other, transplantation was contraindicated because of longstanding pulmonary hypertension and liver cirrhosis. The knowledge of this rare entity may correctly orient the diagnostic process in children suspected of having restrictive myocardial disease. Heart, or even heart-lung, transplantation must be considered in cases with congestive heart failure before irreversible damage occurs in many organs.

Adult↗

Idiopathic restrictive cardiomyopathy with diffuse perimyocytic fibrosis--a rare observation.

Idiopathic restrictive cardiomyopathy (RCM) is rare. Even today little is understood of its etiology or underlying mechanisms, and definitive diagnostic criteria are lacking. In this report, we describe a case of idiopathic RCM in a young Japanese woman who died while awaiting cardiac transplantation during the 5-year course of the disease. Rare pathologic findings of diffuse perimyocytic fibrosis were revealed at autopsy.

Adult↗

Mutations in human cardiac troponin I that are associated with restrictive cardiomyopathy affect basal ATPase activity and the calcium sensitivity of force development.

Human cardiac Troponin I (cTnI) is the first sarcomeric protein for which mutations have been associated with restrictive cardiomyopathy. To determine whether five mutations in cTnI (L144Q, R145W, A171T, K178E, and R192H) associated with restrictive cardiomyopathy were distinguishable from hypertrophic cardiomyopathy-causing mutations in cTnI, actomyosin ATPase activity and skinned fiber studies were carried out. All five mutations investigated showed an increase in the Ca2+ sensitivity of force development compared with wild-type cTnI. The two mutations with the worst clinical phenotype (K178E and R192H) both showed large increases in Ca2+ sensitivity (deltapCa50 = 0.47 and 0.36, respectively). Although at least one of these mutations is not in the known inhibitory regions of cTnI, all of the mutations investigated caused a decrease in the ability of cTnI to inhibit actomyosin ATPase activity. Mixtures of wild-type and mutant cTnI showed that cTnI mutants could be classified into three different groups: dominant (L144Q, A171T and R192H), equivalent (K178E), or weaker (R145W) than wild-type cTnI in actomyosin ATPase assays in the absence of Ca2+. Although most of the mutants were able to activate actomyosin ATPase similarly to wild-type cTnI, L144Q had significantly lower maximal ATPase activities than any of the other mutants or wild-type cTnI. Three mutants (L144Q, R145W, and K178E) were unable to fully relax contraction in the absence of Ca2+. The inability of the five cTnI mutations investigated to fully inhibit ATPase activity/force development and the generally larger increases in Ca2+ sensitivity than observed for most hypertrophic cardiomyopathy mutations would likely lead to severe diastolic dysfunction and may be the major physiological factors responsible for causing the restrictive cardiomyopathy phenotype in some of the genetically affected individuals.

Animals↗

Restrictive cardiomyopathy with atrioventricular conduction block resulting from a desmin mutation.

BACKGROUND: According to the predominant view, desmin mutations cause dilated cardiomyopathy (DCM). We evaluated a family with restrictive cardiomyopathy (RCM) associated with a novel desmin mutation and reviewed recent reports regarding the frequency of RCM in patients with desmin myopathy. METHODS: Cardiovascular examination was performed in three affected and five at-risk members of a family from Poland, histopathologic study of skeletal muscle biopsy was done in a single patient, and functional analysis of mutant desmin protein was carried out in cultured cells. RESULTS: Cardiovascular assessment led to the diagnosis of RCM in affected family members. Histopathological study of skeletal muscle biopsy revealed features characteristic of desmin myopathy. A novel desmin E413K mutation was identified in each affected family member, but not unrelated controls. The pathogenicity of the E413K mutation was confirmed in transfected cell cultures showing inability of mutant desmin to form a cellular filamentous network or support a pre-existing network formed by other intermediate filaments. Three-dimensional modeling and electrostatic calculations indicated that the E413K mutation located in a functionally unique domain of desmin molecule potentially disrupts intramolecular interactions. Analysis of previously reported observations indicates that RCM in desminopathy patients may be as frequent as DCM. CONCLUSIONS: A novel E413K mutation in desmin caused autosomal dominant RCM rather than DCM. The location of the E413K mutation at a highly conserved end of the alpha-helical rod domain may be related to the phenotypic differences from the previously described DCM-associated desmin mutations. Functional and structural analyses of mutant desmin allowed to identify likely pathogenic mechanisms.

Adult↗

Familial restrictive cardiomyopathy.

The cases of a father and daughter with idiopathic restrictive cardiomyopathy are described. In contrast to other forms of cardiomyopathy, this type is rarely familial.

Adult↗

How a left-to-right shunt may protect against haemodynamic deterioration in restrictive cardiomyopathy.

Today, more and more children with complex heart lesions and underlying cardiomyopathies reach adulthood. This results in a wide range of new clinical problems encountered in later life. In particular, idiopathic restrictive cardiomyopathy is initially treated by medication to reduce symptoms, but at end-stage disease, heart or heart-lung transplantation becomes unavoidable. We describe the case of a patient with restrictive cardiomyopathy and a persistent extra-cardiac left-to-right shunt, where we hypothesize that the shunt may protect against haemodynamic deterioration in end-stage restrictive cardiomyopathie.

Adult↗

Restrictive cardiomyopathy associated with the eosinophilia-myalgia syndrome.

OBJECTIVE: We report the first case of restrictive cardiomyopathy occurring in a patient with the eosinophilia-myalgia syndrome. DESIGN: In this article, we discuss the various clinical manifestations of the eosinophilia-myalgia syndrome. MATERIAL AND METHODS: In a 46-year-old woman with the eosinophilia-myalgia syndrome, orthopnea, chronic persistent edema, and severe dyspnea on exertion developed 2 years after she had discontinued use of L-tryptophan. Doppler echocardiography showed ventricular filling confined to early diastole and no atrial filling during ventricular systole--the Doppler hallmarks of restrictive disease. Right-sided cardiac catheterization revealed that the pulmonary wedge pressure equaled the pulmonary artery diastolic pressure and the mean right atrial pressure. A myocardial biopsy specimen showed dense endocardial fibrosis. Special immunofluorescent stains for eosinophilic granule major basic protein showed substantial deposition along the endocardial myocardial interface, an indication that eosinophils were present some time in the past. RESULTS: A follow-up telephone call 14 months after the patient's initial assessment at the Mayo Clinic revealed that she had class III symptoms of congestive heart failure. She was receiving high doses of three diuretics daily, and her condition had improved considerably since her first examination at our institution. CONCLUSION: Restrictive cardiomyopathy may occur in the setting of the eosinophilia-myalgia syndrome and should be considered in patients with this disease in whom exertional dyspnea and peripheral edema occur.

Cardiomyopathy, Restrictive↗

Differentiation of constrictive pericarditis and restrictive cardiomyopathy by radionuclide ventriculography.

Patterns of left ventricular diastolic filling in five patients with unoperated constrictive pericarditis, the same five patients following pericardiectomy, five patients with restrictive cardiomyopathy, and 14 healthy control subjects were studied by radionuclide ventriculography. Patients with constrictive pericarditis had more rapid peak left ventricular filling rates (mean 5.62, range 4.23 to 7.32 end-diastolic volumes [EDV] per second) compared to control subjects 3.44, range 2.62 to 4.45 EDV/sec, p less than 0.05). Heart rate-corrected first one-third and first one-half diastolic filling fractions were greater in patients with preoperative constrictive pericarditis compared to members of the restrictive cardiomyopathy and control groups p less than 0.05). Following pericardiectomy, patients with constrictive pericarditis had significant decreases in peak filling rate and corrected filling fractions, and all diastolic filling measurements were indistinguishable from those of control subjects. These noninvasively obtained data indicate that patients with preoperative constrictive pericarditis have an increased rate of left ventricular early diastolic filling compared to patients with restrictive cardiomyopathy and control subjects, and that these findings return to normal following surgical removal of the pericardium.

Adult↗

M-mode echocardiographic findings in children with idiopathic restrictive cardiomyopathy.

The M-mode echocardiographic findings in five pediatric patients, ages 4-15 years, with primary idiopathic restrictive cardiomyopathy, diagnosed by cardiac catheterization, and of 12 normal children (control group) are presented. The M-mode echocardiographic findings in patients with restrictive cardiomyopathy were (1) normal left and right ventricular end-diastolic dimension, (2) normal left ventricular posterior wall and interventricular septal thickness (three patients) or mild concentric hypertrophy (two patients), (3) normal opening and closing velocity of the mitral valve, (4) consistently enlarged left atrium (more than 40 mm) in all, and (5) right ventricular systolic time intervals compatible with pulmonary artery hypertension. The left ventricular ejection phase parameters (systolic time intervals, shortening fraction, and mean velocity of circumferential fiber shortening) were normal. Left ventricular relaxation phase parameters (diastolic function) were abnormal. The isovolumic relaxation time index was prolonged, 68 +/- 40 ms (+/- SD), in the study group as compared with 11 +/- 6 ms (+/- SD) in the control group (P less than 0.001). Percent relaxation of left ventricular posterior wall endocardium at 50% of diastole was decreased, 58 +/- 4% (+/- SD), in the study group as compared with 85 +/- 6% (+/- SD) in the control group (P less than 0.005). We conclude that M-mode echocardiography provides a relatively useful and specific noninvasive method for the diagnosis of primary restrictive cardiomyopathy in pediatric patients.

Adolescent↗

[Restrictive cardiomyopathy of the right ventricle: differential diagnosis. Series of three cases].

The cardiomyopathies are defined as a primary disease of the myocardium and occur in children as well as in adults. Restrictive cardiomyopathy is the least common type of cardiomyopathy and is characterized by the restriction of ventricular filling. This condition can affect one or both ventricles. The appropriate diagnostic tool includes a detailed clinical record supported by imaging and hemodynamic studies. The purpose of this study was to evaluate adult patients with suspicion of restrictive miocardiopathy of the right ventricle, from the out-patients clinic using echocardiogram, magnetic resonance imaging, and hemodynamic studies and to establish a differential diagnosis with other cardiovascular diseases. Between May 2003 to January 2006 three patients with different initial diagnoses, such as Ebstein's anomaly, interatrial septal defect, and tumor of the right ventricle were studied. However, once the protocol of the study was completed, the final diagnosis was of right ventricular restrictive cardiomyopathy by endomyocardial fibrosis.

Adult↗

Differentiation of constrictive pericarditis from restrictive cardiomyopathy: assessment of left ventricular diastolic velocities in longitudinal axis by Doppler tissue imaging.

OBJECTIVES: We sought to determine the utility of left ventricular expansion velocities in differentiating constrictive pericarditis from restrictive cardiomyopathy. BACKGROUND: Several studies have shown that left ventricular diastolic expansion is influenced by the elastic recoil forces of the myocardium. These forces are affected by intrinsic myocardial disease but should be preserved when diastole is impaired as a result of extrinsic causes. METHODS: Using Doppler tissue imaging, we measured peak early velocity of longitudinal axis expansion (Ea) in 8 patients with constrictive pericarditis, 7 patients with restriction and 15 normal volunteers. Transmitral early (E) and late (A) Doppler flow velocities, left ventricular systolic and diastolic volumes, ejection fraction and mitral annular M-mode displacement were also compared between the groups. RESULTS: The Ea value was significantly higher in normal subjects (14.5 +/- 4.7 cm/s [mean +/- SD]) and in patients with constriction (14.8 +/- 4.8 cm/s) than in those with restriction (5.1 +/- 1.4 cm/s, p < 0.001 constriction vs. restriction). There was weak correlation between Ea and the extent of annular displacement (r = 0.55, p = 0.004) and the E/A ratio (r = 0.44, p = 0.03). There was no correlation between Ea and E (r = 0.33, p = 0.07) or ejection fraction (r = 0.21, p = 0.26). By multivariate analysis, Ea was the best variable for differentiating constriction from restriction. CONCLUSIONS: Our study indicates that longitudinal axis expansion velocities are markedly reduced in patients with restrictive cardiomyopathy. The poor correlation found with transvalvular flow velocities suggests that Ea may be relatively preload independent. The measurement of longitudinal axis expansion velocities provides a clinically useful distinction between constrictive pericarditis and restrictive cardiomyopathy and may prove to be valuable in the study of diastolic function.

Adult↗

Cardiac amyloidosis, contrictive pericarditis and restrictive cardiomyopathy.

Cardiac amyloidosis is not characterized by a single hemodynamic pattern. Some of the cases present the clinical findings of restrictive cardiomyopathy and in these differentiation from constrictive pericarditis remains difficult in spite of the introduction of techniques designed to assess myocardial contractility and ventricular diastolic compliance. The clinical features and the demonstration of left ventricular diastolic pressure greater than right remain the most useful means of distinguishing restrictive cardiomyopathy from constrictive pericarditis. In other cases of cardiac amyloidosis the diastolic pressure is elevated throughout diastole and ventricular ejectile ability is lost. These cases do not simulate constrictive pericarditis and should not be classified as restrictive cardiomyopathy.

Amyloidosis↗