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Genetic and phenotypic characterization of mutations in myosin-binding protein C (MYBPC3) in 81 families with familial hypertrophic cardiomyopathy: total or partial haploinsufficiency.

Mutations in the MYBPC3 gene, encoding the sarcomere protein myosin-binding protein C, are among the most frequent causes of autosomal dominant familial hypertrophic cardiomyopathy (FHC). We studied the frequency, type, and pathogenetic mechanism of MYBPC3 mutations in an unselected cohort of 81 FHC families, consecutively enrolled at a tertiary referral center. Nine mutations, six of which were novel, were found in 10 (12.3%) of the families using single-strand conformation polymorphism and DNA sequencing. A frameshift mutation in exon 2 clearly suggests that haploinsufficiency is a pathogenetic mechanism in FHC. In addition, splice site mutations in exon 6 and intron 31, a deletion in exon 13, and a nonsense mutation in exon 25, all lead to premature termination codons, most likely causing loss of function and haploinsufficiency. Furthermore, there were two missense mutations (D228N and A833 T) and one in-frame deletion (DeltaLys813). A considerable intrafamilial variation in phenotypic expression of MYBPC3-based FHC was noted, and we suggest that mutations influencing stability of mRNA could play a role in the variable penetrance and expressivity of the disease, perhaps via partial haploinsuffciency.

Adult↗

Inherited disorders of contractile proteins in skeletal and cardiac muscle.

The functional unit of muscle contraction is the sarcomere, a structure of strict cytoarchitecture constructed from a relatively small number of mostly identified contractile proteins. The messenger RNAs for seven muscle proteins combined together account for 20% of all the messenger RNA in mature muscle fibres. It should be anticipated that mutations in these and other highly expressed messages or proteins will cause inherited muscle disorders. In recent years, but especially in the past 12 months, disorders associated with some of these proteins have been identified. Familial hypertrophic cardiomyopathy, central core disease, nemaline myopathy, and autosomal recessive limb-girdle muscular dystrophy have all been shown to involve mutations in proteins associated with the sarcomere.

Contractile Proteins↗

Mutations that alter the surface charge of alpha-tropomyosin are associated with dilated cardiomyopathy.

Proteins in cardiac myocytes assemble into contractile units known as sarcomeres. Contractile force is generated by interaction between sarcomeric thick and thin filaments. Thin filaments also transmit force within and between myocytes. Mutations in genes encoding the thin filament proteins actin and tropomyosin cause hypertrophic cardiomyopathy. Mutations affecting functionally distinct domains of actin also cause dilated cardiomyopathy (DCM). We used a non-positional candidate gene approach to test further the hypothesis that dysfunction of sarcomeric thin filaments, due to different mutations in the same gene, can lead to either hypertrophic or dilated cardiomyopathy. Mutational analyses of alpha-tropomyosin 1 were performed in patients with idiopathic DCM. We identified two mutations that alter highly conserved residues and that, unlike hypertrophic cardiomyopathy-associated mutations, cause localized charge reversal on the surface of tropomyosin. Therefore, substitution of different amino acid residues in the same thin filament proteins is associated with the distinct phenotypes of cardiac hypertrophy or congestive heart failure.

Adult↗

Sarcomeric genotyping in hypertrophic cardiomyopathy.

OBJECTIVE: To pool results from studies of patients with hypertrophic cardiomyopathy (HCM) to elucidate important phenotypic differences among genotypes. MATERIAL AND METHODS: Data published from November 1998 through November 2004 were gathered and compared from unrelated study population genotyping studies from the Mayo Clinic (Rochester, Minn), Harvard Medical School (Boston, Mass), France, Germany, Sweden, Finland, and Spain. Standard statistical analysis techniques were used to pool and compare data across genotypes with respect to frequency of mutations, age at diagnosis, and degree of hypertrophy (left ventricular wall thickness). RESULTS: The French study population harbored the highest frequency of mutations (61%), followed by the Mayo Clinic (38%), Harvard Medical School (36%), and Swedish (30%) study populations. For every study population, mutations in myosin binding protein C (MYBPC3) were the most common cause of HCM. Patients with a family history of HCM had mutations more frequently than those without. This pooled analysis revealed no statistically significant differences in left ventricular wall thickness or in mean age at diagnosis across all genotypes. CONCLUSIONS: Differentiation of sarcomeric genotypes, such as MYBPC3-HCM and MYH7-HCM, is not possible on the basis of currently reported phenotypic data. A myriad of genetic and/or environmental modifiers in addition to the primary disease-causing genetic substrate must play an important role in determining a patient's particular phenotype.

Cardiomyopathy, Hypertrophic↗

Cytoskeletal defects in cardiomyopathy.

Genetic studies of cardiomyopathy and muscular dystrophy have emphasized the importance of the striated myocyte cytoskeleton. Cytoskeletal defects produce myopathies through a combination of structural and signaling mechanisms. Broadly, the cytoskeletal proteins defective in these myopathic syndromes can be classified into categories based on their intracellular locations. The first category includes proteins of the plasma membrane that interact with both subsarcolemmal and extracellular matrix proteins. The second category, generally associated with hypertrophic cardiomyopathies, includes proteins of the sarcomere. The last, newly emerging, category includes proteins of the inner nuclear membrane. In this review, we will examine the genetic defects that lead to cardiomyopathy and the potential means by which these varied proteins normally maintain the structural integrity of myocytes.

Animals↗

The role of cytoskeletal proteins in cardiomyopathies.

Cardiomyopathies are serious heart muscle disorders in children and adults, which result in morbidity and premature death. These disorders include hypertrophic cardiomyopathy, dilated cardiomyopathy and restrictive cardiomyopathy. Recently, mutations in seven genes, all encoding sarcomeric proteins, have been identified as causes of familial hypertrophic cardiomyopathy. The genes include those encoding the beta-myosin heavy chain, alpha-tropomyosin, cardiac troponin T, myosin binding protein-C, myosin essential light chain, myosin regulatory light chain, and troponin I. Advances in the understanding of dilated cardiomyopathy have been made recently as well and it appears as if cytoskeletal proteins play a central role. Dystrophin has been identified as the gene responsible for X-linked dilated cardiomyopathy and this protein, which is also responsible for Duchenne and Becker muscular dystrophy, plays an important role in myocyte and cardiomyocyte function. Mutations in other cytoskeletal proteins such as metavinculin, alpha-dystroglycan, alpha- and gamma-sarcoglycan, and muscle LIM protein have also been found to result in dilated cardiomyopathy, suggesting that cytoskeletal proteins play a central role in cardiac function.

Cardiomyopathies↗

Myosin binding protein C: structural abnormalities in familial hypertrophic cardiomyopathy.

The muscle protein myosin binding protein C (MyBPC) is a large multi-domain protein whose role in the sarcomere is complex and not yet fully understood. Mutations in MyBPC are strongly associated with the heart disease familial hypertrophic cardiomyopathy (FHC) and these experiments of nature have provided some insight into the intricate workings of this protein in the heart. While some regions of the MyBPC molecule have been assigned a function in the regulation of muscle contraction, the interaction of other regions with various parts of the myosin molecule and the sarcomeric proteins, actin and titin, remain obscure. In addition, several intra-domain interactions between adjacent MyBPC molecules have been identified. Although the basic structure of the molecule (a series of immunoglobulin and fibronectin domains) has been elucidated, the assembly of MyBPC in the sarcomere is a topic for debate. By analysing the MyBPC sequence with respect to FHC-causing mutations it is possible to identify individual residues or regions of each domain that may be important either for binding or regulation. This review looks at the current literature, in concert with alignments and the structural models of MyBPC, in an attempt to understand how FHC mutations may lead to the disease state.

Amino Acid Sequence↗

Different expressivity of a ventricular essential myosin light chain gene Ala57Gly mutation in familial hypertrophic cardiomyopathy.

BACKGROUND: Familial hypertrophic cardiomyopathy (HCM) is a clinically and genetically heterogeneous disease of the sarcomere. Molecular genetic studies have shown that familial HCM involves mutations in 8 different genes that encode proteins of the myofibrillar apparatus. METHODS: We thoroughly searched these genes to find the mutations in 38 probands of unrelated families with familial HCM. RESULTS: We found a novel missense mutation that resulted in Ala57Gly amino acid substitution of the ventricular essential myosin light chain (vMLC1) gene in two unrelated Korean families with familial HCM and one Japanese patient. The mutated site is located in the putative helix-loop-helix region (named EF-hand domain) of the calcium-binding site that is highly conserved in vMLC1 isoforms across the various species. The phenotype of this mutation in the affected families is a classic asymmetric septal hypertrophy, and the disease penetrance in genotyped members older than 18 years is 78%. In one Korean family a 42-year-old woman and two brothers (34 and 38 years old) with the mutation had fully expressed the disease, but two sisters (39 and 29 years old) with the mutation had no phenotypic expression of HCM. CONCLUSIONS: Ala57Gly mutation in the vMLC1 gene may exhibit the classic form of familial HCM and widely different penetration of the disease phenotype in the family members with mutation, especially in women.

Adult↗

The "final common pathway" hypothesis and inherited cardiovascular disease. The role of cytoskeletal proteins in dilated cardiomyopathy.

The genetic basis of a number of inherited cardiovascular diseases has been elucidated over the last few years, including the long QT syndromes, hypertrophic cardiomyopathy and dilated cardiomyopathy. While genetic heterogeneity has been demonstrated in most of these diseases, a pattern has emerged, specifically that genes encoding proteins with similar functions or involved in the same pathway are responsible for a particular disease or syndrome. Based on this observation we proposed the "final common pathway" hypothesis. In the case of the arrhythmogenic disorders, the long QT syndromes and Brugada syndrome, mutations have been described in a number of ion channel proteins, including cardiac potassium (KVLQT1, HERG and minK) and sodium (SCN5A) channels. Thus, using the "final common pathway" hypothesis we have proposed these diseases to be "ion channelopathies". Hypertrophic cardiomyopathy appears to be a disease of the sarcomere ("sarcomyopathy") since all the disease-causing mutations have been identified in the gene encoding many of the sarcomeric proteins, including beta-myosin heavy chain, alpha-tropomyosin, troponin I and troponin T, as well as in actin, close to the beta-myosin heavy chain binding site. The genes responsible for familial dilated cardiomyopathy have been less well characterized. For X-linked dilated cardiomyopathy, mutations in the dystrophin and G4.5 genes have been reported. In addition, mutations in actin (close to the dystrophin binding domain) and desmin, a component of the intermediate filaments, have been reported. However, the genes at a further 6 loci associated with autosomal dominant dilated cardiomyopathy (associated with conduction disease in 2 cases) remain unidentified. Due to the mutations in dystrophin, actin and desmin, we have proposed that dilated cardiomyopathy is a "cytoskeletalopathy", and we are currently investigating the involvement of these genes in patients.

Cardiomyopathy, Dilated↗

Hypertrophic cardiomyopathy: from gene defect to clinical disease.

Major advances have been made over the last decade in our understanding of the molecular basis of several cardiac conditions. Hypertrophic cardiomyopathy (HCM) was the first cardiac disorder in which a genetic basis was identified and as such, has acted as a paradigm for the study of an inherited cardiac disorder. HCM can result in clinical symptoms ranging from no symptoms to severe heart failure and premature sudden death. HCM is the commonest cause of sudden death in those aged less than 35 years, including competitive athletes. At least ten genes have now been identified, defects in which cause HCM. All of these genes encode proteins which comprise the basic contractile unit of the heart, i.e. the sarcomere. While much is now known about which genes cause disease and the various clinical presentations, very little is known about how these gene defects cause disease, and what factors modify the expression of the mutant genes. Studies in both cell culture and animal models of HCM are now beginning to shed light on the signalling pathways involved in HCM, and the role of both environmental and genetic modifying factors. Understanding these mechanisms will ultimately improve our knowledge of the basic biology of heart muscle function, and will therefore provide new avenues for treating cardiovascular disease in man.

Animals↗

Ectopic expression of tropomyosin promotes myofibrillogenesis in mutant axolotl hearts.

Expression of tropomyosin protein, an essential component of the thin filament, has been found to be drastically reduced in cardiac mutant hearts of the Mexican axolotl (Ambystoma mexicanum) with no formation of sarcomeric myofibrils. Therefore, this naturally occurring cardiac mutation is an appropriate model to examine the effects of delivering tropomyosin protein or tropomyosin cDNA into the deficient tissue. In this study, we describe the replacement of tropomyosin by using a cationic liposome transfection technique applied to whole hearts in vitro. When mouse alpha-tropomyosin cDNA under the control of a cardiac-specific alpha-myosin heavy chain promoter was transfected into the mutant hearts, tropomyosin expression was enhanced resulting in the formation of well-organized sarcomeric myofibrils. Transfection of a beta-tropomyosin construct under control of the same promoter did not result in enhanced organization of the myofibrils. Transfection of a beta-galactosidase reporter gene did not result in the formation of organized myofibrils or increased tropomyosin expression. These results demonstrate the importance of alpha-tropomyosin to the phenotype of this mutation and to normal myofibril formation. Moreover, we have shown that a crucial contractile protein can be ectopically expressed in cardiac muscle that is deficient in this protein, with the resulting formation of organized sarcomeres.

Ambystoma↗

Myosin binding protein C mutations and compound heterozygosity in hypertrophic cardiomyopathy.

OBJECTIVES: We sought to determine the frequency and phenotype of mutations in myosin binding protein C (MYBPC3) in a large outpatient cohort of patients with hypertrophic cardiomyopathy (HCM) seen at our tertiary referral center. BACKGROUND: Mutations in MYBPC3 are one of the most frequent genetic causes of HCM and have been associated with variable onset of disease and prognosis. However, the frequency of mutations and associated clinical presentation have not been established in a large, unrelated cohort of patients. METHODS: Using deoxyribonucleic acid from 389 unrelated patients with HCM, each protein coding exon of MYBPC3 was analyzed for mutations by polymerase chain reaction, denaturing high-performance liquid chromatography, and direct deoxyribonucleic acid sequencing. Clinical data were extracted from patient records blinded to patient genotype. RESULTS: Of 389 patients with HCM, 71 (18%) had mutations in MYBPC3. In all, 46 mutations were identified, 33 of which were novel (72%). Patients with MYBPC3 mutations did not differ significantly from patients with thick filament-HCM, thin filament-HCM, or genotype-negative HCM with respect to age at diagnosis, degree of hypertrophy, incidence of myectomy, or family history of HCM or sudden death. Patients with multiple mutations (n = 10, 2.6%) had the most severe disease presentation. CONCLUSIONS: This study defines the frequency and associated phenotype for MYBPC3 and/or multiple mutations in HCM in the largest cohort to date. In this cohort, unrelated patients with MYBPC3-HCM virtually mimicked the phenotype of those with mutations in the beta-myosin heavy chain. Patients with multiple mutations had the most severe phenotype.

Adolescent↗

Molecular classification of nemaline myopathies: "nontyping" specimens exhibit unique patterns of gene expression.

Nemaline myopathy (NM) is a slowly progressive or nonprogressive neuromuscular disorder caused by mutations in genes encoding skeletal muscle sarcomeric thin filament proteins. It is characterized by great heterogeneity at the clinical, histopathological, and genetic level. Although multiple molecular pathways are commonly affected in all NM patients, little is known about the molecular characteristics of muscles from patients in different NM subgroups. We have analyzed a group of global gene expression data sets for transcriptional patterns characteristic of particular nemaline myopathy classes. Differential expression between disease subgroups was primarily seen in mitochondrial-, structural-, and transcription-related genes. Multiple lines of evidence support the hypothesis that muscles from cases with "nontyping" NM, although clinically classified as typical NM, share a unique pathophysiological state and are characterized by distinct patterns of gene expression. Determination of the specific molecular differences in NM subgroups may eventually lead to improved prognostic determinations and treatment of these patients.

Base Sequence↗

Sudden death in young athletes: HCM or ARVC?

Sudden non-traumatic death in young athletes is due to underlying congenital/inherited cardiac diseases in over 80% of cases. The two commonest conditions leading to sudden cardiac death in athletes below the age of 25 years are hypertrophic cardiomyopathy (HCM) and arrhythmogenic right ventricular cardiomyopathy (ARVC). Hypertrophic cardiomyopathy is caused by mutations in genes, which code for sarcomeric contractile proteins. It can present with symptoms such as palpitation, presyncope or syncope. In a small number of cases, sudden death is the first clinical manifestation of the condition. It is well established that HCM accounts for over half of all cases sudden cardiac death in young individuals below 25 years of age. The management of HCM broadly encompasses symptom control, familial evaluation and the prevention of sudden death. Arrhythmogenic right ventricular cardiomyopathy, similarly, is a genetic disorder of the heart muscle and leads to symptoms such as palpitation and syncope and more rarely sudden death. The diagnosis of ARVC is most likely underestimated due to the lack of a single diagnostic test and subtle morphological changes in some cases. The diagnosis is based on clinical and family history and non-invasive investigations. The physiological adaptations seen in some athletes, as a response to physical training, may resemble phenotypically mild forms HCM and ARVC. Therefore, a diagnostic algorithm enabling this differentiation would be of importance especially bearing in mind the consequences of a misdiagnosis.

Adolescent↗

The natural history of left ventricular wall thickening in hypertrophic cardiomyopathy.

BACKGROUND: Hypertrophic cardiomyopathy (HCM) is associated with mutations of genes coding for major sarcomeric proteins, but the mechanism of hypertrophy is unknown. As hypertrophy may not develop until adolescence, an altered response to physiological growth stimuli may regulate the hypertrophy process. AIMS: This study examined the relationship between age and changes in left ventricular (LV) wall thickness in patients with HCM. METHODS: Forty-three patients who had definite electrocardiographic and echocardiographic evidence of HCM were studied with serial 2D and M-mode echocardiograms at least two years apart (mean interval 5.5 +/- 3.0 years). LV cavity dimensions, septal and posterior wall thicknesses, and LV mass indices were compared with data from an age- and gender-matched control group. RESULTS: In patients with HCM aged ten to 20 years (n = 9), there was an increase in septal wall thickness during the study period from 15.9 +/- 6.2 mm to 19.3 +/- 2.1 mm (p < 0.01). This increase (3.4 +/- 2.5 mm) greatly exceeded the change in septal thickness observed in the control group between the ages of ten and 20 years (0.8 +/- 0.3 mm, p < 0.01). There was a lesser increase in posterior wall thickness from 9.8 +/- 2.1 mm to 11.5 +/- 3.5 mm (p = 0.07). In patients with HCM aged 21-40 years (n = 11), there was also an increase in septal wall thickness during the study period from 16.0 +/- 2.2 mm to 17.8 +/- 3.0 mm (p < 0.05), but no change in septal thickness in the control group. In contrast, the patients aged > 40 years (n = 23) showed no significant change in either septal or posterior wall thickness during the study period. LV mass index increased in the ten to 20 years age group from 128 +/- 24 g/m2 to 164 +/- 20 g/m2 (p = 0.01), but this increase was not observed in the older age groups. CONCLUSIONS: LV hypertrophy is progressive, particularly in the septum, during adolescence and early adult life in patients with HCM. As progressive hypertrophy may continue after somatic growth has ceased, an abnormal myocardial response to physiological growth regulators is less likely to be the principal stimulus to hypertrophy. Gene-gene interactions, changes in haemodynamic load or environmental factors may modulate the development of hypertrophy. Serial measurements of ventricular wall thickness in the first two decades of life, and probably until the fourth decade of life are advisable in patients suspected of having HCM.

Adolescent↗

In vivo modeling of myosin binding protein C familial hypertrophic cardiomyopathy.

Myosin binding protein C (MyBP-C) is an integral part of the striated muscle sarcomere. As is the case for other sarcomeric genes in human populations, multiple mutations within the gene have been linked to familial hypertrophic cardiomyopathy. Although some MyBP-C lesions are the result of missense mutations, most show truncated polypeptides lacking either the myosin or myosin and titin binding sites. Previously, we generated transgenic (TG) mice with cardiac-specific expression of a MyBP-C mutant lacking the myosin and titin binding domains. Surprisingly, the mutant protein was stable and made up a majority of the MyBP-C species, with concomitant reductions in endogenous MyBP-C such that overall MyBP-C stoichiometry was conserved. In the present study, we created a second series of TG mice that express, in the heart, a mutant MyBP-C lacking only the myosin binding site. In contrast to the previous data for the MyBP-C lacking both titin and myosin binding sites, only very modest levels of protein were found, consistent with data obtained from human biopsies in which mutated MyBP-C could not be detected. Despite normal levels of wild-type MyBP-C, there were significant changes in the structure and ultrastructure of the heart. Fiber mechanics showed decreased unloading shortening velocity, maximum shortening velocity, and relative maximal power output.

Animals↗

Genetic engineering and therapy for inherited and acquired cardiomyopathies.

The cardiac myofilaments consist of a highly ordered assembly of proteins that collectively generate force in a calcium-dependent manner. Defects in myofilament function and its regulation have been implicated in various forms of acquired and inherited human heart disease. For example, during cardiac ischemia, cardiac myocyte contractile performance is dramatically downregulated due in part to a reduced sensitivity of the myofilaments to calcium under acidic pH conditions. Over the last several years, the thin filament regulatory protein, troponin I, has been identified as an important mediator of this response. Mutations in troponin I and other sarcomere genes are also linked to several distinct inherited cardiomyopathic phenotypes, including hypertrophic, dilated, and restrictive cardiomyopathies. With the cardiac sarcomere emerging as a central player for such a diverse array of human heart diseases, genetic-based strategies that target the myofilament will likely have broad therapeutic potential. The development of safe vector systems for efficient gene delivery will be a critical hurdle to overcome before these types of therapies can be successfully applied. Nonetheless, studies focusing on the principles of acute genetic engineering of the sarcomere hold value as they lay the essential foundation on which to build potential gene-based therapies for heart disease.

Acidosis↗

Mutations of the slow muscle alpha-tropomyosin gene, TPM3, are a rare cause of nemaline myopathy.

The alpha-tropomyosin-3 (TPM3) gene was screened in 40 unrelated patients with nemaline myopathy (NM). A single compound heterozygous patient was identified carrying one mutation that converts the stop codon to a serine and a second splicing mutation that is predicted to prevent inclusion of skeletal muscle exon IX. TPM3 mutations are a rare cause of NM, probably accounting for less than 3% of cases. The severity of cases with TPM3 mutations may vary from severe infantile to late childhood onset, slowly progressive forms.

Amino Acid Substitution↗