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Dive into the research topics where Calum A. MacRae is active.

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Featured researches published by Calum A. MacRae.


The New England Journal of Medicine | 1999

Missense mutations in the rod domain of the lamin A/C gene as causes of dilated cardiomyopathy and conduction-system disease

Diane Fatkin; Calum A. MacRae; Takeshi Sasaki; Matthew R. Wolff; Maurizio Porcu; Michael P. Frenneaux; John Atherton; Humberto Vidaillet; Serena Spudich; Umberto De Girolami; Jonathan G. Seidman; Francesco Muntoni; G. W. F. Muehle; Wendy Johnson; Barbara McDonough; Christine E. Seidman

BACKGROUND Inherited mutations cause approximately 35 percent of cases of dilated cardiomyopathy; however, few genes associated with this disease have been identified. Previously, we located a gene defect that was responsible for autosomal dominant dilated cardiomyopathy and conduction-system disease on chromosome 1p1-q21, where nuclear-envelope proteins lamin A and lamin C are encoded by the LMNA (lamin A/C) gene. Mutations in the head or tail domain of this gene cause Emery-Dreifuss muscular dystrophy, a childhood-onset disease characterized by joint contractures and in some cases by abnormalities of cardiac conduction during adulthood. METHODS We evaluated 11 families with autosomal dominant dilated cardiomyopathy and conduction-system disease. Sequences of the lamin A/C exons were determined in probands from each family, and variants were confirmed by restriction-enzyme digestion. The genotypes of the family members were ascertained. RESULTS Five novel missense mutations were identified: four in the alpha-helical-rod domain of the lamin A/C gene, and one in the lamin C tail domain. Each mutation caused heritable, progressive conduction-system disease (sinus bradycardia, atrioventricular conduction block, or atrial arrhythmias) and dilated cardiomyopathy. Heart failure and sudden death occurred frequently within these families. No family members with mutations had either joint contractures or skeletal myopathy. Serum creatine kinase levels were normal in family members with mutations of the lamin rod but mildly elevated in some family members with a defect in the tail domain of lamin C. CONCLUSIONS Genetic defects in distinct domains of the nuclear-envelope proteins lamin A and lamin C selectively cause dilated cardiomyopathy with conduction-system disease or autosomal dominant Emery-Dreifuss muscular dystrophy. Missense mutations in the rod domain of the lamin A/C gene provide a genetic cause for dilated cardiomyopathy and indicate that this intermediate filament protein has an important role in cardiac conduction and contractility.


Cell | 1994

Alpha-tropomyosin and cardiac troponin T mutations cause familial hypertrophic cardiomyopathy: a disease of the sarcomere.

L Thierfelder; Hugh Watkins; Calum A. MacRae; Roger Lamas; William J. McKenna; Hans-Peter Vosberg; J.G. Seldman; Christine E. Seidman

We demonstrate that missense mutations (Asp175Asn; Glu180Gly) in the alpha-tropomyosin gene cause familial hypertrophic cardiomyopathy (FHC) linked to chromosome 15q2. These findings implicated components of the troponin complex as candidate genes at other FHC loci, particularly cardiac troponin T, which was mapped in this study to chromosome 1q. Missense mutations (Ile79Asn; Arg92Gln) and a mutation in the splice donor sequence of intron 15 of the cardiac troponin T gene are also shown to cause FHC. Because alpha-tropomyosin and cardiac troponin T as well as beta myosin heavy chain mutations cause the same phenotype, we conclude that FHC is a disease of the sarcomere. Further, because the splice site mutation is predicted to function as a null allele, we suggest that abnormal stoichiometry of sarcomeric proteins can cause cardiac hypertrophy.


Nature | 2007

Variants conferring risk of atrial fibrillation on chromosome 4q25.

Daniel F. Gudbjartsson; David O. Arnar; Anna Helgadottir; Solveig Gretarsdottir; Hilma Holm; Asgeir Sigurdsson; Adalbjorg Jonasdottir; Adam Baker; Gudmar Thorleifsson; Kristleifur Kristjansson; Arnar Palsson; Thorarinn Blondal; Patrick Sulem; Valgerdur M. Backman; Gudmundur A. Hardarson; Ebba Palsdottir; Agnar Helgason; Runa Sigurjonsdottir; Jon T. Sverrisson; Konstantinos Kostulas; Maggie C.Y. Ng; Larry Baum; Wing Yee So; Ka Sing Wong; Juliana C.N. Chan; Karen L. Furie; Steven M. Greenberg; Michelle Sale; Peter J. Kelly; Calum A. MacRae

Atrial fibrillation (AF) is the most common sustained cardiac arrhythmia in humans and is characterized by chaotic electrical activity of the atria. It affects one in ten individuals over the age of 80 years, causes significant morbidity and is an independent predictor of mortality. Recent studies have provided evidence of a genetic contribution to AF. Mutations in potassium-channel genes have been associated with familial AF but account for only a small fraction of all cases of AF. We have performed a genome-wide association scan, followed by replication studies in three populations of European descent and a Chinese population from Hong Kong and find a strong association between two sequence variants on chromosome 4q25 and AF. Here we show that about 35% of individuals of European descent have at least one of the variants and that the risk of AF increases by 1.72 and 1.39 per copy. The association with the stronger variant is replicated in the Chinese population, where it is carried by 75% of individuals and the risk of AF is increased by 1.42 per copy. A stronger association was observed in individuals with typical atrial flutter. Both variants are adjacent to PITX2, which is known to have a critical function in left–right asymmetry of the heart.


Nature Genetics | 2004

Mutations in the desmosomal protein plakophilin-2 are common in arrhythmogenic right ventricular cardiomyopathy

Brenda Gerull; Arnd Heuser; Thomas Wichter; Matthias Paul; Craig T. Basson; Deborah A. McDermott; Bruce B. Lerman; Steve Markowitz; Patrick T. Ellinor; Calum A. MacRae; Stefan Peters; Katja S. Grossmann; Beate Michely; Sabine Sasse-Klaassen; Walter Birchmeier; Rainer Dietz; Günter Breithardt; Eric Schulze-Bahr; Ludwig Thierfelder

Arrhythmogenic right ventricular cardiomyopathy (ARVC) is associated with fibrofatty replacement of cardiac myocytes, ventricular tachyarrhythmias and sudden cardiac death. In 32 of 120 unrelated individuals with ARVC, we identified heterozygous mutations in PKP2, which encodes plakophilin-2, an essential armadillo-repeat protein of the cardiac desmosome. In two kindreds with ARVC, disease was incompletely penetrant in most carriers of PKP2 mutations.


Nature | 2010

Primary contribution to zebrafish heart regeneration by gata4+ cardiomyocytes

Kazu Kikuchi; Jennifer E. Holdway; Andreas A. Werdich; Ryan M. Anderson; Yi Fang; Gregory F. Egnaczyk; Todd Evans; Calum A. MacRae; Didier Y. R. Stainier; Kenneth D. Poss

Recent studies indicate that mammals, including humans, maintain some capacity to renew cardiomyocytes throughout postnatal life. Yet, there is little or no significant cardiac muscle regeneration after an injury such as acute myocardial infarction. By contrast, zebrafish efficiently regenerate lost cardiac muscle, providing a model for understanding how natural heart regeneration may be blocked or enhanced. In the absence of lineage-tracing technology applicable to adult zebrafish, the cellular origins of newly regenerated cardiac muscle have remained unclear. Using new genetic fate-mapping approaches, here we identify a population of cardiomyocytes that become activated after resection of the ventricular apex and contribute prominently to cardiac muscle regeneration. Through the use of a transgenic reporter strain, we found that cardiomyocytes throughout the subepicardial ventricular layer trigger expression of the embryonic cardiogenesis gene gata4 within a week of trauma, before expression localizes to proliferating cardiomyocytes surrounding and within the injury site. Cre-recombinase-based lineage-tracing of cells expressing gata4 before evident regeneration, or of cells expressing the contractile gene cmlc2 before injury, each labelled most cardiac muscle in the ensuing regenerate. By optical voltage mapping of surface myocardium in whole ventricles, we found that electrical conduction is re-established between existing and regenerated cardiomyocytes between 2 and 4 weeks post-injury. After injury and prolonged fibroblast growth factor receptor inhibition to arrest cardiac regeneration and enable scar formation, experimental release of the signalling block led to gata4 expression and morphological improvement of the injured ventricular wall without loss of scar tissue. Our results indicate that electrically coupled cardiac muscle regenerates after resection injury, primarily through activation and expansion of cardiomyocyte populations. These findings have implications for promoting regeneration of the injured human heart.


Nature Genetics | 2010

Common variants in KCNN3 are associated with lone atrial fibrillation

Patrick T. Ellinor; Kathryn L. Lunetta; Nicole L. Glazer; Arne Pfeufer; Alvaro Alonso; Mina K. Chung; Moritz F. Sinner; Paul I. W. de Bakker; Martina Mueller; Steven A. Lubitz; Ervin R. Fox; Dawood Darbar; Nicholas L. Smith; Jonathan D. Smith; Renate B. Schnabel; Elsayed Z. Soliman; Kenneth Rice; David R. Van Wagoner; Britt-M. Beckmann; Charlotte van Noord; Ke Wang; Georg Ehret; Jerome I. Rotter; Stanley L. Hazen; Gerhard Steinbeck; Albert V. Smith; Lenore J. Launer; Tamara B. Harris; Seiko Makino; Mari Nelis

Atrial fibrillation (AF) is the most common sustained arrhythmia. Previous studies have identified several genetic loci associated with typical AF. We sought to identify common genetic variants underlying lone AF. This condition affects a subset of individuals without overt heart disease and with an increased heritability of AF. We report a meta-analysis of genome-wide association studies conducted using 1,335 individuals with lone AF (cases) and 12,844 unaffected individuals (referents). Cases were obtained from the German AF Network, Heart and Vascular Health Study, the Atherosclerosis Risk in Communities Study, the Cleveland Clinic and Massachusetts General Hospital. We identified an association on chromosome 1q21 to lone AF (rs13376333, adjusted odds ratio = 1.56; P = 6.3 × 10−12), and we replicated this association in two independent cohorts with lone AF (overall combined odds ratio = 1.52, 95% CI 1.40–1.64; P = 1.83 × 10−21). rs13376333 is intronic to KCNN3, which encodes a potassium channel protein involved in atrial repolarization.


Nature Biotechnology | 2004

Chemical suppression of a genetic mutation in a zebrafish model of aortic coarctation

Randall T. Peterson; Stanley Y. Shaw; Travis A. Peterson; David J. Milan; Tao P. Zhong; Stuart L. Schreiber; Calum A. MacRae; Mark C. Fishman

Conventional drug discovery approaches require a priori selection of an appropriate molecular target, but it is often not obvious which biological pathways must be targeted to reverse a disease phenotype. Phenotype-based screens offer the potential to identify pathways and potential therapies that influence disease processes. The zebrafish mutation gridlock (grl, affecting the gene hey2) disrupts aortic blood flow in a region and physiological manner akin to aortic coarctation in humans. Here we use a whole-organism, phenotype-based, small-molecule screen to discover a class of compounds that suppress the coarctation phenotype and permit survival to adulthood. These compounds function during the specification and migration of angioblasts. They act to upregulate expression of vascular endothelial growth factor (VEGF), and the activation of the VEGF pathway is sufficient to suppress the gridlock phenotype. Thus, organism-based screens allow the discovery of small molecules that ameliorate complex dysmorphic syndromes even without targeting the affected gene directly.


Circulation | 2003

Drugs That Induce Repolarization Abnormalities Cause Bradycardia in Zebrafish

David J. Milan; Travis A. Peterson; Jeremy N. Ruskin; Randall T. Peterson; Calum A. MacRae

Background—Drug-induced QT prolongation and torsades de pointes remain significant and often unpredictable clinical problems. Current in vitro preclinical assays are limited by biological simplicity, and in vivo models suffer from expense and low throughput. Methods and Results—During a screen for the effects of 100 small molecules on the heart rate of the zebrafish, Danio rerio, we found that drugs that cause QT prolongation in humans consistently caused bradycardia and AV block in the zebrafish. Of 23 such drugs tested, 18 were positive in this initial screen. Poor absorption explained 4 of 5 false-negative results, as demonstrated by microinjection. Overall, 22 of 23 compounds that cause repolarization abnormalities were positive in this assay. Antisense “knockdown” of the zebrafish KCNH2 ortholog yielded bradycardia in a dose dependent manner confirming the effects of reduction of repolarizing potassium current in this model. Classical drug-drug interactions between erythromycin and cisapride, as well as cimetidine and terfenadine, were also reproduced. Conclusion—This simple high-throughput assay is a promising addition to the repertoire of preclinical tests for drug-induced repolarization abnormalities. The genetic tractability of the zebrafish will allow the exploration of heritable modifiers of such drug effects.


Nature Medicine | 2012

RBM20 , a gene for hereditary cardiomyopathy, regulates titin splicing

Wei Guo; Sebastian Schafer; Marion L. Greaser; Michael H. Radke; Martin Liss; Thirupugal Govindarajan; Henrike Maatz; Herbert Schulz; Shijun Li; Amanda M. Parrish; Vita Dauksaite; Padmanabhan Vakeel; Sabine Klaassen; Brenda Gerull; Ludwig Thierfelder; Vera Regitz-Zagrosek; Timothy A. Hacker; Kurt W. Saupe; G. William Dec; Patrick T. Ellinor; Calum A. MacRae; Bastian Spallek; Robert S. Fischer; Andreas Perrot; Cemil Özcelik; Kathrin Saar; Norbert Hubner; Michael Gotthardt

Alternative splicing has a major role in cardiac adaptive responses, as exemplified by the isoform switch of the sarcomeric protein titin, which adjusts ventricular filling. By positional cloning using a previously characterized rat strain with altered titin mRNA splicing, we identified a loss-of-function mutation in the gene encoding RNA binding motif protein 20 (Rbm20) as the underlying cause of pathological titin isoform expression. The phenotype of Rbm20-deficient rats resembled the pathology seen in individuals with dilated cardiomyopathy caused by RBM20 mutations. Deep sequencing of the human and rat cardiac transcriptome revealed an RBM20-dependent regulation of alternative splicing. In addition to titin (TTN), we identified a set of 30 genes with conserved splicing regulation between humans and rats. This network is enriched for genes that have previously been linked to cardiomyopathy, ion homeostasis and sarcomere biology. Our studies emphasize the key role of post-transcriptional regulation in cardiac function and provide mechanistic insights into the pathogenesis of human heart failure.


Human Genetics | 2005

Familial aggregation in lone atrial fibrillation

Patrick T. Ellinor; Danita M. Yoerger; Jeremy N. Ruskin; Calum A. MacRae

Atrial fibrillation (AF) is the most common clinical arrhythmia and a major risk factor for stroke. To investigate the role of genetic factors in a typical clinical population, we determined the extent of familial aggregation in patients with lone AF. To estimate the relative risk to family members, the prevalence of AF for each class of relative was compared to the prevalence in the comparable age and sex group from the general population. Family members had an increased relative risk of AF compared to the general population (risk ratio; 95% confidence intervals): sons (8.1; 2.0–32), daughters (9.5; 1.3–67), brothers (70; 47–102), sisters (34; 14–80), mothers (4.0; 2.5–6.5) and fathers (2.0; 1.2–3.6). Relatives of probands with lone AF are at a substantially increased risk of developing this arrhythmia suggesting a Mendelian genetic contribution to the etiology of this common trait.

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Christine E. Seidman

Brigham and Women's Hospital

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Andreas A. Werdich

Brigham and Women's Hospital

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Eva Plovie

Brigham and Women's Hospital

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Ludwig Thierfelder

Max Delbrück Center for Molecular Medicine

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