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Establishing disease causality for a novel gene variant in familial dilated cardiomyopathy using a functional in-vitro assay of regulated thin filaments and human cardiac myosin

机译:使用功能性细丝和人心肌肌球蛋白的功能性体外测定,确定家族性扩张型心肌病中新基因变异的疾病因果关系

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Background As next generation sequencing for the genetic diagnosis of cardiovascular disorders becomes more widely used, establishing causality for putative disease causing variants becomes increasingly relevant. Diseases of the cardiac sarcomere provide a particular challenge in this regard because of the complexity of assaying the effect of genetic variants in human cardiac contractile proteins. Results In this study we identified a novel variant R205Q in the cardiac troponin T gene (TNNT2). Carriers of the variant allele exhibited increased chamber volumes associated with decreased left ventricular ejection fraction. To clarify the causal role of this variant, we generated recombinant variant human protein and examined its calcium kinetics as well as the maximally activated ADP release of human β-cardiac myosin with regulated thin filaments containing the mutant troponin T. We found that the R205Q mutation significantly decreased the calcium sensitivity of the thin filament by altering the effective calcium dissociation kinetics. Conclusions The development of moderate throughput post-genomic assays is an essential step in the realization of the potential of next generation sequencing. Although technically challenging, biochemical and functional assays of human cardiac contractile proteins of the thin filament can be achieved and provide an orthogonal source of information to inform the question of causality for individual variants.
机译:背景技术随着用于心血管疾病的遗传诊断的下一代测序被越来越广泛地使用,建立引起推定疾病的变异的因果关系变得越来越重要。在这方面,由于分析人类心脏收缩蛋白中遗传变异的影响的复杂性,心脏肌小节的疾病提出了特别的挑战。结果在这项研究中,我们在心肌肌钙蛋白T基因(TNNT2)中鉴定了一个新的变体R205Q。变异等位基因的携带者表现出与减少的左心室射血分数相关的增加的腔室容积。为了阐明此变体的因果作用,我们生成了重组变体人蛋白并检查了其钙动力学以及最大的激活的人β-心脏肌球蛋白的ADP释放,其中含有调节型肌钙蛋白T的调节细丝。我们发现R205Q突变通过改变有效的钙解离动力学,显着降低了细丝的钙敏感性。结论开发中等通量的基因组后测定是实现下一代测序潜力的必不可少的步骤。尽管在技术上具有挑战性,但可以实现细丝的人心脏收缩蛋白的生化和功能测定,并提供正交信息源,以告知各个变体的因果关系问题。

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