Huang Kate, Ashraf Mishal, Rohani Leili, Luo Yinhan, Sacayanan Ardin, Huang Haojun, Haegert Anne, Volik Stanislav, Sar Funda, LeBihan Stéphane, Liew Janet, Backx Peter H, Roberts Jason D, Tibbits Glen F, Churko Jared M, Sanatani Shubhayan, Collins Colin, Brunham Liam R, Laksman Zachary
Centre for Heart Lung Innovation (K.H., M.A., L.R., Y.L., A.S., H.H., L.R.B., Z.L.), University of British Columbia, Vancouver.
Experimental Medicine Program, Department of Medicine (K.H., Y.L., H.H., L.R.B., Z.L.), University of British Columbia, Vancouver.
Circ Genom Precis Med. 2025 Feb;18(1):e004412. doi: 10.1161/CIRCGEN.123.004412. Epub 2025 Jan 24.
Protein-truncating mutations in the titin gene are associated with increased risk of atrial fibrillation. However, little is known about the underlying pathophysiology.
We identified a heterozygous titin truncating variant (TTNtv) in a patient with unexplained early onset atrial fibrillation and normal ventricular function. We generated patient-specific atrial- and ventricular-like induced pluripotent stem cell-derived cardiomyocytes and engineered heart tissue to evaluate the impact of the TTNtv on electrophysiology, sarcomere structure, contractility, and gene expression.
We demonstrate that the TTNtv increases susceptibility to pacing-induced arrhythmia, promotes sarcomere disorganization, and reduces contractile force in atrial induced pluripotent stem cell-derived cardiomyocytes compared with their CRISPR/Cas9-corrected isogenic controls. In ventricular induced pluripotent stem cell-derived cardiomyocytes, this variant was associated with abnormal electrophysiology and sarcomere organization without a reduction in contractile force compared with their isogenic controls. RNA-sequencing revealed an upregulation of cell adhesion and extracellular matrix genes in the presence of the TTNtv for both atrial and ventricular engineered heart tissues.
In a patient with unexplained atrial fibrillation, induced pluripotent stem cell-derived cardiomyocytes with a TTNtv showed structural and electrophysiological abnormalities in both atrial and ventricular models, while only atrial engineered heart tissues demonstrated reduced contractility. The observed chamber-specific effect suggests that structural disorganization and reduced contractile function may be associated with atrial myopathy in the presence of truncated titin.
肌联蛋白基因中的蛋白质截短突变与心房颤动风险增加相关。然而,其潜在的病理生理学机制知之甚少。
我们在一名原因不明的早发性心房颤动且心室功能正常的患者中鉴定出一种杂合的肌联蛋白截短变异体(TTNtv)。我们生成了患者特异性的心房样和心室样诱导多能干细胞衍生的心肌细胞以及工程化心脏组织,以评估TTNtv对电生理学、肌节结构、收缩性和基因表达的影响。
我们证明,与经CRISPR/Cas9校正的同基因对照相比,TTNtv增加了起搏诱导的心律失常易感性,促进了肌节紊乱,并降低了心房诱导多能干细胞衍生的心肌细胞的收缩力。在心室诱导多能干细胞衍生的心肌细胞中,与同基因对照相比,该变异体与异常的电生理学和肌节组织相关,但收缩力没有降低。RNA测序显示,对于心房和心室工程化心脏组织,在存在TTNtv的情况下,细胞粘附和细胞外基质基因上调。
在一名原因不明的心房颤动患者中,带有TTNtv的诱导多能干细胞衍生的心肌细胞在心房和心室模型中均表现出结构和电生理异常,而只有心房工程化心脏组织表现出收缩力降低。观察到的心室特异性效应表明,在存在截短肌联蛋白的情况下,结构紊乱和收缩功能降低可能与心房肌病有关。