Key result
Zebrafish models of titin-truncating variants demonstrated that exon usage accounts for exon-dependent effects on sarcomere assembly and susceptibility to biomechanical stress.
This zebrafish model of titin-truncating variants demonstrates that allelic heterogeneity in dilated cardiomyopathy is likely driven by differential exon usage rather than toxic peptides, providing a framework for understanding adult DCM.
Does not alter clinical management of titin-related DCM; leaves open human translation of exon-dependent mechanisms.
Titin-truncating variants (TTNtvs) are the major cause of dilated cardiomyopathy (DCM); however, allelic heterogeneity (TTNtvs in different exons) results in variable phenotypes, and remains a major hurdle for disease diagnosis and therapy. Here, we generated a panel of ttn mutants in zebrafish. Four single deletion mutants in ttn.2 or ttn.1 resulted in four phenotypes and three double ttn.2/ttn.1 mutants exhibited more severe phenotypes in somites. Protein analysis identified ttnxu071 as a near-null mutant and the other six mutants as hypomorphic alleles. Studies of ttnxu071 uncovered a function of titin in guiding the assembly of nascent myofibrils from premyofibrils. By contrast, sarcomeres were assembled in the hypomorphic ttn mutants but either became susceptible to biomechanical stresses such as contraction or degenerated during development. Further genetic studies indicated that the exon usage hypothesis, but not the toxic peptide or the Cronos hypothesis, could account for these exon-dependent effects. In conclusion, we modeled TTNtv allelic heterogeneity during development and paved the way for future studies to decipher allelic heterogeneity in adult DCM.
No takes yet. Share an insight, caveat, or question.
Shih et al. (2016) studied Dilated cardiomyopathy (DCM). ttn mutants (ttn.2 and ttn.1) was evaluated on Sarcomere assembly and somite phenotypes. Zebrafish models of titin-truncating variants demonstrated that exon usage accounts for exon-dependent effects on sarcomere assembly and susceptibility to biomechanical stress.
Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context: