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Molecular and cellular evidence for the impact of a hypertrophic cardiomyopathy-associated RAF1 variant on the structure and function of contractile machinery in bioartificial cardiac tissues. | LitMetric

AI Article Synopsis

  • Noonan syndrome (NS), a common genetic disorder linked to the RAS-MAPK pathway, is associated with variants like the Ser257Leu substitution in RAF1, which is particularly connected to severe heart disease (HCM).
  • Researchers created three-dimensional cardiac models from stem cells of NS patients with specific RAF1 mutations to study the relationship between these genetic changes and heart tissue abnormalities.
  • Findings showed that the mutated RAF1 caused changes in heart cell structure, shortening of key protein elements, and impaired heart function, but these issues could partially be reversed by inhibiting the MEK pathway.

Article Abstract

Noonan syndrome (NS), the most common among RASopathies, is caused by germline variants in genes encoding components of the RAS-MAPK pathway. Distinct variants, including the recurrent Ser257Leu substitution in RAF1, are associated with severe hypertrophic cardiomyopathy (HCM). Here, we investigated the elusive mechanistic link between NS-associated RAF1 and HCM using three-dimensional cardiac bodies and bioartificial cardiac tissues generated from patient-derived induced pluripotent stem cells (iPSCs) harboring the pathogenic RAF1 c.770 C > T missense change. We characterize the molecular, structural, and functional consequences of aberrant RAF1-associated signaling on the cardiac models. Ultrastructural assessment of the sarcomere revealed a shortening of the I-bands along the Z disc area in both iPSC-derived RAF1 cardiomyocytes and myocardial tissue biopsies. The aforementioned changes correlated with the isoform shift of titin from a longer (N2BA) to a shorter isoform (N2B) that also affected the active force generation and contractile tensions. The genotype-phenotype correlation was confirmed using cardiomyocyte progeny of an isogenic gene-corrected RAF1-iPSC line and was mainly reversed by MEK inhibition. Collectively, our findings uncovered a direct link between a RASopathy gene variant and the abnormal sarcomere structure resulting in a cardiac dysfunction that remarkably recapitulates the human disease.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10284840PMC
http://dx.doi.org/10.1038/s42003-023-05013-8DOI Listing

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