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Funk, F.

Publications and source records attributed to Funk, F..

2 recordsLinked to original sources

Alteration of myocardial structure and function in RAF1associated Noonan syndrome: Insights from cardiac disease modeling based on patient-derived iPSCs

Noonan syndrome (NS), the most common among the 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 RAF1S257L 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.770C>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 RAF1S257L cardiomyocytes, and myocardial tissue biopsies. The disease phenotype was partly reverted by using both MEK inhibition, and a gene-corrected isogenic RAF1L257S cell line. 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. These insights represent a basis to develop future targeted therapeutic approaches.

cell biology↗

Molecular Noise-Filtering in the β-adrenergic Signaling Network by Phospholamban Pentamers

Phospholamban (PLN) is an important regulator of calcium handling in cardiomyocytes due to its ability to inhibit the sarco(endo)plasmic reticulum calcium-ATPase (SERCA) {beta}-adrenergic stimulation reverses SERCA inhibition via PLN phosphorylation and facilitates fast calcium reuptake PLN also forms pentamers whose physiological significance has remained elusive Using biochemical experiments and mathematical modeling, we show that pentamers regulate both the dynamics and steady-state levels of monomer phosphorylation Substrate competition by pentamers and a feed-forward loop involving inhibitor-can delay monomer phosphorylation by protein kinase A (PKA) Steady-state phosphorylation of PLN is predicted to be bistable due to cooperative dephosphorylation of pentamers Both effects act as complementary noise-filters which can reduce the effect of random fluctuations in PKA activity Pentamers thereby ensure consistent monomer phosphorylation and SERCA activity in spite of noisy upstream signals Preliminary analyses suggest that the PLN mutation R del could impair noise-filtering, offering a new perspective on how this mutation causes cardiac arrhythmias.

systems biology↗