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Biology subjects

Davogustto, G.

Publications and source records attributed to Davogustto, G..

2 recordsLinked to original sources

Patient-derived Cellular Models of Polygenic Scores: Application to Long QT Syndrome

Polygenic scores (PGS) have emerged as important modifiers of disease risk, drug response, and rare variant penetrance, but the biological mechanisms underlying these associations remain poorly understood. To experimentally investigate these relationships, we derived induced pluripotent stem cell-derived cardiomyocytes (iPSC-CMs) from individuals at the 1st, 50th, and 99th percentiles of a genome-wide QT interval polygenic score (QT-PGS). We examined baseline repolarization, drug response to the hERG inhibitor E4031, and penetrance of two KCNH2 variants (p.Arg148Trp and p.Arg823Trp) in these cellular models. While baseline field potential durations (FPDs) did not differ across PGS levels, high-PGS iPSC-CMs showed exaggerated prolongation in response to E4031 and increased phenotypic expression of both KCNH2 variants. These findings provide the first experimental demonstration that polygenic background can shape cardiac electrophysiologic phenotypes and modulate the functional impact of both pharmacologic and genetic perturbations. This work establishes a scalable platform for mechanistic studies of polygenic risk.

genetics↗

Generation of human induced pluripotent stem cell (hiPSC) lines from patients with extreme high and low polygenic scores for QT interval

Long QT syndrome (LQTS) is an inherited cardiac arrhythmia syndrome with congenital and drug-induced presentations and known monogenic and polygenic contributions. LQTS represents a significant clinical challenge due to its complex genetic underpinning and propensity for fatal arrhythmias. In this study, we generated induced pluripotent stem cells (iPSCs) reprogrammed from peripheral blood mononuclear cells (PBMCs) of six patients with extreme polygenic scores for short and long corrected QT intervals. iPSC lines were rigorously validated for genomic integrity through karyotyping and targeted mutation analysis specific to a lengthened or shortened QT interval. Pluripotency was confirmed by expression of key markers TRA 1-60, TRA 1-81, SOX2, OCT4, NANOG, and REX1 via quantitative PCR and immunofluorescence. Subsequent cardiac induction successfully generated cardiomyocytes that were further characterized. This patient-specific approach will enable us to better understand variable expressivity and penetrance of LQTS. Rigorously validated iPSC lines serve as a vital resource for elucidating the molecular mechanisms underlying LQTS. Our study provides a robust and clinically relevant resource to facilitate our understanding the genetic and cellular complexity of LQTS.

genetics↗