The Brugada syndrome associated gene WT1 impacts on SCN5A expression and cardiac conduction
Marsman, E. M. J.; Offerhaus, J. A.; Mengarelli, I.; Beekman, L.; Wilde, L. M.; Casini, S.; Goumans, M.-J.; Verkerk, A. O.; Jurgens, S. J.; Wilde, A. A.; Boukens, B. J.; Remme, C. A.; Bezzina, C. R.; Bosada, F. M.
Show abstract
Brugada syndrome (BrS) is an inherited cardiac arrhythmic disorder caused by conduction slowing primarily affecting the right ventricular (RV) outflow tract (RVOT). A recent genome-wide association study (GWAS) implicated a genomic region in chromosome 11, overlapping the transcription factor WT1, in BrS susceptibility. Here, we investigated the role of WT1 on cardiac conduction using a heterozygous knockout mouse model (Wt1+/-). Transcriptomic analysis revealed increased Scn5a predominantly in Wt1+/- cardiomyocytes located subepicardially in the RV and RVOT without any changes in electrical properties. To unmask an effect on cardiac conduction, we performed optical mapping in a severely challenged setting offered by Scn5a haploinsufficiency, ageing, and exposure to the sodium channel blocker ajmaline and found that diminished Wt1 improved the observed slowed conduction. Examination of human single-nuclei cardiac datasets indicated a strong negative correlation between WT1 and SCN5A expression. In line with this observation, cardiac samples from patients carrying mutations in SCN5A showed increased WT1 protein abundance in histological sections, suggesting that increased WT1, and not loss, is associated with BrS pathophysiology. By deleting the mouse orthologue of a BrS-associated noncoding region (RE) harboring a candidate regulatory element, we established that this RE controls expression of Wt1 specifically in the (sub)epicardium of the RV. Lastly, transient overexpression of WT1 in hiPSC-derived cardiomyocytes resulted in notably reduced sodium current density. Our study thereby identifies the transcription factor WT1 as a novel contributor to the pathophysiology of BrS, at least in part, through SCN5A.
Matching journals
The top 7 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Mitochondrial CaMKII causes metabolic reprogramming, energetic insufficiency, and dilated cardiomyopathy 97%
- Cardiomyocyte Contractile Impairment in Heart Failure Results from Reduced BAG3-mediated Sarcomeric Protein Turnover 97%
- Nkx2-5 defines distinct scaffold and recruitment phases during formation of the cardiac Purkinje fiber network 97%
Similar papers in this journal
- Coordinated Tbx3/Tbx5 transcriptional control of the adult ventricular conduction system 96%
- Crest maturation at the cardiomyocyte surface contributes to a new late postnatal development stage that controls the diastolic function of the adult heart 96%
- Contraction-induced endocardial id2b plays a dual role in regulating myocardial contractility and valve formation 96%
Similar papers in this journal
- Prolonged β-Adrenergic Stimulation Disperses Ryanodine Receptor Clusters in Cardiomyocytes: Implications for Heart Failure 97%
- dATP Elevation Induces Myocardial Metabolic Remodeling to Support Improved Cardiac Function 96%
- Ryanodine Receptor Stabilization Therapy Suppresses Ca2+- Based Arrhythmias in a Novel Model of Metabolic HFpEF 95%
Similar papers in this journal
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.