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Susceptibility to Ventricular Arrhythmias Resulting from Mutations in FKBP1B, PXDNL, and SCN9A Evaluated in hiPSC
Hector Barajas-Martinez1,2, Maya Smith1, Dan Hu1,3
1Department of Experimental Cardiology, Masonic Medical Research Institute, Utica, NY, USA.
Insights
Inherited cardiac arrhythmias like Brugada Syndrome (BrS) and Early Repolarization Syndrome (ERS) can be caused by mutations in SCN9A, PXDNL, and FKBP1B. Only inheriting all three mutations led to the severe phenotype, suggesting a polygenic cause.
Area of Science:
- Genetics
- Cardiology
- Molecular Biology
Background:
- A family presented with an inherited cardiac arrhythmia syndrome combining Brugada Syndrome (BrS) and Early Repolarization Syndrome (ERS).
- The syndrome was associated with variants in the SCN9A, PXDNL, and FKBP1B genes.
- The proband inherited all three mutations, exhibiting palpitations and syncope, while family members with one or two mutations were asymptomatic.
Purpose of the Study:
- To investigate the genetic basis and functional consequences of mutations in SCN9A, PXDNL, and FKBP1B in a family with inherited cardiac arrhythmias.
- To determine the role of individual and combined mutations in the development of BrS/ERS phenotype.
Main Methods:
- Next-generation DNA sequencing identified heterozygous mutations in SCN9A, PXDNL, and FKBP1B in the proband.
- Induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) from the proband and a family member were used for functional studies.
- Electrophysiological recordings (patch-clamp) and confocal microscopy assessed ion channel function and calcium transients in hiPSC-CMs.
Main Results:
- The proband, carrying all three mutations, displayed right bundle branch block, syncope, irregular spontaneous hiPSC-CM activity, and reduced Ca2+ transients.
- hiPSC-CMs showed reduced ICa and, in some cases, altered INa and ITo currents.
- Family members with one or two mutations did not develop cardiac events or exhibit the arrhythmia phenotype.
Conclusions:
- The combined effect of SCN9A, PXDNL, and FKBP1B variants alters cardiomyocyte function, leading to the BrS/ERS phenotype.
- A polygenic inheritance model is proposed, where inheriting all three mutations is necessary for the severe arrhythmic phenotype.
- These findings highlight the complex genetic underpinnings of inherited cardiac arrhythmias.
Background:
We report an inherited cardiac arrhythmia syndrome consisting of Brugada and Early Repolarization Syndrome associated with variants in SCN9A, PXDNL, and FKBP1B. The proband inherited the 3 mutations and exhibited palpitations and arrhythmia-mediated syncope, whereas the parents and sister, who carried one or two of the mutations, were asymptomatic.
Methods And Results:
We assessed the functional impact of these mutations in induced pluripotent stem cell cardiomyocytes (hiPSC-CMs) derived from the proband and an unaffected family member. Current and voltage clamp recordings, as well as confocal microscopy analysis of Ca2+ transients, were evaluated in hiPSC-CMs from the proband and compared these results with hiPSC-CMs from undiseased controls. Genetic analysis using next-generation DNA sequencing revealed heterozygous mutations in SCN9A, PXDNL, and FKBP1B in the proband. The proband displayed right bundle branch block and exhibited episodes of syncope. The father carried a mutation in FKBP1B, whereas the mother and sister carried the SCN9A mutation. None of the 3 family members screened developed cardiac events. Action potential recordings from control hiPSC-CM showed spontaneous activity and a low upstroke velocity. In contrast, the hiPSC-CM from the proband showed irregular spontaneous activity. Confocal microscopy of the hiPSC-CM of the proband revealed low fluorescence intensity Ca2+ transients that were episodic in nature. Patch-clamp measurements in hiPSC-CM showed no difference in I Na but reduced I Ca in the proband compared with control. Coexpression of PXDNL-R391Q with SCN5A-WT displayed lower I Na density compared to PXDNL-WT. In addition, coexpression of PXDNL-R391Q with KCND3-WT displayed significantly higher I to density compared to PXDNL-WT.
Conclusion:
SCN9A, PXDNL, and FKBP1B variants appeared to alter spontaneous activity in hiPSC-CM. Only the proband carrying all 3 mutations displayed the ERS/BrS phenotype, whereas one nor two mutations alone did not produce the clinical phenotype. Our results suggest a polygenic cause of the BrS/ERS arrhythmic phenotype due to mutations in these three gene variants caused a very significant loss of function of I Na and I Ca and gain of function of I to.
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