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Published on: August 1, 2016
Reduction of Filamin C Results in Altered Proteostasis, Cardiomyopathy, and Arrhythmias
Joyce C Ohiri1, Lisa Dellefave-Castillo1, Garima Tomar1
1Center for Genetic Medicine, Feinberg School of Medicine Northwestern University Chicago IL USA.
Insights
Filamin C (FLNC) variants can cause cardiomyopathy and arrhythmias. Loss of FLNC in heart cells increases arrhythmia risk, especially when combined with proteasome stress.
Area of Science:
- Cardiovascular Genetics
- Molecular Cardiology
- Stem Cell Biology
Background:
- Filamin C (FLNC) pathogenic variants, often heterozygous truncations, are linked to cardiomyopathy and arrhythmias.
- The precise triggers for arrhythmias in filaminopathy remain unclear.
Purpose of the Study:
- To investigate the functional consequences of biallelic FLNC variants in cardiomyopathy and arrhythmias.
- To model filaminopathy using induced pluripotent stem cell-derived cardiomyocytes (iPSC-CMs) and assess FLNC's role in cellular stress responses.
Main Methods:
- Clinical characterization of individuals with FLNC variants and associated cardiomyopathies/arrhythmias.
- Generation of iPSC-CMs from patients and gene editing to create FLNC-null iPSC-CMs and engineered heart tissues.
- Assessment of filamin C protein levels, chaperone and autophagy markers, and electrophysiological properties in response to proteasome inhibition (bortezomib).
Main Results:
- Identified individuals with biallelic FLNC variants presenting with peripartum cardiomyopathy, ventricular arrhythmias, hypertrophic/dilated cardiomyopathy, atrial fibrillation, and ventricular tachycardia.
- FLNC truncations led to reduced filamin C protein, consistent with biallelic loss-of-function.
- FLNC-null iPSC-CMs exhibited increased chaperone proteins (BAG3, HSP70, HSPB8), autophagy markers (LC3I/II), and prolonged electric field potential, particularly under bortezomib treatment.
- FLNC-null engineered heart tissues showed impaired function after bortezomib exposure.
Conclusions:
- FLNC pathogenic variants predispose individuals to arrhythmias, which can be effectively modeled in iPSC-CMs.
- Reduced filamin C prolongs cardiac action potentials and, when combined with proteasome inhibition, exacerbates arrhythmia potential and impairs cardiac function.
Background:
Many cardiomyopathy-associated FLNC pathogenic variants are heterozygous truncations, and FLNC pathogenic variants are associated with arrhythmias. Arrhythmia triggers in filaminopathy are incompletely understood.
Methods And Results:
We describe an individual with biallelic FLNC pathogenic variants, p.Arg650X and c.970-4A>G, with peripartum cardiomyopathy and ventricular arrhythmias. We also describe clinical findings in probands with FLNC variants including Val2715fs87X, Glu2458Serfs71X, Phe106Leu, and c.970-4A>G with hypertrophic and dilated cardiomyopathy, atrial fibrillation, and ventricular tachycardia. Induced pluripotent stem cell-derived cardiomyocytes (iPSC-CMs) were generated. The FLNC truncation, Arg650X/c.970-4A>G, showed a marked reduction in filamin C protein consistent with biallelic loss of function mutations. To assess loss of filamin C, gene editing of a healthy control iPSC line was used to generate a homozygous FLNC disruption in the actin binding domain. Because filamin C has been linked to protein quality control, we assessed the necessity of filamin C in iPSC-CMs for response to the proteasome inhibitor bortezomib. After exposure to low-dose bortezomib, FLNC-null iPSC-CMs showed an increase in the chaperone proteins BAG3, HSP70 (heat shock protein 70), and HSPB8 (small heat shock protein B8) and in the autophagy marker LC3I/II. FLNC null iPSC-CMs had prolonged electric field potential, which was further prolonged in the presence of low-dose bortezomib. FLNC null engineered heart tissues had impaired function after low-dose bortezomib.
Conclusions:
FLNC pathogenic variants associate with a predisposition to arrhythmias, which can be modeled in iPSC-CMs. Reduction of filamin C prolonged field potential, a surrogate for action potential, and with bortezomib-induced proteasome inhibition, reduced filamin C led to greater arrhythmia potential and impaired function.
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