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January 24, 2026eLife0 citationsOpen Access

A titin missense variant drives atrial electrical remodeling and is associated with atrial fibrillation

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MPMahmud Arif PavelHCHanna ChenMHMichael Hill

Key Result

The TTN-T32756I missense variant is associated with worse clinical outcomes in atrial fibrillation and disrupts ion channel function in cardiomyocytes.

Key Points

  • To investigate how a missense variant in the titin gene affects atrial fibrillation and identify its underlying mechanisms.
  • Examined a clinical cohort with TTN missense variants and their clinical outcomes.
  • Created human induced pluripotent stem cell-derived atrial cardiomyocytes with the TTN-T32756I variant.
  • Assessed contractility, potassium channel activity, and calcium homeostasis in these cardiomyocytes.
  • TTN missense variants were linked to poorer clinical outcomes in patients.
  • TTN-T32756I variant caused abnormal contractility and increased KCNQ1 activity in iPSC-aCMs.
  • Suppression of FHL2 normalized potassium currents, indicating its role in ion channel modulation.

Structured PICO

Does the TTN-T32756I missense variant drive atrial electrical remodeling and contribute to atrial fibrillation?

P
Population
Single-center ethnic minority clinical cohort and human induced pluripotent stem cell-derived atrial cardiomyocytes (iPSC-aCMs)
I
Intervention
TTN-T32756I missense variant
O
Outcome
Clinical outcomes in the cohort and cellular mechanisms (contractility, KCNQ1 activity, calcium homeostasis) in iPSC-aCMssurrogate

The TTN-T32756I missense variant contributes to atrial fibrillation by remodeling ion channels and enhancing potassium currents via FHL2 interaction, highlighting a novel mechanistic link between sarcomeric proteins and arrhythmogenesis.

Abstract

Rare and common genetic variants contribute to the risk of atrial fibrillation (AF). Although ion channels were among the first AF candidate genes identified, rare loss-of-function variants in structural genes, such as TTN , have also been implicated in AF pathogenesis, partly through the development of atrial myopathy; however, the underlying mechanisms are poorly understood. While TTN truncating variants ( TTN tvs) have been causally linked to arrhythmia and cardiomyopathy syndromes, the role of missense variants (mvs) remains unclear. We show that rare TTNmvs are associated with worse clinical outcomes in a single-center ethnic minority clinical cohort and uncover a pathogenic mechanism by which the T32756I variant drives AF. Modeling the TTN -T32756I variant using human induced pluripotent stem cell-derived atrial cardiomyocytes (iPSC-aCMs) revealed that the mutant cells display aberrant contractility, increased activity of a cardiac potassium channel (KCNQ1, Kv7.1), and dysregulated calcium homeostasis without compromising the sarcomeric integrity of the atrial cardiomyocytes. We also show that a titin-binding protein, the Four-and-a-Half Lim domains 2 (FHL2), has increased binding with KCNQ1 and its modulatory subunit KCNE1 in the TTN- T32756I-iPSC-aCMs, enhancing the slow delayed rectifier potassium current ( I ks ). Suppression of FHL2 in mutant iPSC-aCMs normalized the I ks , supporting FHL2 as an I ks modulator. Our findings demonstrate that a single amino acid substitution in titin not only impairs its function but also remodels ion channels, contributing to AF. These findings underscore the importance of high-throughput screening to assess the pathogenicity of TTN mvs and establish a mechanistic connection between titin, potassium ion channels, and sarcomeric proteins, which may represent a novel therapeutic target.

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Cite This Study

Pavel et al. (2026) studied this question. The TTN-T32756I missense variant is associated with worse clinical outcomes in atrial fibrillation and disrupts ion channel function in cardiomyocytes.

synapsesocial.com/papers/6974610cbb9d90c67120af74https://doi.org/10.7554/elife.104719.3
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