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February 21, 2026Biophysical Journal0 citations

BPS2026 – Y261 tropomyosin variants alter calcium sensitivity and relaxation kinetics via disrupted troponin T interactions

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SNSanjana U. NistalaABAntonino BongiornoMRMichael J. Rynkiewicz

Key Points

  • To investigate the impact of tropomyosin mutations on calcium sensitivity and relaxation kinetics in engineered heart tissues.
  • Used co-sedimentation assays to assess binding affinity
  • Performed in vitro motility measurements to evaluate calcium sensitivity
  • Fabricated engineered heart tissues from iPSC-derived cardiomyocytes and tested mutant tropomyosin
  • Analyzed relaxation times in EHTs transduced with wild-type or mutant TPM1
  • Y261C and other mutations decreased TnT1 affinity for actin-tropomyosin filaments
  • Increased Ca 2+ sensitivity was observed in myofilament assays with Y261E and Y261Q mutations
  • EHTs with Y261C showed a 20% increase in relaxation time compared to wild-type

Abstract

Missense mutations in alpha-tropomyosin (encoded by TPM1) can result in cardiomyopathic phenotypes, including dilated and hypertrophic forms. When considering tropomyosin mutations that are likely to cause significant disruption, the Y261 residue is of particular interest due to extensive interactions with the N-terminus of troponin T (TnT1) in a computational model of myofilament activation. We hypothesized that missense mutations at this residue, such as Y261C, Y261E, Y261F, and Y261Q, would lead to reductions in TnT1 affinity for actin-tropomyosin and cause corresponding alterations in myofilament function. We tested this hypothesis using co-sedimentation assays, in vitro motility measurements, and in human engineered heart tissues (EHTs) expressing mutant tropomyosin. Binding data show that Y261E and Y261Q mutations in tropomyosin decrease the affinity of TnT1 for actin-tropomyosin filaments, which was strongly correlated with increased Ca 2+ sensitivity (higher pCa 50 values) in regulated in vitro motility assays. Mutation-based shifts in pCa 50 could be reproduced in a myofilament activation model by reducing nearest-neighbor interactions, reinforcing the role of TnT1 in coupling adjacent tropomyosins. EHTs composed of human iPSC-derived cardiomyocytes seeded on decellularized porcine myocardium were fabricated to assess the effects of the Y261C mutation on force production and kinetics. EHTs were transduced via adenoviral delivery of either wild-type or Y261C mutant TPM1. Y261C-expressing EHTs demonstrated a 20% increase in relaxation times compared to wild-type, consistent with increased myofilament Ca 2+ sensitivity. We conclude that missense mutations to the Y261 residue of tropomyosin can destabilize its binding with TnT1, ultimately reducing the ability of tropomyosin to inhibit actin-myosin activity at low Ca 2+ and leading to poor twitch relaxation.

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Cite This Study

Nistala et al. (2026) studied this question.

synapsesocial.com/papers/69990e0a5b97ab4c14ac2fcbhttps://doi.org/10.1016/j.bpj.2025.11.732
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Mechanistic Heterogeneity in Contractile Properties of α-Tropomyosin (TPM1) Mutants Associated with Inherited Cardiomyopathies2014 · 53 citations
  2. 2Effects of cardiomyopathic mutations on the biochemical and biophysical properties of the human α‐tropomyosin2004 · 19 citations
  3. 3Cardiomyopathic Tropomyosin Mutations That Increase Thin Filament Ca2+ Sensitivity and Tropomyosin N-domain Flexibility2003 · 57 citations
  4. 4Mutations Q93H and E97K in TPM2 Disrupt Ca-Dependent Regulation of Actin Filaments2021 · 14 citations
  5. 5Effects of Phosphorylation of Tropomyosin with Cardiomyopathic Mutations on Calcium Regulation of Myocardial Contraction2022