Chronic activation of tubulin tyrosination in HCM mice and human iPSC-engineered heart tissues improves heart

Insights

Targeting tubulin tyrosination with tubulin tyrosine ligase (TTL) improved heart function in hypertrophic cardiomyopathy (HCM) models. This approach offers a new therapeutic strategy for HCM by modulating the non-sarcomeric cytoskeleton.

Area of Science:

  • Cardiovascular Research
  • Cell Biology
  • Genetics

Background:

  • Hypertrophic cardiomyopathy (HCM) is a genetic disorder causing left ventricular hypertrophy and diastolic dysfunction.
  • Elevated -α-tubulin detyrosination (dTyr-tub) is linked to heart failure, suggesting a role for the microtubule network.
  • Modulating dTyr-tub levels presents a novel therapeutic avenue for HCM.

Approach:

  • Investigated chronic tubulin tyrosination using AAV9-mediated tubulin tyrosine ligase (TTL) transfer in a mouse model (Mybpc3-knock-in; KI), human HCM cardiomyocytes, and human engineered heart tissues (EHTs).
  • Assessed the impact of TTL on dTyr-tub levels, cardiomyocyte contractility, diastolic function, cardiac output, and hypertrophy.
  • Utilized RNA-seq and mass spectrometry to analyze molecular changes in response to TTL modulation and SVBP deficiency.

Key Points:

  • Chronic TTL administration dose-dependently reduced dTyr-tub and improved contractility in wild-type cardiomyocytes.
  • TTL treatment in KI mice enhanced diastolic filling, cardiac output, stroke volume, and reduced cardiac stiffness.
  • TTL normalized hypertrophy in human HCM cardiomyocytes and modulated various cellular components in KI mice.
  • SVBP-deficient EHTs showed reduced dTyr-tub, increased force, and faster relaxation compared to controls.

Conclusions:

  • This study demonstrates the first proof-of-concept for chronic tubulin tyrosination as a therapeutic strategy in HCM.
  • Targeting the non-sarcomeric cytoskeleton via tubulin tyrosination holds promise for treating heart disease.
  • Findings support TTL as a potential therapeutic agent for improving cardiac function in HCM.

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