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Published on: July 10, 2019
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.
Abstract:
Rationale: Hypertrophic cardiomyopathy (HCM) is the most common cardiac genetic disorder caused by sarcomeric gene variants and associated with left ventricular (LV) hypertrophy and diastolic dysfunction. The role of the microtubule network has recently gained interest with the findings that -α-tubulin detyrosination (dTyr-tub) is markedly elevated in heart failure. Acute reduction of dTyr-tub by inhibition of the detyrosinase (VASH/SVBP complex) or activation of the tyrosinase (tubulin tyrosine ligase, TTL) markedly improved contractility and reduced stiffness in human failing cardiomyocytes, and thus poses a new perspective for HCM treatment. Objective: In this study, we tested the impact of chronic tubulin tyrosination in a HCM mouse model ( Mybpc3 -knock-in; KI), in human HCM cardiomyocytes and in SVBP-deficient human engineered heart tissues (EHTs). Methods and Results: AAV9-mediated TTL transfer was applied in neonatal wild-type (WT) rodents and 3-week-old KI mice and in HCM human induced pluripotent stem cell (hiPSC)-derived cardiomyocytes. We show that i) TTL for 6 weeks dose-dependently reduced dTyr-tub and improved contractility without affecting cytosolic calcium transients in WT cardiomyocytes; ii) TTL for 12 weeks improved diastolic filling, cardiac output and stroke volume and reduced stiffness in KI mice; iii) TTL for 10 days normalized cell hypertrophy in HCM hiPSC-cardiomyocytes; iv) TTL induced a marked transcription and translation of several tubulins and modulated mRNA or protein levels of components of mitochondria, Z-disc, ribosome, intercalated disc, lysosome and cytoskeleton in KI mice; v) SVBP-deficient EHTs exhibited reduced dTyr-tub levels, higher force and faster relaxation than TTL-deficient and WT EHTs. RNA-seq and mass spectrometry analysis revealed distinct enrichment of cardiomyocyte components and pathways in SVBP-KO vs. TTL-KO EHTs. Conclusion: This study provides the first proof-of-concept that chronic activation of tubulin tyrosination in HCM mice and in human EHTs improves heart function and holds promise for targeting the non-sarcomeric cytoskeleton in heart disease.
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