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Updated: Jul 6, 2025

Investigating the Pathogenesis of MYH7 Mutation Gly823Glu in Familial Hypertrophic Cardiomyopathy using a Mouse Model
Published on: August 8, 2022
Deficiency of Transcription Factor Sp1 Contributes to Hypertrophic Cardiomyopathy
Fulei Zhang1,2,3, Huixing Zhou1,2,3, Jinfeng Xue4
1State Key Laboratory of Cardiology (F.Z., H.Z., Y.Z., L.Z., J.L., G.F., H.L., Y. Wu, R.D., X.H., Yi Liu, L.L., J.Y., D.L., Y.-H.C.), Shanghai East Hospital, Tongji University School of Medicine, China.
Insights
Specificity protein 1 (SP1) deficiency causes hypertrophic cardiomyopathy (HCM). SP1 overexpression offers therapeutic benefits for HCM in mice and human cells, identifying SP1 as a potential treatment target.
Area of Science:
- Cardiology
- Molecular Biology
- Genetics
Background:
- Hypertrophic cardiomyopathy (HCM) is a common genetic heart disease with unclear non-genetic causes.
- Transcription factors, like SP1, are implicated in cell growth and cardiac hypertrophy.
- The role of SP1 in HCM pathogenesis was investigated.
Purpose of the Study:
- To investigate the role of SP1 in cardiac hypertrophy and HCM.
- To explore SP1 as a potential therapeutic target for HCM.
Main Methods:
- Generated cardiac-specific conditional knockout of SP1 mice.
- Analyzed cardiac phenotypes using echocardiography, histology, and electron microscopy.
- Utilized RNA sequencing, ChIP sequencing, AAV experiments, and hiPSC-CMs to explore SP1's mechanisms and therapeutic potential.
Main Results:
- SP1 deficiency in mice and hiPSC-CMs induced HCM-like phenotypes, including myocardial hypertrophy and fibrosis.
- TUFT1 was identified as a key SP1 target gene; TUFT1 overexpression rescued SP1 knockdown-induced hypertrophy.
- SP1 overexpression ameliorated HCM phenotypes in mice and human cells.
Conclusions:
- SP1 deficiency is a cause of HCM.
- SP1 plays a critical role in maintaining cardiac structure and function.
- SP1 overexpression demonstrates therapeutic potential for HCM treatment.
Background:
Hypertrophic cardiomyopathy (HCM) is the most prevalent monogenic heart disorder. However, the pathogenesis of HCM, especially its nongenetic mechanisms, remains largely unclear. Transcription factors are known to be involved in various biological processes including cell growth. We hypothesized that SP1 (specificity protein 1), the first purified TF in mammals, plays a role in the cardiomyocyte growth and cardiac hypertrophy of HCM.
Methods:
Cardiac-specific conditional knockout of Sp1 mice were constructed to investigate the role of SP1 in the heart. The echocardiography, histochemical experiment, and transmission electron microscope were performed to analyze the cardiac phenotypes of cardiac-specific conditional knockout of Sp1 mice. RNA sequencing, chromatin immunoprecipitation sequencing, and adeno-associated virus experiments in vivo were performed to explore the downstream molecules of SP1. To examine the therapeutic effect of SP1 on HCM, an SP1 overexpression vector was constructed and injected into the mutant allele of Myh6 R404Q/+ (Myh6 c. 1211C>T) HCM mice. The human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) from a patient with HCM were used to detect the potential therapeutic effects of SP1 in human HCM.
Results:
The cardiac-specific conditional knockout of Sp1 mice developed a typical HCM phenotype, displaying overt myocardial hypertrophy, interstitial fibrosis, and disordered myofilament. In addition, Sp1 knockdown dramatically increased the cell area of hiPSC-CMs and caused intracellular myofibrillar disorganization, which was similar to the hypertrophic cardiomyocytes of HCM. Mechanistically, Tuft1 was identified as the key target gene of SP1. The hypertrophic phenotypes induced by Sp1 knockdown in both hiPSC-CMs and mice could be rescued by TUFT1 (tuftelin 1) overexpression. Furthermore, SP1 overexpression suppressed the development of HCM in the mutant allele of Myh6 R404Q/+ mice and also reversed the hypertrophic phenotype of HCM hiPSC-CMs.
Conclusions:
Our study demonstrates that SP1 deficiency leads to HCM. SP1 overexpression exhibits significant therapeutic effects on both HCM mice and HCM hiPSC-CMs, suggesting that SP1 could be a potential intervention target for HCM.
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