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Updated: Dec 21, 2025

A Rat Model of Pressure Overload Induced Moderate Remodeling and Systolic Dysfunction as Opposed to Overt Systolic Heart Failure
Published on: April 30, 2020
CITED4 Protects Against Adverse Remodeling in Response to Physiological and Pathological Stress
Carolin Lerchenmüller1,2,3, Charles P Rabolli1, Ashish Yeri1
1From the Corrigan Minehan Heart Center and Cardiology Division, Massachusetts General Hospital, Harvard Medical School, Boston (C.L., C.P.R., A.Y., R.K., A.M.S., L.X.L., O.Z., K.D., C.P., R.S., F.D., P.K., S.D., A.R.).
Insights
Cardiac CITED4 (CBP/p300-interacting transactivators with E [glutamic acid]/D [aspartic acid]-rich-carboxylterminal domain4) protects the heart from stress. Loss of CITED4 worsens cardiac remodeling and dysfunction during exercise and pressure overload, highlighting its protective role.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Cardiac Remodeling
Background:
- Cardiac CITED4 (CBP/p300-interacting transactivators with E [glutamic acid]/D [aspartic acid]-rich-carboxylterminal domain4) is induced by exercise and promotes physiological hypertrophy.
- The role of endogenous CITED4 in cardiac response to physiological and pathological stress remains unknown.
Purpose of the Study:
- To investigate the function of CITED4 in the heart during exercise and pressure overload using murine models.
Main Methods:
- Generated cardiomyocyte-specific CITED4 knockout mice (C4KO).
- Subjected C4KO mice to exercise and transverse aortic constriction (TAC).
- Utilized echocardiography, molecular biology techniques, and transcriptional profiling.
Main Results:
- C4KO mice showed cardiac dysfunction and dilation with exercise.
- After TAC, C4KO mice developed severe heart failure, impaired cardiomyocyte growth, reduced mTOR activity, and maladaptive remodeling.
- Increased fibrosis and a profibrotic miRNA network, including decreased miR30d, were observed in C4KO hearts post-TAC.
Conclusions:
- CITED4 protects against pathological cardiac remodeling by regulating mTOR activity and a miRNA network involved in cardiomyocyte-fibroblast crosstalk.
- These findings underscore the critical role of CITED4 in both physiological and pathological cardiac responses.
Rationale:
Cardiac CITED4 (CBP/p300-interacting transactivators with E [glutamic acid]/D [aspartic acid]-rich-carboxylterminal domain4) is induced by exercise and is sufficient to cause physiological hypertrophy and mitigate adverse ventricular remodeling after ischemic injury. However, the role of endogenous CITED4 in response to physiological or pathological stress is unknown.
Objective:
To investigate the role of CITED4 in murine models of exercise and pressure overload.
Methods And Results:
We generated cardiomyocyte-specific CITED4 knockout mice (C4KO) and subjected them to an intensive swim exercise protocol as well as transverse aortic constriction (TAC). Echocardiography, Western blotting, qPCR, immunohistochemistry, immunofluorescence, and transcriptional profiling for mRNA and miRNA (microRNA) expression were performed. Cellular crosstalk was investigated in vitro. CITED4 deletion in cardiomyocytes did not affect baseline cardiac size or function in young adult mice. C4KO mice developed modest cardiac dysfunction and dilation in response to exercise. After TAC, C4KOs developed severe heart failure with left ventricular dilation, impaired cardiomyocyte growth accompanied by reduced mTOR (mammalian target of rapamycin) activity and maladaptive cardiac remodeling with increased apoptosis, autophagy, and impaired mitochondrial signaling. Interstitial fibrosis was markedly increased in C4KO hearts after TAC. RNAseq revealed induction of a profibrotic miRNA network. miR30d was decreased in C4KO hearts after TAC and mediated crosstalk between cardiomyocytes and fibroblasts to modulate fibrosis. miR30d inhibition was sufficient to increase cardiac dysfunction and fibrosis after TAC.
Conclusions:
CITED4 protects against pathological cardiac remodeling by regulating mTOR activity and a network of miRNAs mediating cardiomyocyte to fibroblast crosstalk. Our findings highlight the importance of CITED4 in response to both physiological and pathological stimuli.
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