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Updated: Nov 30, 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
C-C chemokine receptor 5 signaling contributes to cardiac remodeling and dysfunction under pressure overload
Xiaomin Wang1, Wei Li2, Qiang Yue3
1Shanghai East Hospital, Tongji University School of Medicine, Shanghai 200120, P.R. China.
Insights
C-C chemokine receptor 5 (CCR5) inhibition protects against cardiac remodeling and dysfunction caused by aortic stenosis. Blocking CCR5 reduced heart abnormalities and inflammation in mice, suggesting a new therapeutic target for heart failure.
Area of Science:
- Cardiovascular Biology
- Immunology
- Molecular Medicine
Background:
- Aortic stenosis (AS) causes pressure overload, leading to cardiac remodeling and heart failure.
- Chemokines and their receptors are involved in cardiac remodeling during pressure overload.
Purpose of the Study:
- To investigate the role of C-C chemokine receptor 5 (CCR5) in pressure overload-induced cardiac remodeling and dysfunction.
- To explore the therapeutic potential of CCR5 inhibition in a mouse model of AS.
Main Methods:
- Transverse aortic constriction (TAC) model in mice to induce pressure overload.
- Assessment of cardiac function, fibrosis, hypertrophy, and inflammation.
- Evaluation of chemokine and receptor levels (CCR5, CCL3, CCL4, CCL5).
- In vitro study using Angiotensin II-stimulated H9c2 cardiomyocytes to assess hypertrophy and signaling pathways (ERK1/2, P38).
Main Results:
- TAC mice showed increased myocardial levels of CCR5 and CCLs, alongside impaired cardiac function, hypertrophy, fibrosis, and inflammation.
- Administration of anti-CCR5 antibody ameliorated TAC-induced cardiac remodeling and dysfunction.
- CCR5 inhibition reduced ERK1/2 and P38 phosphorylation and attenuated Angiotensin II-induced cardiomyocyte hypertrophy.
Conclusions:
- CCR5 plays a significant role in pressure overload-induced cardiac remodeling and dysfunction.
- CCR5 inhibition demonstrates cardioprotective effects against AS-induced heart abnormalities.
- ERK1/2 and P38 signaling pathways are involved in the protective mechanisms of CCR5 inhibition.
Abstract:
Aortic stenosis (AS) leads to chronic pressure overload, cardiac remodeling and eventually heart failure. Chemokines and their receptors have been implicated in pressure overload‑induced cardiac remodeling and dysfunction. In the present study, the role of C‑C chemokine receptor 5 (CCR5) in pressure overload‑induced cardiac remodeling and dysfunction was investigated in mice subjected to transverse aortic constriction (TAC). Cardiac levels of CCR5 and C‑C motif chemokine ligands (CCLs)3, 4 and 5 were determined by western blotting and reverse transcription‑quantitative PCR, respectively. Cardiac functional parameters were evaluated by echocardiographic and hemodynamic measurements. Myocardial fibrosis was assessed by Masson's trichrome staining and α‑smooth muscle actin immunostaining. Myocardial hypertrophy and inflammatory cell infiltration were evaluated by hematoxylin and eosin staining. Angiotensin II (Ang II)‑induced hypertrophy of H9c2 cardiomyocytes was assessed by F‑actin immunostaining. ERK1/2 and P38 phosphorylation was examined by western blotting. TAC mice exhibited higher myocardial CCL3, CCL4, CCL5 and CCR5 levels compared with sham mice. Compared with sham mice, TAC mice also exhibited impaired cardiac function along with myocardial hypertrophy, fibrosis and inflammatory cell infiltration. TAC‑induced cardiac remodeling and dysfunction were effectively ameliorated by administration of anti‑CCR5 but not by IgG control antibody. Mechanistically, increased ERK1/2 and P38 phosphorylation was detected in TAC hearts and Ang II‑stimulated H9c2 cardiomyocytes. Treatment with anti‑CCR5 antibody decreased ERK1/2 and P38 phosphorylation and attenuated Ang II‑induced H9c2 cell hypertrophy. CCR5 inhibition protected against pressure overload‑induced cardiac abnormality. The findings of the present study indicate that ERK1/2 and P38 signaling pathways may be involved in the cardioprotective effects of CCR5 inhibition.
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