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Published on: June 14, 2016
Hypertensive myocardial fibrosis and diastolic dysfunction: another model of inflammation?
Fumitaka Kuwahara1, Hisashi Kai, Keisuke Tokuda
1Internal Medicine III and Cardiovascular Research Institute, Kurume University School of Medicine, Kurume, Japan.
Insights
Macrophages drive myocardial fibrosis and diastolic dysfunction in hypertensive hearts. Blocking myocyte chemoattractant protein-1 (MCP-1) with antibodies reduces fibrosis and improves heart function, offering a new therapeutic strategy.
Area of Science:
- Cardiovascular Biology
- Immunology
- Pathology
Background:
- Hypertension-induced myocardial fibrosis impairs diastolic function.
- Macrophages are implicated in fibrotic processes in various diseases.
- The specific role of macrophages in pressure-overload-induced cardiac remodeling is not fully understood.
Purpose of the Study:
- To investigate the role of macrophages in myocardial remodeling and cardiac dysfunction in pressure-overloaded hearts.
- To explore the potential of targeting macrophage accumulation as a therapeutic strategy.
Main Methods:
- Wistar rats underwent suprarenal aortic constriction to induce pressure overload.
- Macrophage accumulation, fibroblast proliferation, and inflammatory markers (MCP-1, TGF-beta) were assessed.
- Cardiac structure and function were evaluated using echocardiography and hemodynamic studies.
- Rats were treated with anti-MCP-1 neutralizing antibody to assess therapeutic effects.
Main Results:
- Pressure overload led to perivascular macrophage accumulation, fibroblast proliferation, and increased MCP-1 and TGF-beta.
- Concentric left ventricular hypertrophy, reactive fibrosis, and diastolic dysfunction were observed.
- Anti-MCP-1 antibody treatment reduced macrophage accumulation, fibroblast proliferation, and TGF-beta induction.
- Therapy attenuated myocardial fibrosis and ameliorated diastolic dysfunction without affecting systolic function or blood pressure.
Conclusions:
- MCP-1-mediated macrophage accumulation plays a key role in myocardial fibrosis in pressure-overloaded hearts, potentially via a TGF-beta-mediated pathway.
- Inhibiting MCP-1-driven inflammation may be a novel strategy to prevent myocardial fibrosis and diastolic dysfunction in hypertensive hearts.
Abstract:
Excessive myocardial fibrosis deteriorates diastolic function in hypertensive hearts. Involvement of macrophages is suggested in fibrotic process in various diseased situations. We sought to examine the role of macrophages in myocardial remodeling and cardiac dysfunction in pressure-overloaded hearts. In Wistar rats with suprarenal aortic constriction, pressure overload induced perivascular macrophage accumulation and fibroblast proliferation with a peak at day 3, decreasing to lower levels by day 28. Myocyte chemoattractant protein (MCP)-1 mRNA was upregulated after day 1, peaking at day 3 and returning to insignificant levels by day 28, whereas transforming growth factor (TGF)-beta induction was observed after day 3, with a peak at day 7, and remained relatively elevated at day 28. After day 7, concentric left ventricular (LV) hypertrophy developed, associated with reactive fibrosis and myocyte hypertrophy. At day 28, echocardiography showed normal LV fractional shortening but decreased ratio of early to late filling wave of transmitral Doppler velocity, and hemodynamic studies revealed elevated LV end-diastolic pressure, suggesting normal systolic but impaired diastolic function. Chronic treatment with an anti-MCP-1 monoclonal neutralizing antibody inhibited not only macrophage accumulation but also fibroblast proliferation and TGF-beta induction. Furthermore, the neutralizing antibody attenuated myocardial fibrosis, but not myocyte hypertrophy, and ameliorated diastolic dysfunction without affecting blood pressure and systolic function. In conclusion, roles of MCP-1-mediated macrophage accumulation are suggested in myocardial fibrosis in pressure-overloaded hearts through TGF-beta-mediated process. Inhibition of inflammation may be a new strategy to prevent myocardial fibrosis and resultant diastolic dysfunction in hypertensive hearts.
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