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Published on: February 10, 2013
Intracerebral Hemorrhage Induces Cardiac Dysfunction in Mice Without Primary Cardiac Disease
Wei Li1,2,3, Linlin Li1,2, Michael Chopp3,4
1Department of Geriatrics, Tianjin Medical University General Hospital, Tianjin, China.
Insights
Intracerebral hemorrhage (ICH) causes progressive cardiac dysfunction in mice, worsening over time. This brain injury elevates oxidative stress and inflammation in the heart, contributing to heart problems.
Area of Science:
- Cardiovascular Medicine
- Neurology
- Pathology
Background:
- Intracerebral hemorrhage (ICH) is a severe stroke subtype with global health implications.
- Understanding the brain-heart axis is crucial for managing ICH outcomes.
- This study examines cardiac effects of ICH independent of primary heart disease.
Purpose of the Study:
- To investigate brain-heart interactions following ICH in a mouse model.
- To determine if ICH induces cardiac dysfunction.
- To elucidate mechanisms, including oxidative stress and inflammation, mediating cardiac dysfunction post-ICH.
Main Methods:
- An autologous blood injection model was used to induce ICH in adult male C57BL/6J mice.
- Cardiac function was assessed via echocardiography at 7 and 28 days post-ICH.
- Heart tissue analysis included Western blot and immunostaining for oxidative stress and inflammation markers.
Main Results:
- ICH mice showed significantly reduced left ventricular ejection fraction and fractional shortening at 7 and 28 days post-ICH.
- Cardiac dysfunction worsened progressively from 7 to 28 days after ICH.
- ICH led to increased cardiomyocyte apoptosis, inflammation, oxidative stress, hypertrophy, and fibrosis in the heart.
Conclusions:
- Intracerebral hemorrhage induces significant and progressive cardiac dysfunction in mice.
- Elevated cardiac oxidative stress and inflammation are key mediators of ICH-induced cardiac dysfunction.
Abstract:
Background: Intracerebral hemorrhage (ICH) is a life threatening stroke subtype and a worldwide health problem. In this study, we investigate brain-heart interaction after ICH in mice and test whether ICH induces cardiac dysfunction in the absence of primary cardiac disease. We also investigate underlying mechanisms such as oxidative stress and inflammatory responses in mediating cardiac dysfunction post-ICH in mice. Methods: Male, adult (3-4 m) C57BL/6J mice were subjected to sham surgery or ICH using an autologous blood injection model (n = 16/group). Cardiac function was evaluated at 7 and 28 days after ICH using echocardiography (n = 8/group per time point). Western blot and immunostaining analysis were employed to assess oxidative stress and inflammatory responses in the heart. Results: Mice subjected to ICH exhibited significantly decreased cardiac contractile function measured by left ventricular ejection fraction (LVEF) and left ventricular fractional shortening (LVFS) at 7 and 28 days after ICH compared to sham-control mice (p < 0.05). ICH induced cardiac dysfunction was significantly worse at 28 days than at 7 days after ICH (p < 0.05). ICH in mice significantly increased cardiomyocyte apoptosis, inflammatory factor expression and inflammatory cell infiltration in heart tissue, and induced cardiac oxidative stress at 7 days post-ICH compared to sham-control mice. Compared to sham-control mice, ICH-mice also exhibited significantly increased (p < 0.05) cardiomyocyte hypertrophy and cardiac fibrosis at 28 days after ICH. Conclusions: ICH induces significant and progressive cardiac dysfunction in mice. ICH increases cardiac oxidative stress and inflammatory factor expression in heart tissue which may play key roles in ICH-induced cardiac dysfunction.
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