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Updated: May 25, 2026

Permanent Ligation of the Left Anterior Descending Coronary Artery in Mice: A Model of Post-myocardial Infarction Remodelling and Heart Failure
Published on: December 2, 2014
Myocardial collagen matrix remodelling in arterial hypertension
C G Brilla1, B Maisch, K T Weber
1Division of Cardiology, Philipps University of Marburg, Germany.
Insights
Cardiac fibroblasts drive myocardial fibrosis in hypertension, leading to heart failure. Targeting collagen matrix regulation, particularly via the renin-angiotensin-aldosterone system (RAAS), can prevent adverse structural remodeling.
Area of Science:
- Cardiovascular Biology
- Cardiac Fibrosis
- Myocardial Remodeling
Background:
- The cardiac interstitium, comprising non-myocyte cells and a collagen network, dictates myocardial structure and mechanical function.
- Alterations in non-myocyte cells, especially cardiac fibroblasts, lead to collagen accumulation and myocardial dysfunction in hypertension.
Purpose of the Study:
- To review the role of the fibrillar collagen network in normal and hypertensive myocardium.
- To highlight the significance of cardiac fibroblasts in adverse structural remodeling and diastolic dysfunction.
- To explore pharmacological strategies targeting collagen matrix regulation.
Main Methods:
- Review of existing literature on myocardial structure, cardiac fibroblasts, and collagen synthesis/degradation.
- Examination of the role of the renin-angiotensin-aldosterone system (RAAS) in myocardial remodeling.
- Analysis of studies investigating the effects of RAAS inhibition on cardiac fibrosis.
Main Results:
- Cardiac fibroblasts are key mediators of myocardial fibrosis and structural remodeling in hypertension.
- Fibrosis significantly contributes to diastolic dysfunction and systolic failure.
- Renin-angiotensin-aldosterone system (RAAS) inhibition demonstrates cardioprotective effects, preventing fibrosis and restoring function in hypertensive models.
Conclusions:
- Cardiac fibroblasts play a critical, often neglected, role in hypertension-induced myocardial remodeling.
- Pharmacological interventions targeting collagen matrix regulation, particularly RAAS inhibition, can prevent adverse cardiac structural changes and preserve function.
Abstract:
The cardiac interstitium is composed of non-myocyte cells and a structural fibrillar protein network which plays a dominant role in governing the structure, architecture, and mechanical behaviour of the myocardium. Herein we review the fibrillar collagen network, its various components, and the functions they serve in the normal and structurally remodelled myocardium in arterial hypertension. The heterogeneity in myocardial structure, created by the altered behaviour of non-myocyte cells, particularly cardiac fibroblasts, which are responsible for collagen synthesis or degradation and thereby fibrous tissue accumulation, is a major determinant for the appearance of diastolic dysfunction and ultimately systolic myocardial failure. Regulatory mechanisms related to this fibrous tissue response are reviewed to draw attention to the hitherto neglected role of cardiac fibroblasts in mediating adverse structural remodelling of the myocardium and showing how this can be prevented through the use of pharmacological agents that interfere with the regulation of the myocardial collagen matrix. Several lines of evidence suggest that circulating and tissue renin-angiotensin-aldosterone systems (RAAS) are involved in the structural remodelling of the non-myocyte compartment. These include the cardioprotective effects of angiotensin converting enzyme (ACE) inhibition and aldosterone receptor antagonism that were found to prevent myocardial fibrosis in the rat with renovascular hypertension. In the rat with genetic hypertension, established left ventricular hypertrophy and abnormal myocardial diastolic stiffness due to interstitial fibrosis, RAAS inhibition resulted in restoration of myocardial structure and function to normal.(ABSTRACT TRUNCATED AT 250 WORDS)
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