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Updated: May 4, 2026

Cardiac Catheterization in Mice to Measure the Pressure Volume Relationship: Investigating the Bowditch Effect
Published on: June 14, 2015
Mechanistic relationship between membrane type-1 matrix metalloproteinase and the myocardial response to pressure
Michael R Zile1, Catalin F Baicu, Robert E Stroud
1Division of Cardiology, Department of Medicine and Division of Cardiothoracic Surgery, Department of Surgery, R.H. Johnson Department of Veterans Affairs Medical Center, Medical University of South Carolina, Charleston; and W.J.B. Dorn Department of Veterans Affairs Medical Center, University of South Carolina School of Medicine, Columbia.
Background:
Although matrix metalloproteinases (MMPs) were initially thought to result primarily in extracellular matrix degradation, certain MMP types, such as membrane type-1 (MT1) MMP, may also be involved in profibrotic cascades through hydrolysis of latency-associated transforming growth factor-binding protein (LTBP-1) and activation of transforming growth factor-dependent profibrotic signaling. The present study tested the hypothesis that MT1-MMP plays a direct role in the matrix remodeling response to a left ventricular (LV) pressure overload (PO) stimulus.
Methods And Results:
Wild-type (WT) and transgenic mice with cardiac-restricted MT1-MMP overexpression or MT1-MMP reduced expression underwent PO for 4 weeks. PO resulted in a 57% increase in LV mass (no change in LV end diastolic volume, resulting in an increase in the LV mass/volume ratio consistent with concentric remodeling), a 60% increase in MT1-MMP-mediated LTBP-1 hydrolysis and a 190% increase in collagen content in WT mice. Although LV mass was similar among WT, MT1-MMP overexpression, and MT1-MMP reduced expression after PO, significant differences in LV function, MT1-MMP-mediated LTBP-1 hydrolysis, and collagen content occurred. PO in MT1-MMP overexpression increased LTBP-1 hydrolysis (18%), collagen content (60%), and left atrial dimension (19%; indicative of LV diastolic dysfunction) when compared with WT. PO in MT1-MMP reduced expression reduced left atrial dimension (19%), LTBP-1 hydrolysis (40%), and collagen content (32%) when compared with both WT.
Conclusions:
Despite an equivalent PO stimulus and magnitude of LV myocardial growth, altering MT1-MMP levels caused specific matrix-dependent changes in remodeling, thereby demonstrating a mechanistic role in the development of the maladaptive remodeling and myocardial fibrotic response to PO.
Insights
Membrane type-1 matrix metalloproteinase (MT1-MMP) directly influences cardiac remodeling after pressure overload. Modulating MT1-MMP levels alters matrix remodeling and fibrosis, impacting heart function.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Extracellular Matrix Biology
Background:
- Matrix metalloproteinases (MMPs) were traditionally linked to matrix degradation.
- Specific MMPs, like MT1-MMP, may activate profibrotic signaling by cleaving LTBP-1.
- The role of MT1-MMP in cardiac pressure overload remodeling was investigated.
Purpose of the Study:
- To test if MT1-MMP plays a direct role in matrix remodeling during left ventricular pressure overload.
- To investigate the impact of altered MT1-MMP levels on cardiac fibrosis and function.
Main Methods:
- Wild-type and MT1-MMP genetically modified mice were subjected to 4 weeks of pressure overload.
- Left ventricular mass, function, LTBP-1 hydrolysis, and collagen content were assessed.
- Cardiac-restricted MT1-MMP overexpression and reduced expression models were used.
Main Results:
- Pressure overload increased LV mass, MT1-MMP-mediated LTBP-1 hydrolysis, and collagen content in wild-type mice.
- MT1-MMP overexpression exacerbated LTBP-1 hydrolysis, collagen deposition, and diastolic dysfunction.
- Reduced MT1-MMP expression attenuated these fibrotic and functional changes.
Conclusions:
- Altering MT1-MMP levels significantly impacts matrix remodeling and fibrosis in response to pressure overload.
- MT1-MMP plays a mechanistic role in maladaptive cardiac remodeling and fibrosis.
- These findings highlight MT1-MMP as a potential therapeutic target in cardiac fibrosis.
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