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Published on: July 14, 2023
Methylglyoxal-derived advanced glycation end products contribute to negative cardiac remodeling and dysfunction
Nick J R Blackburn1,2, Branka Vulesevic1,2, Brian McNeill1
1Division of Cardiac Surgery, University of Ottawa Heart Institute, 40 Ruskin Street, Ottawa, K1Y4W7, Canada.
Abstract:
Advanced glycation end-products (AGEs) have been associated with poorer outcomes after myocardial infarction (MI), and linked with heart failure. Methylglyoxal (MG) is considered the most important AGE precursor, but its role in MI is unknown. In this study, we investigated the involvement of MG-derived AGEs (MG-AGEs) in MI using transgenic mice that over-express the MG-metabolizing enzyme glyoxalase-1 (GLO1). MI was induced in GLO1 mice and wild-type (WT) littermates. At 6 h post-MI, mass spectrometry revealed that MG-H1 (a principal MG-AGE) was increased in the hearts of WT mice, and immunohistochemistry demonstrated that this persisted for 4 weeks. GLO1 over-expression reduced MG-AGE levels at 6 h and 4 weeks, and GLO1 mice exhibited superior cardiac function at 4 weeks post-MI compared to WT mice. Immunohistochemistry revealed greater vascular density and reduced cardiomyocyte apoptosis in GLO1 vs. WT mice. The recruitment of c-kit+ cells and their incorporation into the vasculature (c-kit+CD31+ cells) was higher in the infarcted myocardium of GLO1 mice. MG-AGEs appeared to accumulate in type I collagen surrounding arterioles, prompting investigation in vitro. In culture, the interaction of angiogenic bone marrow cells with MG-modified collagen resulted in reduced cell adhesion, increased susceptibility to apoptosis, fewer progenitor cells, and reduced angiogenic potential. This study reveals that MG-AGEs are produced post-MI and identifies a causative role for their accumulation in the cellular changes, adverse remodeling and functional loss of the heart after MI. MG may represent a novel target for preventing damage and improving function of the infarcted heart.
Insights
Methylglyoxal-derived advanced glycation end-products (MG-AGEs) accumulate after myocardial infarction (MI), impairing heart function. Overexpressing glyoxalase-1 (GLO1) reduced MG-AGEs and improved cardiac outcomes in mice.
Area of Science:
- Cardiovascular Biology
- Metabolic Medicine
- Biochemistry
Background:
- Advanced glycation end-products (AGEs) are linked to poor outcomes post-myocardial infarction (MI) and heart failure.
- Methylglyoxal (MG) is a key precursor to AGEs, but its specific role in MI pathogenesis is unclear.
Purpose of the Study:
- To investigate the involvement of MG-derived AGEs (MG-AGEs) in the cardiac response to MI.
- To assess the therapeutic potential of enhancing MG metabolism via glyoxalase-1 (GLO1) in a mouse model of MI.
Main Methods:
- Induced MI in wild-type (WT) and GLO1-overexpressing transgenic mice.
- Quantified MG-H1 (an MG-AGE) levels using mass spectrometry and immunohistochemistry.
- Assessed cardiac function, vascular density, cardiomyocyte apoptosis, and progenitor cell incorporation post-MI.
Main Results:
- MG-AGEs significantly increased in WT mouse hearts post-MI, persisting for 4 weeks.
- GLO1 overexpression reduced MG-AGE levels and improved cardiac function at 4 weeks post-MI.
- GLO1 mice showed enhanced vascular density, reduced cardiomyocyte apoptosis, and increased c-kit+ cell incorporation compared to WT mice.
Conclusions:
- MG-AGEs are produced post-MI and contribute to adverse cardiac remodeling and functional decline.
- Accumulation of MG-AGEs in collagen impairs angiogenic cell function in vitro.
- Targeting MG metabolism, potentially via GLO1, may offer a novel therapeutic strategy for post-MI recovery.
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