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Published on: July 14, 2023
Galectin-3 interferes with tissue repair and promotes cardiac dysfunction and comorbidities in a genetic heart
Fani Vlachou1, Aimilia Varela2, Konstantina Stathopoulou1
1Center of Basic Research, Biomedical Research Foundation Academy of Athens, 11527, Athens, Greece.
Insights
Galectin-3 drives heart failure by promoting cardiac fibrosis and inflammation. Inhibiting galectin-3 improves heart function and reduces fibrosis, establishing it as a therapeutic target for heart failure and associated lung conditions.
Area of Science:
- Cardiovascular Biology
- Immunology
- Genetics
Background:
- Galectin-3 is a biomarker for heart failure (HF) linked to myocardial fibrosis.
- Its causal role in HF pathogenesis is debated in some cardiac injury models.
Purpose of the Study:
- To investigate the causal role of galectin-3 in progressive heart failure using desmin-deficient mice.
- To evaluate the therapeutic potential of galectin-3 inhibition in HF and associated comorbidities.
Main Methods:
- Utilized desmin-deficient (des-/-) mice, a model of progressive HF with galectin-3 overexpression.
- Assessed cardiac function and fibrosis following genetic ablation or pharmacological inhibition of galectin-3.
- Monitored mice over 12 months, analyzing cardiac repair, fibroblast and macrophage functions, and lung pathology.
Main Results:
- Genetic or pharmacological inhibition of galectin-3 improved cardiac function and reduced fibrosis in des-/- mice.
- Galectin-3 deficiency ameliorated systolic dysfunction and preserved diastolic function, particularly in older mice.
- Absence of galectin-3 modulated macrophage-fibroblast interactions, suppressed pro-fibrotic gene expression, and enhanced fibroblast proliferation.
- Galectin-3 absence partially normalized lung compliance, mitigating emphysema-like comorbidities.
Conclusions:
- Galectin-3 causally contributes to cardiac remodeling, inflammation, and failure by influencing cardiac fibroblast and macrophage functions.
- Pharmacological inhibition of galectin-3 is effective in ameliorating cardiac pathology, identifying it as a viable therapeutic target for HF.
- Targeting galectin-3 offers potential benefits for treating associated comorbidities, including pulmonary defects.
Abstract:
Galectin-3, a biomarker for heart failure (HF), has been associated with myocardial fibrosis. However, its causal involvement in HF pathogenesis has been questioned in certain models of cardiac injury-induced HF. To address this, we used desmin-deficient mice (des-/-), a model of progressive HF characterized by cardiomyocyte death, spontaneous inflammatory responses sustaining fibrosis, and galectin-3 overexpression. Genetic ablation or pharmacological inhibition of galectin-3 led to improvement of cardiac function and adverse remodeling features including fibrosis. Over the course of development of des-/- cardiomyopathy, monitored for a period of 12 months, galectin-3 deficiency specifically ameliorated the decline in systolic function accompanying the acute inflammatory phase (4-week-old mice), whereas a more pronounced protective effect was observed in older mice, including the preservation of diastolic function. Interestingly, the cardiac repair activities during the early inflammatory phase were restored under galectin-3 deficiency by increasing the proliferation potential and decreasing apoptosis of fibroblasts, while galectin-3 absence modulated macrophage-fibroblast coupled functions and suppressed both pro-fibrotic activation of cardiac fibroblasts and pro-fibrotic gene expression in the des-/- heart. In addition, galectin-3 also affected the emphysema-like comorbid pathology observed in the des-/- mice, as its absence partially normalized lung compliance. Collectively galectin-3 was found to be causally involved in cardiac adverse remodeling, inflammation, and failure by affecting functions of cardiac fibroblasts and macrophages. In concordance with this role, the effectiveness of pharmacological inhibition in ameliorating cardiac pathology features establishes galectin-3 as a valid intervention target for HF, with additive benefits for treatment of associated comorbidities, such as pulmonary defects. Schematic illustrating top to bottom, the detrimental role of galectin-3 (Gal3) in heart failure progression: desmin deficiency-associated spontaneous myocardial inflammation accompanying cardiac cell death (reddish dashed border) is characterized by infiltration of macrophages (round cells) and up-regulation of Lgals3 (encoding secretable galectin-3, green) and detrimental macrophage-related genes (Ccr2 and Arg1). In this galectin-3-enriched milieu, the early up-regulation of profibrotic gene expression (Tgfb1, Acta2, Col1a1), in parallel to the suppression of proliferative activities and a potential of senescence induction by cardiac fibroblasts (spindle-like cells), collectively promote des-/- cardiac fibrosis and dysfunction establishing heart failure (left panel). Additionally, galectin-3+ macrophage-enrichment accompanies the development of emphysema-like lung comorbidities. In the absence of galectin-3 (right panel), the effect of macrophage-fibroblast dipole and associated events are modulated (grey color depicts reduced expression or activities) leading to attenuated cardiac pathology in the des-/-Lgals3-/- mice. Pulmonary comorbidities are also limited.
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