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Investigating Aortic Valve Calcification via Isolation and Culture of T Lymphocytes using Feeder Cells from Irradiated Buffy Coat
Published on: February 4, 2021
Macrophages as key modulators of calcific aortic valve disease
Nervana Issa1, Gérémy Blot1, Alexandre Candellier1
1UR UPJV 7517, MP3CV, CURS, Amiens, France.
Insights
Macrophages play a dual role in calcific aortic valve disease (CAVD), a common heart condition. Understanding their complex functions is key to developing new therapies for aortic stenosis (AS).
Area of Science:
- Cardiovascular Biology
- Immunology
- Translational Medicine
Background:
- Calcific aortic valve disease (CAVD) is the most prevalent valvular heart disease, characterized by aortic valve (AV) leaflet remodeling leading to aortic stenosis (AS).
- Current treatments for AS are limited, with valve replacement being the standard intervention.
- Macrophages, immune cells with high plasticity, are increasingly recognized as critical players in CAVD pathogenesis, influencing valve remodeling.
Purpose of the Study:
- To review the multifaceted roles of different macrophage subsets in the development, progression, and potential reversal of AV remodeling in CAVD.
- To explore the therapeutic potential of targeting macrophage functions for managing AS.
Main Methods:
- This review synthesizes current research on macrophage biology in the context of CAVD.
- It examines the mechanisms by which macrophages promote or inhibit AV calcification, fibrosis, and mineralization.
- The review also considers macrophage involvement in both native and bioprosthetic valves.
Main Results:
- Inflammatory macrophages contribute to CAVD by releasing pro-osteogenic factors like BMP2 and promoting oxidative stress.
- Immunomodulatory macrophages can offer protection by inhibiting calcification but may paradoxically promote fibrosis through pro-fibrotic factor secretion and myeloid-to-mesenchymal transition.
- Macrophages in the AV can adopt osteoclast-like phenotypes, indicating bone-like remodeling processes within the valve.
Conclusions:
- The phenotypic plasticity of macrophages complicates CAVD pathogenesis, necessitating a deeper understanding of their diverse functions.
- Targeting specific macrophage subsets or their activities presents a promising therapeutic strategy to slow AS progression.
- Further research into macrophage plasticity is crucial for developing effective preventive and therapeutic interventions for CAVD.
Abstract:
Calcific aortic valve disease (CAVD), defined by thickening, fibrosis, and mineralization of the aortic valve (AV) leaflets, is the most common valvular heart disease worldwide. This progressive remodeling gradually impairs valve opening, obstructing blood flow. Without intervention, the resulting aortic stenosis (AS) causes hemodynamic deterioration that ultimately leads to heart failure and death. To date, therapeutic options remain limited, making valve replacement the reference treatment. While valvular endothelial and interstitial cells have traditionally been considered the primary drivers of the osteogenic program underlying AV remodeling, recent evidence highlights a central role for macrophages, whose plasticity profoundly impacts the local microenvironment. In their inflammatory state, macrophages release cytokines, generate oxidative stress, and secrete Bone Morphogenetic Protein 2 (BMP2), which promotes the osteogenic transformation of valvular cells. The resulting calcium crystal deposition further amplifies macrophage-driven inflammation, creating a vicious cycle. Conversely, immunomodulatory macrophages can protect against CAVD by releasing pyrophosphate, a calcification inhibitor. However, these macrophages also secrete pro-fibrotic factors and may undergo myeloid-to-mesenchymal transition, processes that paradoxically contribute to AV fibrosis and mineralization. In addition, macrophages within the AV can differentiate into osteoclast-like cells, suggesting that a bone-like remodeling process occurs in the cardiovascular wall. This high phenotypic plasticity complicates our understanding of CAVD pathogenesis and highlights the need for deeper insight into macrophage functions to design effective preventive and therapeutic strategies. This review summarizes the mechanisms through which different macrophage subsets promote, prevent, or reverse AV remodeling, in both native and bioprosthetic contexts, and explores the therapeutic potential of targeting macrophages or their activity to slow AS progression.
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