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Updated: Apr 5, 2026

Isolation of Functional Cardiac Immune Cells
Published on: December 5, 2011
Mast cells in human and experimental cardiometabolic diseases
Guo-Ping Shi1, Ilze Bot2, Petri T Kovanen3
1Department of Medicine, Brigham and Women's Hospital and Harvard Medical School, Boston, MA 02115, USA.
Insights
Mast cells play a key role in cardiometabolic diseases like atherosclerosis and diabetes. Inhibiting mast cell activation offers a promising therapeutic strategy for these conditions.
Area of Science:
- Cardiovascular Biology
- Immunology
- Metabolic Diseases
Background:
- Mast cells are inflammatory cells with diverse roles in cardiometabolic diseases.
- While scarce in healthy tissues, mast cells increase in number and activity in diseased states like atherosclerosis, obesity, and diabetes.
- Activated mast cells release mediators that can harm vascular cells and extracellular matrix.
Purpose of the Study:
- To investigate the role of mast cells in the pathogenesis of cardiometabolic diseases.
- To explore mast cell mediators as potential biomarkers and therapeutic targets.
Main Methods:
- Analysis of mast cell numbers and activity in healthy versus diseased human and animal tissues.
- Assessment of the impact of mast cell mediators on vascular cell function and extracellular matrix.
- Evaluation of mast cell modulation (genetic or pharmacological) in experimental cardiometabolic disease models.
Main Results:
- Elevated mast cell numbers and activity observed in patients and animal models of cardiometabolic diseases.
- Mast cell mediators identified as potential contributors to disease progression.
- Mast cell inhibition or depletion demonstrated to delay disease progression in mouse models.
Conclusions:
- Mast cells significantly contribute to the pathobiology of cardiometabolic disorders.
- Targeting mast cell activation or their mediators presents a novel therapeutic avenue for cardiometabolic diseases.
Abstract:
Mast cells, like many other types of inflammatory cell, perform pleiotropic roles in cardiometabolic diseases such as atherosclerosis, abdominal aortic aneurysms, obesity, and diabetes mellitus, as well as complications associated with these diseases. Low numbers of mast cells are present in the heart, aorta, and adipose tissue of healthy humans, but patients with cardiometabolic diseases and animals with experimentally-induced cardiometabolic pathologies have high numbers of mast cells with increased activity in the affected tissues. Mediators released by the activated mast cells, such as chemokines, cytokines, growth factors, heparin, histamine, and proteases, not only function as biomarkers of cardiometabolic diseases, but might also directly contribute to the pathogenesis of such diseases. Mast-cell mediators impede the functions of vascular cells, the integrity of the extracellular matrix, and the activity of other inflammatory cells, thereby contributing to the pathobiology of the conditions at multiple levels. In mouse models, mast-cell activation aggravates the progression of various cardiometabolic pathologies, whereas a genetic deficiency or pharmacological stabilization of mast cells, or depletion or inhibition of specific mast-cell mediators, tends to delay the progression of such conditions. Pharmacological inhibition of mast-cell activation or their targeted effector functions offers potential novel therapeutic strategies for patients with cardiometabolic disorders.
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