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Updated: Apr 4, 2026

Isolation of Macrophage Subsets and Stromal Cells from Human and Mouse Myocardial Specimens
Published on: December 17, 2019
Cardiomyocytes induce macrophage receptor shedding to suppress phagocytosis
Shuang Zhang1, Xin-Yi Yeap1, Lubov Grigoryeva1
1Feinberg Cardiovascular Research Institute, Northwestern University, Chicago, IL, USA; Surgery-Organ Transplantation, Northwestern University, Chicago, IL, USA.
Insights
Cardiomyocyte clearance by macrophages is inefficient after heart injury, partly due to dying heart cells causing the shedding of MER-tyrosine kinase (MERTK) on macrophages, hindering cardiac repair.
Area of Science:
- Cardiovascular Biology
- Immunology
- Cellular Biology
Background:
- Effective clearance of dying cardiomyocytes is crucial for heart repair following injury.
- Suboptimal clearance can lead to secondary necrosis and further myocyte loss.
- The cellular and molecular mechanisms of myocyte phagocytosis remain poorly understood.
Purpose of the Study:
- To investigate the expression of the phagocytic receptor MER-tyrosine kinase (MERTK) in human hearts.
- To elucidate the sequential steps and efficiency of macrophage-mediated phagocytosis of dying adult cardiomyocytes.
Main Methods:
- Analysis of MERTK expression in infarcted human and ischemic mouse hearts.
- Electron microscopy to visualize MERTK localization on macrophage phagocytic cups.
- Ex vivo co-culture of primary macrophages and adult cardiomyocyte apoptotic bodies.
Main Results:
- MERTK expression in infarcted human hearts mirrored that in mouse models.
- Macrophages lacking MERTK showed reduced clearance of myocyte debris post-infarction.
- Cardiomyocyte phagocytosis was inefficient ex vivo, not due to size or initial binding, but myocyte-induced MERTK inactivation.
Conclusions:
- Cardiomyocyte phagocytosis is inefficient, partly due to myocyte-induced shedding of macrophage MERTK.
- This shedding impairs the clearance of dying heart cells, impacting cardiac repair.
- Further research is needed to identify factors in macrophage-cardiomyocyte interactions affecting heart disease.
Background:
Mobilization of the innate immune response to clear and metabolize necrotic and apoptotic cardiomyocytes is a prerequisite to heart repair after cardiac injury. Suboptimal kinetics of dying myocyte clearance leads to secondary necrosis, and in the case of the heart, increased potential for collateral loss of neighboring non-regenerative myocytes. Despite the importance of myocyte phagocytic clearance during heart repair, surprisingly little is known about its underlying cell and molecular biology.
Objective:
To determine if phagocytic receptor MERTK is expressed in human hearts and to elucidate key sequential steps and phagocytosis efficiency of dying adult cardiomyocytes, by macrophages.
Results:
In infarcted human hearts, expression profiles of the phagocytic receptor MER-tyrosine kinase (MERTK) mimicked that found in experimental ischemic mouse hearts. Electron micrographs of myocardium identified MERTK signal along macrophage phagocytic cups and Mertk-/- macrophages contained reduced digested myocyte debris after myocardial infarction. Ex vivo co-culture of primary macrophages and adult cardiomyocyte apoptotic bodies revealed reduced engulfment relative to resident cardiac fibroblasts. Inefficient clearance was not due to the larger size of myocyte apoptotic bodies, nor were other key steps preceding the formation of phagocytic synapses significantly affected; this included macrophage chemotaxis and direct binding of phagocytes to myocytes. Instead, suppressed phagocytosis was directly associated with myocyte-induced inactivation of MERTK, which was partially rescued by genetic deletion of a MERTK proteolytic susceptibility site.
Conclusion:
Utilizing an ex vivo co-cultivation approach to model key cellular and molecular events found in vivo during infarction, cardiomyocyte phagocytosis was found to be inefficient, in part due to myocyte-induced shedding of macrophage MERTK. These findings warrant future studies to identify other cofactors of macrophage-cardiomyocyte cross-talk that contribute to cardiac pathophysiology.
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