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Published on: December 3, 2020
CD47 Blockade Reprograms the Monocyte-Macrophage Axis to Promote Inflammation Resolution in Atherosclerosis
Murat Kirtay1,2, Mikael Ispirjan1,2, Benjamin Bonnard1,2
1Department of Cardiology, Angiology, and Pneumology, Heidelberg University Hospital.
Insights
CD47 blockade reprograms myeloid cells in atherosclerosis, suppressing inflammatory monocytes and boosting efferocytic macrophages. This innate immune checkpoint inhibition restores apoptotic cell clearance, resolving vascular inflammation.
Area of Science:
- Immunology
- Cardiovascular Disease
- Cell Biology
Background:
- Atherosclerosis is a major cause of cardiovascular death, driven by chronic inflammation and impaired efferocytosis (clearance of dead cells).
- The CD47-SIRPα axis acts as a "don't-eat-me" signal, hindering efferocytosis and promoting disease progression.
- Understanding how interventions targeting this pathway remodel established lesions is crucial.
Purpose of the Study:
- To investigate the impact of CD47 blockade on the immune cell landscape within established atherosclerotic lesions.
- To elucidate the mechanisms by which anti-CD47 therapy reshapes myeloid cell populations and restores efferocytic function.
Main Methods:
- Single-cell transcriptomics and monocyte fate mapping in murine atherosclerosis models.
- Functional analyses to assess efferocytosis and macrophage proliferation.
- Cross-species integration with human coronary artery single-cell data.
Main Results:
- CD47 blockade selectively reduced inflammatory Ly6C hi monocyte recruitment and local macrophage proliferation.
- Therapy enriched pro-efferocytic macrophage subsets, restoring in situ apoptotic cell clearance.
- A conserved TREM2 hi macrophage population with efferocytic machinery was identified across species.
Conclusions:
- CD47 blockade fundamentally reprograms the myeloid landscape in established atherosclerotic lesions.
- The therapy promotes a dual mechanism: suppressing inflammatory influx and enhancing efferocytic capacity.
- This approach offers a promising strategy for resolving vascular inflammation in atherosclerosis.
Abstract:
Atherosclerosis is a chronic inflammatory disease and a leading cause of cardiovascular mortality worldwide. Disease progression is closely linked to defective efferocytosis, the impaired clearance of apoptotic cells, which drives necrotic core expansion and perpetuates arterial inflammation. Targeting the CD47-SIRPα innate immune checkpoint, a dominant "don't-eat-me" signal, limits atherosclerosis in preclinical models and retrospective human studies. However, how pro-efferocytic intervention reshapes the immune landscape of established atherosclerotic lesions remains incompletely understood. Here, using single-cell transcriptomics, monocyte fate mapping, and functional analyses across complementary preventive and interventive murine atherosclerosis models, we demonstrate that CD47 blockade fundamentally reprograms the myeloid landscape of established lesions. Anti-CD47 therapy selectively suppresses inflammatory Ly6Chi monocyte recruitment and reduces local macrophage proliferation without altering overall plaque macrophage burden, indicating a qualitative rather than quantitative remodeling of the infiltrate. Concurrently, therapy enriches macrophage subsets bearing pro-efferocytic and macrophage survival-associated transcriptional programs, restoring defective apoptotic cell clearance in situ. Cross-species integration with an independent human coronary artery single-cell dataset identifies a conserved TREM2hi macrophage population that natively harbors the efferocytosis machinery reactivated by therapy in mice. Together, these findings demonstrate that innate immune checkpoint inhibition by CD47 blockade drives a coordinated reprogramming of monocyte-macrophage dynamics, simultaneously suppressing inflammatory influx and enriching efferocytic capacity. This dual mechanism advances our understanding of how pro-efferocytic therapies resolve vascular inflammation in atherosclerosis.
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