Related Experiment Video
Updated: Sep 22, 2025

Quantification of Monocyte Transmigration and Foam Cell Formation from Individuals with Chronic Inflammatory Conditions
Published on: October 17, 2017
Myeloid CD40 deficiency reduces atherosclerosis by impairing macrophages' transition into a pro-inflammatory state
Laura A Bosmans1, Claudia M van Tiel1, Suzanne A B M Aarts1
1Department of Medical Biochemistry, Amsterdam Cardiovascular Sciences (ACS) & Amsterdam Infection and Immunity (AII), Amsterdam University Medical Centres, University of Amsterdam, Amsterdam, The Netherlands.
Insights
Targeting CD40 signaling in myeloid cells, specifically macrophages, reduces atherosclerosis development and systemic inflammation. This highlights CD40 as a therapeutic target for stable plaque formation in atherosclerosis.
Area of Science:
- Cardiovascular Research
- Immunology
- Molecular Biology
Background:
- CD40 and CD40L are critical drivers of atherosclerotic plaque development.
- Disrupting CD40 signaling reduces experimental atherosclerosis and promotes plaque stability.
- Previous work demonstrated CD40-TRAF6 inhibition attenuates atherosclerosis in mice.
Purpose of the Study:
- To investigate the role of myeloid CD40 in atherosclerosis.
- To utilize myeloid-specific CD40-deficient mice to detail its function.
Main Methods:
- Generated myeloid-specific CD40-deficient mice (CD40mac-/-) on an Apoe-/- background.
- Analyzed atherosclerotic lesion size, plaque macrophage content, and necrotic core size.
- Performed transcriptomics and mass cytometry on aortas and bone marrow-derived macrophages.
Main Results:
- CD40mac-/- mice showed reduced atherosclerotic lesion size and plaque macrophage content.
- Plaques in CD40mac-/- mice had smaller necrotic cores and downregulated immune/inflammatory pathways.
- Loss of CD40 in macrophages increased alternative/resident-like macrophage subsets and associated gene expression.
Conclusions:
- Absence of myeloid CD40 signaling reduces atherosclerosis and systemic inflammation.
- This occurs by preventing macrophage polarization towards pro-inflammatory states.
- Macrophage-targeted CD40 inhibition is a promising therapeutic strategy for atherosclerosis.
Aims:
CD40 and its ligand, CD40L, play a critical role in driving atherosclerotic plaque development. Disrupted CD40-signalling reduces experimental atherosclerosis and induces a favourable stable plaque phenotype. We recently showed that small molecule-based inhibition of CD40-tumour necrosis factor receptor associated factor-6 interactions attenuates atherosclerosis in hyperlipidaemic mice via macrophage-driven mechanisms. The present study aims to detail the function of myeloid CD40 in atherosclerosis using myeloid-specific CD40-deficient mice.
Method And Results:
Cd40flox/flox and LysM-cre Cd40flox/flox mice on an Apoe-/- background were generated (CD40wt and CD40mac-/-, respectively). Atherosclerotic lesion size, as well as plaque macrophage content, was reduced in CD40mac-/- compared to CD40wt mice, and their plaques displayed a reduction in necrotic core size. Transcriptomics analysis of the CD40mac-/- atherosclerotic aorta revealed downregulated pathways of immune pathways and inflammatory responses. Loss of CD40 in macrophages changed the representation of aortic macrophage subsets. Mass cytometry analysis revealed a higher content of a subset of alternative or resident-like CD206+CD209b- macrophages in the atherosclerotic aorta of CD40mac-/- compared to CD40wt mice. RNA-sequencing of bone marrow-derived macrophages of CD40mac-/- mice demonstrated upregulation of genes associated with alternatively activated macrophages (including Folr2, Thbs1, Sdc1, and Tns1).
Conclusions:
We here show that absence of CD40 signalling in myeloid cells reduces atherosclerosis and limits systemic inflammation by preventing a shift in macrophage polarization towards pro-inflammatory states. Our study confirms the merit of macrophage-targeted inhibition of CD40 as a valuable therapeutic strategy to combat atherosclerosis.
Related Concept Videos
Inflammation
Atherosclerosis I: Introduction
Coronary Artery Disease II: Pathophysiology
Differentiation of Common Myeloid Progenitor Cells

