Related Experiment Video
Updated: Oct 13, 2025

Induction of Atherosclerotic Plaques Through Activation of Mineralocorticoid Receptors in Apolipoprotein E-deficient Mice
Published on: September 26, 2018
Stimulation of the PD-1 Pathway Decreases Atherosclerotic Lesion Development in Ldlr Deficient Mice
Hendrika W Grievink1,2, Virginia Smit1, Robin A F Verwilligen1
1Division of BioTherapeutics, Leiden Academic Centre for Drug Research (LACDR), Leiden University, Leiden, Netherlands.
Abstract:
Aim: Signaling through the coinhibitory programmed death (PD)-1/PD-L1 pathway regulates T cell responses and can inhibit ongoing immune responses. Inflammation is a key process in the development of atherosclerosis, the underlying cause for the majority of cardiovascular diseases. Dampening the excessive immune response that occurs during atherosclerosis progression by promoting PD-1/PD-L1 signaling may have a high therapeutic potential to limit disease burden. In this study we therefore aimed to assess whether an agonistic PD-1 antibody can diminish atherosclerosis development. Methods and Results: Ldlr-/- mice were fed a western-type diet (WTD) while receiving 100 μg of an agonistic PD-1 antibody or control vehicle twice a week. Stimulation of the PD-1 pathway delayed the WTD-induced monocyte increase in the circulation up to 3 weeks and reduced T cell activation and proliferation. CD4+ T cell numbers in the atherosclerotic plaque were reduced upon PD-1 treatment. More specifically, we observed a 23% decrease in atherogenic IFNγ-producing splenic CD4+ T cells and a 20% decrease in cytotoxic CD8+ T cells, whereas atheroprotective IL-10 producing CD4+ T cells were increased with 47%. Furthermore, we found an increase in regulatory B cells, B1 cells and associated atheroprotective circulating oxLDL-specific IgM levels in agonistic PD-1-treated mice. This dampened immune activation following agonistic PD-1 treatment resulted in reduced atherosclerosis development (p < 0.05). Conclusions: Our data show that stimulation of the coinhibitory PD-1 pathway inhibits atherosclerosis development by modulation of T- and B cell responses. These data support stimulation of coinhibitory pathways as a potential therapeutic strategy to combat atherosclerosis.
Insights
Stimulating programmed death (PD)-1 signaling with an antibody reduced atherosclerosis in mice. This approach modulated T and B cell responses, offering a potential therapeutic strategy for cardiovascular disease.
Area of Science:
- Immunology
- Cardiovascular Disease Research
- Pharmacology
Background:
- Inflammation drives atherosclerosis, a primary cause of cardiovascular disease.
- The programmed death (PD)-1/PD-L1 pathway regulates T cell responses and immune inhibition.
- Targeting excessive immune responses in atherosclerosis may offer therapeutic benefits.
Purpose of the Study:
- To investigate if an agonistic PD-1 antibody can reduce atherosclerosis development.
- To assess the impact of PD-1 pathway stimulation on immune cell populations and activation in atherosclerosis.
Main Methods:
- Ldlr-/- mice were fed a western-type diet and treated with an agonistic PD-1 antibody or vehicle.
- Immune cell counts, activation markers, and cytokine production were analyzed.
- Atherosclerosis development was quantified in treated and control groups.
Main Results:
- PD-1 pathway stimulation delayed monocyte increase and reduced T cell activation.
- Atherogenic IFNγ-producing CD4+ T cells and CD8+ T cells decreased, while atheroprotective IL-10 producing CD4+ T cells increased.
- Regulatory B cells and atheroprotective oxLDL-specific IgM levels rose, leading to reduced atherosclerosis.
Conclusions:
- Stimulating the coinhibitory PD-1 pathway inhibits atherosclerosis development.
- Modulation of T and B cell responses underlies the observed therapeutic effect.
- Targeting coinhibitory pathways presents a potential strategy for combating atherosclerosis.
Related Concept Videos
Atherosclerosis III: Management
Inflammation
Peripheral Artery Disease I: Introduction
Atherosclerosis I: Introduction
Coronary Artery Disease II: Pathophysiology

