ArticleACS pharmacology & translational science2024
Development of Pro-resolving and Pro-efferocytic Nanoparticles for Atherosclerosis Therapy.
Article in ACS pharmacology & translational science, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 15 papers.
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Who cites it
15 citing papers in PubMed.
- Nanomaterials-Based Immunotherapy for Atherosclerosis.Small (Weinheim an der Bergstrasse, Germany) · 2026Review
- Ferroptosis-driven immune remodeling in heart failure: the central role of macrophage reprogramming and impaired efferocytosis.Journal of nanobiotechnology · 2026Review
- Macrophage efferocytosis promotes inflammation resolution and accelerates wound healing.Communications biology · 2026Review
- Nanomedicine-based theranostics in atherosclerotic cardiovascular diseases.Journal of biomedical science · 2026Review
- Network Rewiring in the Aging Immune System: From Chronic Inflammation to Age-Related Pathologies.Cells · 2026Review
- Nanoparticle-delivered miR-486-5p inhibits HNanoscale advances · 2026Article
- Targeting the CD47-SIRPα Axis in Atherosclerosis: From Pathogenesis to Therapeutic Implications.Journal of inflammation research · 2026Review
- The CD47 signaling axis regulates the formation and vulnerability of atherosclerotic plaques: mechanism analysis and targeting strategies.Frontiers in immunology · 2026Review
- Efferocytosis in tissue engineering: A comprehensive review of emerging therapeutic strategies for enhanced tissue repair and regeneration.Bioactive materials · 2025Review
- Targeted and Biomimetic Nanoparticles for Atherosclerosis Therapy: A Review of Emerging Strategies.Biomedicines · 2025Review
- Nanoparticle-Mediated mRNA Delivery to Triple-Negative Breast Cancer (TNBC) Patient-Derived Xenograft (PDX) Tumors.ACS pharmacology & translational science · 2025Article
- Efferocytosis: The Janus-Faced Gatekeeper of Aging and Tumor Fate.Aging cell · 2025Review
- Death as rebirth: how efferocytosis drives tissue repair and disease treatment.Frontiers in immunology · 2025Review
- How Advanced Is Nanomedicine for Atherosclerosis?International journal of nanomedicine · 2025Review
- Nanoparticles Codelivering mRNA and SiRNA for Simultaneous Restoration and Silencing of Gene/Protein Expression In Vitro and In Vivo.ACS nanoscience Au · 2024Article
Corrections and comments
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Authors and funding
8 authors.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Atherosclerosis is a major contributor to cardiovascular diseases with a high global prevalence. It is characterized by the formation of lipid-laden plaques in the arteries, which eventually lead to plaque rupture and thrombosis. While the current lipid-lowering therapies are generally effective in lowering the risk of cardiovascular events, they do not address the underlying causes of disease. Defective resolution of inflammation and impaired efferocytosis are the main driving forces of atherosclerosis. Macrophages recognize cells for clearance by the expression of "eat me" and "do not eat me" signals, including the CD47-SIRPα axis. However, the "do not eat me" signal CD47 is overexpressed in atherosclerotic plaques, leading to compromised efferocytosis and secondary necrosis. In this context, prophagocytic antibodies have been explored to stimulate the clearance of apoptotic cells, but they are nonspecific and impact healthy tissues. In macrophages, downstream of signal regulatory protein α, lie protein tyrosine phosphatases, SHP 1/2, which can serve as effective targets for selectively phagocytosing apoptotic cells. While increasing the efferocytosis targets the end stages of lesion development, the underlying issue of inflammation still persists. Simultaneously increasing efferocytosis and reducing inflammation can be effective therapeutic strategies for managing atherosclerosis. For instance, IL-10 is a key anti-inflammatory mediator that enhances efferocytosis via phosphoSTAT3 (pSTAT3) activation. In this study, we developed a combination nanotherapy by encapsulating an SHP-1 inhibitor (NSC 87877) and IL-10 in a single nanoparticle platform [(S + IL)-NPs] to enhance efferocytosis and inflammation resolution. Our studies suggest that (S + IL)-NPs successfully encapsulated both agents, entered the macrophages, and delivered the agents into intracellular compartments. Additionally, (S + IL)-NPs decreased inflammation by suppressing pro-inflammatory markers and enhancing anti-inflammatory mediators. They also exhibited the potential for improved phagocytic activity via pSTAT3 activation. Our nanomedicine-mediated upregulation of the anti-inflammatory and efferocytic responses in macrophages shows promise for the treatment of atherosclerosis.
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Registered trials
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