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Modulating Plaque Inflammation via Targeted mRNA Nanoparticles for the Treatment of Atherosclerosis
Mingzhu Gao1, Maoping Tang1, William Ho
1Shanghai Frontiers Science Center of Drug Target Identification and Delivery, School of Pharmacy, National Key Laboratory of Innovative Immunotherapy, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai 200240, PR China.
Insights
This study introduces nanoparticle-mediated mRNA therapy to target inflammation in atherosclerosis. The approach successfully delivered IL-10 mRNA to macrophages, reducing plaque inflammation and improving lesion stability in a mouse model.
Area of Science:
- Biomedical Engineering
- Cardiovascular Research
- Nanomedicine
Background:
- Atherosclerosis involves chronic inflammation driven by macrophage accumulation in arterial plaques.
- Current therapies lower LDL cholesterol but often fail to prevent major adverse cardiovascular events.
- Targeting plaque inflammation remains a challenge due to issues with specificity and efficacy.
Purpose of the Study:
- To develop and evaluate a nanoparticle (NP)-mediated mRNA therapeutic strategy for targeting and modulating inflammation in atherosclerotic lesions.
- To assess the efficacy of IL-10 mRNA delivered via NPs in reducing inflammation and stabilizing atherosclerotic plaques.
Main Methods:
- Development of NPs engineered to deliver mRNA encoding Interleukin-10 (IL-10).
- Intravenous administration of targeted NPs to Western diet-fed Ldlr-/- mice with advanced atherosclerotic lesions.
- Assessment of NP colocalization with M2-like macrophages, IL-10 production, and changes in plaque characteristics.
Main Results:
- Targeted NPs successfully colocalized with M2-like macrophages within atherosclerotic plaques.
- Induced IL-10 production in plaques, leading to a significantly alleviated inflammatory response.
- Demonstrated reduced oxidative stress, macrophage apoptosis, lipid deposition, and necrotic areas, alongside increased fibrous cap thickness.
Conclusions:
- NP-mediated mRNA delivery of IL-10 is an effective strategy for targeting macrophage-driven inflammation in advanced atherosclerosis.
- This approach shows potential for improving atherosclerotic plaque stability and reducing cardiovascular event risk.
- The targeted NP inflammation management strategy holds promise for future clinical translation.
Abstract:
Atherosclerosis is a common pathology present in many cardiovascular diseases. Although the current therapies (including statins and inhibitors of the serine protease PCSK9) can effectively reduce low-density lipoprotein (LDL) cholesterol levels to guideline-recommended levels, major adverse cardiovascular events still occur frequently. Indeed, the subendothelial retention of lipoproteins in the artery wall triggers multiple events of inflammation in macrophages and is a major contributor to the pathological progression of atherosclerosis. It has been gradually recognized that modulating inflammation is, therefore, an attractive avenue to forestall and treat atherosclerosis and its complications. Unfortunately, challenges with specificity and efficacy in managing plaque inflammation have hindered progress in atherosclerosis treatment. Herein, we report an NP-mediated mRNA therapeutic approach to target atherosclerotic lesional macrophages, modulating inflammation in advanced atherosclerotic lesions for the treatment of atherosclerosis. We demonstrated that the targeted NPs containing IL-10 mRNA colocalized with M2-like macrophages and induced IL-10 production in atherosclerotic plaques following intravenous administration to Western diet (WD)-fed Ldlr mice. Additionally, the lesions showed a significantly alleviated inflammatory response, as evidenced by reduced oxidative stress and macrophage apoptosis, resulting in decreased lipid deposition, diminished necrotic areas, and increased fiber cap thickness. These results demonstrate the successful delivery of mRNA therapeutics to macrophage-enriched plaques in a preclinical model of advanced atherosclerosis, showing that this targeted NP inflammation management approach has great potential for translation into a wide range of clinical applications.
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