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Epsin Nanotherapy Regulates Cholesterol Transport to Fortify Atheroma Regression
Kui Cui1, Xinlei Gao2, Beibei Wang1
1Vascular Biology Program' Boston Children's Hospital and Department of Surgery' Harvard Medical School' Boston' MA (K.C., B.W., H.W., Y.D., K.L., Q.P., Y.W.L., B.Z., S.W., D.B.C., H.C.).
Background:
Excess cholesterol accumulation in lesional macrophages elicits complex responses in atherosclerosis. Epsins, a family of endocytic adaptors, fuel the progression of atherosclerosis; however, the underlying mechanism and therapeutic potential of targeting Epsins remains unknown. In this study, we determined the role of Epsins in macrophage-mediated metabolic regulation. We then developed an innovative method to therapeutically target macrophage Epsins with specially designed S2P-conjugated lipid nanoparticles, which encapsulate small-interfering RNAs to suppress Epsins.
Methods:
We used single-cell RNA sequencing with our newly developed algorithm MEBOCOST (Metabolite-mediated Cell Communication Modeling by Single Cell Transcriptome) to study cell-cell communications mediated by metabolites from sender cells and sensor proteins on receiver cells. Biomedical, cellular, and molecular approaches were utilized to investigate the role of macrophage Epsins in regulating lipid metabolism and transport. We performed this study using myeloid-specific Epsin double knockout (LysM-DKO) mice and mice with a genetic reduction of ABCG1 (ATP-binding cassette subfamily G member 1; LysM-DKO-ABCG1fl/+). The nanoparticles targeting lesional macrophages were developed to encapsulate interfering RNAs to treat atherosclerosis.
Results:
We revealed that Epsins regulate lipid metabolism and transport in atherosclerotic macrophages. Inhibiting Epsins by nanotherapy halts inflammation and accelerates atheroma resolution. Harnessing lesional macrophage-specific nanoparticle delivery of Epsin small-interfering RNAs, we showed that silencing of macrophage Epsins diminished atherosclerotic plaque size and promoted plaque regression. Mechanistically, we demonstrated that Epsins bound to CD36 to facilitate lipid uptake by enhancing CD36 endocytosis and recycling. Conversely, Epsins promoted ABCG1 degradation via lysosomes and hampered ABCG1-mediated cholesterol efflux and reverse cholesterol transport. In a LysM-DKO-ABCG1fl/+ mouse model, enhanced cholesterol efflux and reverse transport due to Epsin deficiency was suppressed by the reduction of ABCG1.
Conclusions:
Our findings suggest that targeting Epsins in lesional macrophages may offer therapeutic benefits for advanced atherosclerosis by reducing CD36-mediated lipid uptake and increasing ABCG1-mediated cholesterol efflux.
Insights
Targeting Epsins in macrophages halts atherosclerosis progression by regulating lipid metabolism. Nanotherapy suppressing Epsins reduces plaque size and promotes regression, offering therapeutic potential for advanced atherosclerosis.
Area of Science:
- Cardiovascular Biology
- Molecular Medicine
- Nanotechnology
Background:
- Atherosclerosis involves cholesterol accumulation in lesional macrophages.
- Epsins, endocytic adaptors, contribute to atherosclerosis progression.
- The mechanism and therapeutic targeting of Epsins in atherosclerosis are largely unknown.
Purpose of the Study:
- To determine the role of Epsins in macrophage-mediated metabolic regulation.
- To develop a therapeutic strategy targeting macrophage Epsins for atherosclerosis.
- To investigate the impact of Epsin inhibition on lipid metabolism and transport.
Main Methods:
- Single-cell RNA sequencing with MEBOCOST algorithm to analyze metabolite-mediated cell communication.
- Biomedical, cellular, and molecular approaches in myeloid-specific Epsin double knockout (LysM-DKO) mice.
- Development of S2P-conjugated lipid nanoparticles delivering small-interfering RNAs to target macrophage Epsins.
Main Results:
- Epsins regulate lipid metabolism and transport in atherosclerotic macrophages.
- Inhibiting Epsins via nanotherapy reduced atherosclerotic plaque size and promoted regression.
- Epsins enhance CD36-mediated lipid uptake and inhibit ABCG1-mediated cholesterol efflux.
Conclusions:
- Targeting Epsins in lesional macrophages offers therapeutic benefits for advanced atherosclerosis.
- Epsin inhibition reduces CD36-mediated lipid uptake and increases ABCG1-mediated cholesterol efflux.
- Nanoparticle-based Epsin suppression is a promising strategy for atherosclerosis treatment.
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