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Published on: November 17, 2017
Plaque-Targeted Rapamycin Spherical Nucleic Acids for Synergistic Atherosclerosis Treatment
Yuanyuan Guo1, Jingcan Qin1, Qianqian Zhao1
1Department of Radiology, Shanghai Jiao Tong University Affiliated Sixth People's Hospital, Shanghai Jiao Tong University School of Medicine, 600 Yi Shan Road, Shanghai, 200233, China.
Abstract:
Atherosclerosis with unstable plaques is the dominant pathological basis of lethal cardio-cerebrovascular diseases, which can cause acute death due to the rupture of plaques. Plaque-targeted drug delivery to achieve promoted treatment remains the main challenge because of the systemic occurrence of atheroma. Herein, a rapamycin (RAP) spherical nucleic acid (SNA) structure, capable of specifically accumulating in plaques for synergistic atherosclerosis treatment is constructed. By designing consecutive phosphorothioate (PS) at 3' terminus of the deoxyribonucleic acid (DNA) strand, multiple hydrophobic RAPs are covalently grafted onto the PS segment to form an amphiphilic drug-grafted DNA (RAP-DNA), which successively self-assembles into micellar SNA (RAP-SNA). Moreover, the phosphodiester-DNA segment constitutes the outer shell of RAP-SNA, enabling further hybridization with functional siRNA (targeting lectin-like oxidized low-density lipoprotein receptor-1, LOX-1) to obtain the drug codelivered SNA (LOX-1/RAP-SNA). With two active ingredients inside, LOX-1/RAP-SNA can not only induce robust autophagy and decrease the evil apoptosis of the pathological macrophages, but also simultaneously prohibit the LOX-1-mediated formation of damageable foam cells, realizing the effect of synergistic therapy. As a result, the LOX-1/RAP-SNA significantly reduces the progression of atheroma and stabilizes the plaques, providing a new strategy for synergistically targeted atherosclerosis treatment.
Insights
Researchers developed a novel drug delivery system using spherical nucleic acids (SNAs) to treat atherosclerosis. This targeted approach combines rapamycin (RAP) and siRNA to stabilize plaques and prevent rupture, offering a new therapeutic strategy.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Cardiovascular Research
Background:
- Atherosclerosis, driven by unstable plaques, is a primary cause of fatal cardiovascular events.
- Targeted drug delivery to atherosclerotic plaques remains a significant challenge due to systemic disease manifestation.
Purpose of the Study:
- To construct a novel spherical nucleic acid (SNA) structure for targeted atherosclerosis treatment.
- To develop a dual-drug delivery system combining rapamycin (RAP) and siRNA for synergistic therapeutic effects.
Main Methods:
- Synthesized amphiphilic drug-grafted DNA (RAP-DNA) by covalently grafting RAP onto phosphorothioate (PS) segments of DNA.
- Self-assembled RAP-DNA into micellar SNAs (RAP-SNA) and hybridized with LOX-1 targeting siRNA to form LOX-1/RAP-SNA.
- Evaluated the ability of LOX-1/RAP-SNA to induce autophagy, reduce macrophage apoptosis, and inhibit foam cell formation.
Main Results:
- LOX-1/RAP-SNA demonstrated specific accumulation in plaques.
- The dual-drug SNA induced autophagy and reduced apoptosis in pathological macrophages.
- Simultaneous inhibition of LOX-1-mediated foam cell formation was observed, leading to synergistic therapeutic effects.
- Significant reduction in atheroma progression and plaque stabilization were achieved.
Conclusions:
- LOX-1/RAP-SNA offers a promising strategy for synergistic and targeted atherosclerosis treatment.
- This nanostructure effectively stabilizes vulnerable plaques, potentially preventing acute cardiovascular events.
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