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.

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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