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Published on: October 9, 2012
Surface-Engineered Monocyte Inhibits Atherosclerotic Plaque Destabilization via Graphene Quantum Dot-Mediated
Feila Liu1, Ning Ding1, Da Huo1
1Department of Anatomy, Third Military Medical University, Chongqing, 400038, China.
Abstract:
Rupture-prone atherosclerotic plaque is the cause of the high mortality and morbidity rates that accompany atherosclerosis-associated diseases. MicroRNAs can regulate the expression of a variety of atherosclerotic inflammation-related genes in macrophages. There are currently no definitive methods for delivering microRNAs into the interior of plaque. Monocytes typically possess a pathological feature that allows them to be recruited to atherosclerotic plaque resulting in rupture-prone; however, whether monocytes can be modified to be gene carriers remains unclear. In this study, a novel monocyte surface-engineered gene-delivery system based on graphene quantum dots (GQDs) is developed. Briefly, GQDs-microRNA223 linked by disulfide bonds are grafted onto the monocyte membrane via a carefully designed C18-peptide (C18P) containing a hydrophobic end to afford the designed monocyte-C18P-GQDs-miR223 architecture. The system can reach and enter the interior of the plaque and release the GQDs-miRNA via C18P digestion. The released GQDs-miRNA are taken up by the macrophages in atherosclerotic plaques, and the disulfide linkages between the GQDs and the miRNA are cleaved through γ-interferon-inducible lysosomal thiol reductase (GILT) in the lysosome. Under the protection of GQDs, miRNA cargos are transfected into the cytosol and subsequently undergo nuclear translocation, allowing a significantly reduced plaque burden by regulating inflammatory response in vivo.
Insights
This study develops a novel monocyte-based gene delivery system using graphene quantum dots to deliver microRNA223 into atherosclerotic plaques, reducing inflammation and plaque burden.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Cardiovascular Research
Background:
- Atherosclerotic plaque rupture causes high mortality.
- MicroRNAs regulate inflammatory genes in macrophages within plaques.
- Effective microRNA delivery into plaques remains a challenge.
Purpose of the Study:
- To engineer a novel monocyte-surface gene-delivery system for targeting atherosclerotic plaques.
- To utilize graphene quantum dots (GQDs) and microRNA223 for plaque regression.
- To investigate the efficacy of monocytes as gene carriers for atherosclerosis treatment.
Main Methods:
- Developed a monocyte surface-engineered system (monocyte-C18P-GQDs-miR223) using graphene quantum dots (GQDs) and C18-peptide.
- Demonstrated the system's ability to reach and enter plaque interiors.
- Showcased microRNA release and uptake by macrophages within plaques, facilitated by GILT enzyme.
Main Results:
- The engineered monocytes successfully delivered microRNA223 into atherosclerotic plaques.
- Graphene quantum dots protected microRNA cargos during intracellular transport.
- In vivo studies showed a significantly reduced plaque burden via inflammatory response regulation.
Conclusions:
- Monocyte-based gene delivery systems are feasible for treating atherosclerosis.
- Graphene quantum dots offer a protective platform for microRNA delivery.
- This novel system effectively reduces atherosclerotic plaque burden by modulating inflammation.
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