An Intrinsically Magnetic Epicardial Patch for Rapid Vascular Reconstruction and Drug Delivery.
Bei QianAo ShenShixing HuangHongpeng ShiQiang LongYiming ZhongZhaoxi QiXiaojun HeYecen ZhangWangxi HaiXinming WangYanna CuiZiheng ChenHuixia XuanQiang ZhaoZhengwei YouXiaofeng YePublished in: Advanced science (Weinheim, Baden-Wurttemberg, Germany) (2023)
Myocardial infarction (MI) is a major cause of mortality worldwide. The major limitation of regenerative therapy for MI is poor cardiac retention of therapeutics, which results from an inefficient vascular network and poor targeting ability. In this study, a two-layer intrinsically magnetic epicardial patch (MagPatch) prepared by 3D printing with biocompatible materials like poly (glycerol sebacate) (PGS) is designed, poly (ε-caprolactone) (PCL), and NdFeB. The two-layer structure ensured that the MagPatch multifariously utilized the magnetic force for rapid vascular reconstruction and targeted drug delivery. MagPatch accumulates superparamagnetic iron oxide (SPION)-labelled endothelial cells, instantly forming a ready-implanted organization, and rapidly reconstructs a vascular network anastomosed with the host. In addition, the prefabricated vascular network within the MagPatch allowed for the efficient accumulation of SPION-labelled therapeutics, amplifying the therapeutic effects of cardiac repair. This study defined an extendable therapeutic platform for vascularization-based targeted drug delivery that is expected to assist in the progress of regenerative therapies in clinical applications.
Keyphrases
- drug delivery
- cancer therapy
- stem cells
- iron oxide
- left ventricular
- mesenchymal stem cells
- tissue engineering
- cell therapy
- heart failure
- molecularly imprinted
- small molecule
- drug release
- type diabetes
- cardiovascular disease
- coronary artery disease
- cardiovascular events
- loop mediated isothermal amplification
- single molecule
- iron oxide nanoparticles
- sensitive detection
- simultaneous determination