Tailored Apoptotic Vesicle Delivery Platform for Inflammatory Regulation and Tissue Repair to Ameliorate Ischemic Stroke.
Yang YouJianpei XuYipu LiuHaichun LiLaozhi XieChuchu MaYinzhe SunShiqiang TongKaifan LiangSonglei ZhouFenfen MaQingxiang SongWenze XiaoKaikai FuChengxiang DaiSuke LiJigang LeiQiyong MeiXiao-Ling GaoJun ChenPublished in: ACS nano (2023)
Apoptotic vesicles (ApoVs) hold great promise for inflammatory regulation and tissue repair. However, little effort has been dedicated to developing ApoV-based drug delivery platforms, while the insufficient targeting capability of ApoVs also limits their clinical applications. This work presents a platform architecture that integrates apoptosis induction, drug loading, and functionalized proteome regulation, followed by targeting modification, enabling the creation of an apoptotic vesicle delivery system to treat ischemic stroke. Briefly, α-mangostin (α-M) was utilized to induce mesenchymal stem cell (MSC) apoptosis while being loaded onto MSC-derived ApoVs as an anti-oxidant and anti-inflammatory agent for cerebral ischemia/reperfusion injury. Matrix metalloproteinase activatable cell-penetrating peptide (MAP), a microenvironment-responsive targeting peptide, was modified on the surface of ApoVs to obtain the MAP-functionalized α-M-loaded ApoVs. Such engineered ApoVs targeted the injured ischemic brain after systemic injection and achieved an enhanced neuroprotective activity due to the synergistic effect of ApoVs and α-M. The internal protein payloads of ApoVs, upon α-M activation, were found engaged in regulating immunological response, angiogenesis, and cell proliferation, all of which contributed to the therapeutic effects of ApoVs. The findings provide a universal framework for creating ApoV-based therapeutic drug delivery systems for the amelioration of inflammatory diseases and demonstrate the potential of MSC-derived ApoVs to treat neural injury.
Keyphrases
- cancer therapy
- drug delivery
- anti inflammatory
- oxidative stress
- cell death
- ischemia reperfusion injury
- cell cycle arrest
- cerebral ischemia
- cell proliferation
- endoplasmic reticulum stress
- quantum dots
- mesenchymal stem cells
- drug release
- atrial fibrillation
- subarachnoid hemorrhage
- cell therapy
- stem cells
- endothelial cells
- bone marrow
- multiple sclerosis
- signaling pathway
- single cell
- emergency department
- risk assessment
- cell cycle
- vascular endothelial growth factor
- molecularly imprinted
- wound healing
- photodynamic therapy
- drug induced
- smoking cessation
- mass spectrometry
- fluorescent probe
- big data
- amino acid
- resting state
- climate change