Multifunctional Supramolecular Vesicles as Zn 2+ -Triggered Microglial Modulator Alleviates Alzheimer's Disease.
Zhi JiaRan TangXiaoyu YuanHengmin ZhuJiaqi GuoYutong ChenYonglan YangBin LiangShuhao LuDerong CaoJie LiuPublished in: Small (Weinheim an der Bergstrasse, Germany) (2023)
Zn 2+ -induced β-amyloid protein (Aβ) aggregation and microglia activation are the predominant contributors in Alzheimer's disease (AD). Regulating intracephalic excessive Zn 2+ is a promising therapeutic strategy for AD treatment. However, only inhibition of Zn 2+ is hardly to repair continuous damages caused by activated microglia. Herein, an intelligent resveratrol-loaded supramolecular vesicles (RES-loaded vesicles) with zinc ion chelation function and responsive release capability are constructed to alleviate Aβ fibrillation, oxidative stress, and microglial dysfunction. The resveratrol encapsulation efficiency and drug loading efficiency are calculated to be 49.67% and 7.87%, respectively. In vitro studies demonstrate that the RES-loaded vesicles can modulate Zn 2+ -dependent Aβ aggregation. More importantly, the cargoes will be released in zinc environment and further reprograms microglia from proinflammatory M1 phenotype toward anti-inflammatory M2 phenotype, which prevents spontaneous neuroinflammation and alleviates cytotoxicity of cultured cells from 29% to 12%. With the stereotactic or intranasal administration, RES-loaded vesicles can overcome the blood brain barrier, alleviate neuronal apoptosis, neuroinflammation, and ultimately ameliorate cognitive impairment in two AD mouse models. This work provides a new sight for taking advantage of Zn 2+ to treat CNS disorders.
Keyphrases
- drug delivery
- cancer therapy
- inflammatory response
- heavy metals
- oxidative stress
- cognitive impairment
- lipopolysaccharide induced
- neuropathic pain
- lps induced
- mouse model
- diabetic rats
- wound healing
- cerebral ischemia
- anti inflammatory
- cognitive decline
- endoplasmic reticulum stress
- cell death
- emergency department
- combination therapy
- dna damage
- subarachnoid hemorrhage
- endothelial cells
- small molecule
- brain injury
- ischemia reperfusion injury
- wastewater treatment
- quantum dots
- energy transfer