神经保护
创伤性脑损伤
血脑屏障
医学
药理学
二甲双胍
氧化应激
体内
Zeta电位
神经炎症
固体脂质纳米粒
炎症
药物输送
药品
麻醉
中枢神经系统
化学
糖尿病
内科学
内分泌学
生物
材料科学
纳米颗粒
纳米技术
有机化学
生物技术
精神科
作者
Hossein Ebrahimi,Sajjad Kazem Nezhad,Ali Farmoudeh,Amirhossein Babaei,Pedram Ebrahimnejad,Esmaeil Akbari,Ali Siahposht-Khachaki
标识
DOI:10.1016/j.ejpb.2022.10.018
摘要
Following traumatic brain injury, inflammation, mitochondrial dysfunction, oxidative stress, ischemia, and energy crisis can cause mortality or long-term morbidity. As an activator of AMP-activated protein kinase, metformin reduces the secondary injuries of traumatic brain injury by compensating for the lack of energy in damaged cells. But the blood-brain barrier prevents a hydrophilic drug such as metformin from penetrating the brain tissue. Solid lipid nanoparticles with their lipid nature can cross the blood-brain barrier and solve this challenge. so This study aimed to investigate the effect of metformin-loaded lipid nanoparticles (NanoMet) for drug delivery to the brain and reduce complications from traumatic brain injury.Different formulations of NanoMet were designed by Box-Behnken, and after formulation, particle size, zeta potential, and entrapment efficiency were investigated. For in vivo study, Male rats were divided into eight groups, and except for the intact and sham groups, the other groups underwent brain trauma by the Marmarou method. After the intervention, the Veterinary Coma Scale, Vestibular Motor function, blood-brain barrier integrity, cerebral edema, level of inflammatory cytokines, and histopathology of brain tissue were assessed.The optimal formula had a size of 282.2 ± 9.05 nm, a zeta potential of -1.65 ± 0.33 mV, and entrapment efficiency of 60.61 ± 6.09% which released the drug in 1400 min. Concentrations of 5 and 10 mg/kg of this formula improved the consequences of trauma.This study showed that nanoparticles could help target drug delivery to the brain and apply the desired result.
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