固体脂质纳米粒
高脂血症
辛伐他汀
Zeta电位
结晶度
粒径
材料科学
泊洛沙姆
体内
泊洛沙姆407
化学
纳米颗粒
化学工程
核化学
药理学
纳米技术
医学
有机化学
内分泌学
结晶学
生物
物理化学
聚合物
生物技术
工程类
糖尿病
共聚物
作者
Syed Zaki Husain Rizvi,Fawad Ali Shah,Namrah Khan,Iftikhar Muhammad,Khan Hashim Ali,Muhammad Mohsin Ansari,Fakhar ud Din,Omer Salman Qureshi,Kyoung-Won Kim,Yeong-Hwan Choe,Jin‐Ki Kim,Alam Zeb
标识
DOI:10.1016/j.ijpharm.2019.02.002
摘要
The objective of current study was to develop solid lipid nanoparticles-loaded with simvastatin (SIM-SLNs) and investigate their in vivo anti-hyperlipidemic activity in poloxamer-induced hyperlipidemia model. Nano-template engineering technique was used to prepare SIM-SLNs with palmityl alcohol as lipid core and a mixture of Tween 40/Span 40/Myrj 52 to stabilize the core. The prepared SIM-SLNs were evaluated for physicochemical parameters including particle diameter, surface charge, morphology, incorporation efficiency, thermal behaviour and crystallinity. In vitro release profile of SIM-SLNs in simulated gastric and intestinal fluids was evaluated by using dialysis bag technique and anti-hyperlipidemic activity was assessed in hyperlipidemia rat model. SIM-SLNs revealed uniform particle size with spherical morphology, zeta potential of −24.9 mV and high incorporation efficiency (∼85%). Thermal behaviour and crystallinity studies demonstrated successful incorporation of SIM in the lipid core and its conversion to amorphous form. SIM-SLNs demonstrated a sustained SIM release from the lipid core of nanoparticles. SIM-SLNs significantly reduced the elevated serum lipids as indicated by ∼3.9 and ∼1.5-times decreased total cholesterol compared to those of untreated control and SIM dispersion treated hyperlipidemic rats. In conclusion, SIM-SLNs showed a great promise for improving the therapeutic outcomes of SIM via its effective oral delivery.
科研通智能强力驱动
Strongly Powered by AbleSci AI