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Preparation Characterization Pharmacokinetics and Biodistribution of Baicalin-Loaded Liposome on Cerebral Ischemia-Reperfusion after i.v. Administration in Rats

机译:黄i苷脂质体在静脉注射后对脑缺血再灌注的制备表征药代动力学和生物分布大鼠给药

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摘要

The dry root of Scutellaria baicalensis, has traditionally been applied in the treatment of cerebral ischemia in Chinese clinics. Baicalin (BA) is considered the key ingredient in it for the brain protection effects. The bioavailability of BA is very low because of its poor lipid and water solubility, which limits the therapeutic effects and clinical application. The aim of the present study was to develop a novel BA-loaded liposome (BA-LP) formulation to improve the drug lipophilicity and further to enhance the drug-concentration in the brain tissues. This study is also designed to investigate the pharmacokinetics of BA in the pathological conditions of stroke and evaluate the pharmacokinetic differences of BA caused by stroke after intravenous administration with BA and BA-LP. In this study, the novel BA-LP prepared in early stage were characterized by morphology, size, zeta potential, encapsulation rate and the in vitro release. The pharmacokinetics and biodistribution of BA and BA-LP were investigated by intravenous administration in rats with middle cerebral artery occlusion (MCAO) model and normal group respectively. BA-LP had a mean particle size of 160–190 nm, zeta potential of −5.7 mV, and encapsulation efficiency of 42 ± 1%. The BA-LP showed a sustained-release behavior, the in vitro drug-release kinetic model of BA-LP fit well with the biphasic dynamic model equation: Q = 1 − (60.12e0.56t − 59.08e0.0014t). Pharmacokinetic behavior in MCAO rats is not consistent with that of normal rats. The middle cerebral artery occlusion rats got higher Cmax and AUC0–t, which were about 1.5–2 times to normal rats both in BA and liposome groups. In addition, it got especially higher distribution in brain, while BA were not detected in brain tissues on normal rats. The Cmax and AUC0–t values were significantly greater with liposome than BA on both normal and MCAO rats. The tissue distribution behavior was significantly altered in the case of liposome administrated in comparison with BA, which the concentrations in the heart, liver, spleen, lungs and brain were all increased after administrated liposome, but decreased in kidneys. The TI values showed that the target of liposome was improved especially to heart, spleen and brain, and the brain’s target was higher in striatum and cerebellum. In conclusion, BA-LP might be a potential drug delivery system to improve the therapeutic efficacy of BA. In addition, these results also suggest that the pathological damages of ischemia-reperfusion have a significant impact on the pharmacokinetic traits of BA.
机译:黄cut的干根传统上已在中国诊所用于治疗脑缺血。黄ical素(BA)被认为是其中具有保护大脑功能的关键成分。由于BA的脂质和水溶性差,其生物利​​用度非常低,这限制了其治疗效果和临床应用。本研究的目的是开发一种新型的BA负载脂质体(BA-LP)制剂,以改善药物的亲脂性,并进一步提高脑组织中的药物浓度。本研究还旨在研究BA在中风病理条件下的药代动力学,并评估BA和BA-LP静脉给药后中风引起的BA药代动力学差异。在这项研究中,早期制备的新型BA-LP通过形态,大小,ζ电位,包封率和体外释放来表征。分别通过脑中动脉闭塞(MCAO)模型和正常组大鼠静脉内给药研究BA和BA-LP的药代动力学和生物分布。 BA-LP的平均粒径为160–190 nm,ζ电势为-5.7 mV,封装效率为42±1%。 BA-LP具有持续释放行为,BA-LP的体外药物释放动力学模型与两相动力学模型方程拟合得很好:Q = 1-(60.12e 0.56t -59.08 e 0.0014t )。 MCAO大鼠的药代动力学行为与正常大鼠不一致。大脑中动脉闭塞大鼠的Cmax和AUC0-t较高,在BA和脂质体组中均为正常大鼠的1.5-2倍。此外,它在脑中的分布特别高,而正常大鼠的脑组织中未检测到BA。在正常和MCAO大鼠中,脂质体的Cmax和AUC0-t值均显着高于BA。与BA相比,施用脂质体的情况下组织分布行为发生了显着变化,在施用脂质体后,心脏,肝脏,脾脏,肺和脑中的浓度均升高,而在肾脏中降低。 TI值表明,脂质体的靶标尤其对心脏,脾脏和大脑有所改善,并且纹状体和小脑的脑靶标更高。总之,BA-LP可能是提高BA疗效的潜在药物递送系统。此外,这些结果还表明缺血-再灌注的病理损伤对BA的药代动力学特征具有显着影响。

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