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Comparison of toxicokinetic and tissue distribution of triptolide-loaded solid lipid nanoparticles vs free triptolide in rats

机译:雷公藤甲素固体脂质纳米粒与游离雷公藤甲素在大鼠体内的动力学和组织分布比较

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The traditional Chinese medicine Tripterygium wilfordii Hook F (TWHF) is used clinically to treat some autoimmune and inflammatory disorders including rheumatoid arthritis, systemic lupus erythematosus, and skin diseases. However TWHF has a high potential for toxicity, so its clinical use is limited. Solid lipid nanoparticle (SLN) delivery systems are reported to have remarkable advantages over conventional formulations of bioactive plant extracts, such as enhancing solubility and bioavailability, offering protection from toxicity, and enhancing pharmacological activity. We reported previously that a tripterygium glycoside (TG) solid lipid nanoparticle (TG-SLN) delivery system had a protective effect against TG-induced male reproductive toxicity. To better understand this issue, we used triptolide (TP) as a model drug in a comparative study of the toxicokinetic and tissue distribution of TP-SLN and free TP in rats, allowing us to observing the in vivo behavior of this nanoformulation and to assess mechanisms of SLN-related toxicity. A fast and sensitive HPLC-APCI-MS/MS method was developed for the determination of triptolide in rat plasma. Fourteen rats were divided randomly into two groups of 7 rats each for toxicokinetic analysis, with one group receiving free TP (450 μg/kg) and the other receiving the TP-SLN formulation (450 μg/kg). Blood was obtained before dosing and 0.083, 0.17, 0.25, 0.33, 0.5, 0.75, 1, 1.5, 2, 3 and 4 h after drug administration. Thirty-six rats were divided randomly into six equal groups for a tissue-distribution study. Half of the rats received intragastric administration of TP (450 μg/kg) and the other half received TP-SLN (450 μg/kg). At 15, 45, and 90 min after dosing, samples of blood, liver, kidney, spleen, lung, and testicular tissue were taken. TP concentration in the samples was determined by LC-APCI-MS-MS. The toxicokinetic results for the nanoformulation showed a significant increase the area under the curve (AUC) (P 0.05), significantly longer T max and mean retention times (MRTs) (0-t) (P 0.05), significantly decreased C max (P 0.05). The nanoformulation promoted absorption with a slow release character, indicating that toxicokinetic changes may be the most important mechanism for the enhanced efficacy of nanoformulations. Tissue-distribution results suggest a tendency for TP concentrations in the lung and spleen to increase, while TP concentrations in plasma, liver, kidney, and testes tended to decrease in the TP-SLN group. At multiple time points, testicular tissue TP concentrations were lower in the TP-SLN group than in free TP group. This provides an important clue for the decreased reproductive toxicity observed with TP-SLN. Crown
机译:雷公藤雷公藤钩F(TWHF)在临床上用于治疗一些自身免疫和炎症性疾病,包括类风湿性关节炎,系统性红斑狼疮和皮肤病。但是,TWHF具有很高的毒性潜力,因此其临床用途受到限制。据报道,固体脂质纳米颗粒(SLN)输送系统具有优于生物活性植物提取物常规配方的显着优势,例如增强溶解度和生物利用度,提供抗毒性保护和增强药理活性。我们以前报道过,雷公藤多甙(TG)固体脂质纳米颗粒(TG-SLN)递送系统对TG诱导的雄性生殖毒性具有保护作用。为了更好地了解这个问题,我们在比较大鼠中TP-SLN和游离TP的毒代动力学和组织分布时,使用雷公藤甲素(TP)作为模型药物,从而使我们能够观察这种纳米制剂的体内行为并进行评估SLN相关毒性的机制。建立了一种快速灵敏的HPLC-APCI-MS / MS方法测定大鼠血浆中雷公藤甲素的含量。将十四只大鼠随机分为两组,每组七只,进行毒代动力学分析,一组接受游离TP(450μg/ kg),另一组接受TP-SLN制剂(450μg/ kg)。给药前和给药后0.083、0.17、0.25、0.33、0.5、0.75、1、1.5、2、3和4小时获得血液。将36只大鼠随机分为6组,每组进行组织分布研究。一半大鼠胃内施用TP(450μg/ kg),另一半接受TP-SLN(450μg/ kg)。给药后第15、45和90分钟,采集血液,肝,肾,脾,肺和睾丸组织的样本。样品中的TP浓度通过LC-APCI-MS-MS测定。纳米制剂的毒代动力学结果显示曲线下面积(AUC)显着增加(P <0.05),T max和平均保留时间(MRTs)(0-t)显着更长(P <0.05),C max显着降低(P <0.05)。纳米制剂以缓慢释放的特性促进了吸收,表明毒代动力学变化可能是增强纳米制剂功效的最重要机制。组织分布结果表明,TP-SLN组中肺和脾中TP浓度有增加的趋势,而血浆,肝,肾和睾丸中TP浓度有下降的趋势。在多个时间点,TP-SLN组的睾丸组织TP浓度低于游离TP组。这为使用TP-SLN观察到的生殖毒性降低提供了重要线索。王冠

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