Combining lipid based drug delivery and amorphous solid dispersions for improved oral drug absorption of a poorly water-soluble drug

生物利用度 利托那韦 化学 最大值 药代动力学 溶解度 药物输送 色谱法 药品 药理学 脂解 吸收(声学) 材料科学 有机化学 医学 生物化学 家庭医学 脂肪组织 复合材料 人类免疫缺陷病毒(HIV) 抗逆转录病毒疗法 病毒载量
作者
Georgia-Ioanna Nora,Ramakrishnan Venkatasubramanian,Sophie Strindberg,Scheyla Daniela Siqueira-Jørgensen,Livia Pagano,Francis S. Romanski,Nitin K. Swarnakar,Thomas Rades,Anette Müllertz
出处
期刊:Journal of Controlled Release [Elsevier]
卷期号:349: 206-212 被引量:16
标识
DOI:10.1016/j.jconrel.2022.06.057
摘要

Two widely applied enabling drug delivery approaches, self-nanoemulsifying drug delivery systems (SNEDDS) and amorphous solid dispersions (ASD), were combined, with the aim of enhancing physical stability, solubilization and absorption of the model drug ritonavir. Ritonavir was loaded at a concentration above its saturation solubility (Seq) in the SNEDDS (superSNEDDS, 250% of Seq). An ASD of ritonavir with polyvinylpyrrolidone-vinyl acetate copolymers (Kollidon® VA64) was prepared by ball milling. Relevant control formulations, which include conventional SNEDDS (90% of Seq), superSNEDDS with a physical mix of Kollidon® VA64 and ritonavir (superSNEDDS+PM) and an aqueous suspension of ritonavir were used. A pharmacokinetic (PK) study in rats was performed to assess the relative bioavailability of ritonavir after oral administration. This was followed by evaluating the formulations in a novel two-step in vitro lipolysis model simulating rat gastric and intestinal conditions. The addition of a ritonavir containing ASD to superSNEDDS increased the degree of supersaturation from 250% to 275% Seq in the superSNEDDS and the physical stability (absence of drug recrystallization) of the system from 48 h to 1 month under ambient conditions. The PK study in rats displayed significantly higher Cmax and AUC0-7h (3-fold increase) and faster Tmax for superSNEDDS+ASD compared to the conventional SNEDDS whilst containing 3 times less lipid than the latter. Furthermore, superSNEDDS+ASD were able to keep the drug solubilised during in vitro lipolysis to the same degree as the conventional SNEDDS. These findings suggest that dissolving an ASD in a superSNEDDS can contribute to the development of novel oral delivery systems with increased bioavailability for poorly water-soluble drugs.
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