一种BCS类IV类药物口服自乳化颗粒的单步挤出配方开发

IF 4.5 2区 医学 Q2 MEDICINE, RESEARCH & EXPERIMENTAL
Vineet R. Kulkarni, Santosh Bashyal, Varsha V. Nair, Ishaan Duggal and Mohammed Maniruzzaman*, 
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引用次数: 0

摘要

本研究旨在通过提高BCS IV类药物的溶解度和渗透性来开发和优化含BCS IV类药物的配方。本文研究了自乳化固体脂质基质作为BCS IV类模型药物的载体体系。自乳化给药系统(SEDDS)已被广泛研究用于配制水溶性较差的药物。然而,制造SEDDS具有挑战性。这些系统的载药量通常较低,并且在储存过程中掺入的药物容易重结晶,严重影响了体外储存稳定性和体内性能。此外,它们还需要大量(80%)的脂质载体、助溶剂、表面活性剂和其他赋形剂来防止它们重结晶。这反过来又对大剂量药物构成挑战,因为它影响最终药物产品(片剂和胶囊)的大小。此外,制剂的最终液体性质影响制剂的处理和可加工性,这在制造和包装步骤中提出了挑战。本文研究了单步挤压法制备高载药量利托那韦(RTV)固体自乳化颗粒的可行性。此外,我们还比较了使用这些颗粒作为直接粉末挤出3D打印的原料与使用物理混合物的性能。这些颗粒的稳定性和溶解度-渗透性优势也被评估,其中SEDDS的表观溶解度和渗透性分别比原料药增加了约27倍和20倍。结合HME作为连续过程形成载药均匀颗粒的能力以及直接打印挤出(DPE) 3D打印的应用,改善了此类候选药物的输送前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Single-Step Extrusion Process for Formulation Development of Self-Emulsifying Granules for Oral Delivery of a BCS Class IV Drug

Single-Step Extrusion Process for Formulation Development of Self-Emulsifying Granules for Oral Delivery of a BCS Class IV Drug

This study aimed to develop and optimize formulations containinga BCS Class IV drug by improving its solubility and permeability. Herein development of self-emulsifying solid lipid matrices was investigated as carrier systems for a BCS Class IV model drug. Self-emulsifying drug delivery systems (SEDDS) have been extensively investigated for formulating drugs with poor water solubility. However, manufacturing SEDDS is challenging. These systems usually have low drug-loading capacities, and the incorporated drugs tend to recrystallize during storage, which severely impacts the storage stability in vitro and performance in vivo. Moreover, they require greater amounts (>80%) of lipid carriers, cosolvents, surfactants, and other excipients to keep them from recrystallizing. This in turn is again challenging for high-dose drugs as it affects the size of the final drug product (tablets and capsules). Also, the final liquid nature of the formulation affects the handling and processability of the formulation, which poses challenges during the manufacturing and packaging steps. In this work, we have studied the feasibility of a single-step extrusion process to formulate and optimize solid self-emulsifying granules with a relatively higher drug loading of Ritonavir (RTV), a BCS Class IV drug. Further, we have compared the performance of using these granules as the feedstock for direct powder extrusion-based 3D printing as opposed to the use of physical blends. The stability and solubility-permeability advantage of these granules was also evaluated where SEDDS showed about 27 and 20 fold increase in apparent solublity and permeability compared to bulk drug, respectively. Combining the capabilities of HME to form drug-loaded homogeneous granules as a continuous process along with application of direct printing extruiosn (DPE) 3D printing improves the drug delivery prospects for such candidates.

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来源期刊
Molecular Pharmaceutics
Molecular Pharmaceutics 医学-药学
CiteScore
8.00
自引率
6.10%
发文量
391
审稿时长
2 months
期刊介绍: Molecular Pharmaceutics publishes the results of original research that contributes significantly to the molecular mechanistic understanding of drug delivery and drug delivery systems. The journal encourages contributions describing research at the interface of drug discovery and drug development. Scientific areas within the scope of the journal include physical and pharmaceutical chemistry, biochemistry and biophysics, molecular and cellular biology, and polymer and materials science as they relate to drug and drug delivery system efficacy. Mechanistic Drug Delivery and Drug Targeting research on modulating activity and efficacy of a drug or drug product is within the scope of Molecular Pharmaceutics. Theoretical and experimental peer-reviewed research articles, communications, reviews, and perspectives are welcomed.
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