朝着合理设计的固体药物纳米颗粒与优化药理学性质

Marco Siccardi, Phillip Martin, Darren Smith, Paul Curley, Tom McDonald, Marco Giardiello, Neill Liptrott, Steve Rannard, Andrew Owen
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引用次数: 15

摘要

固体药物纳米颗粒(sdn)是一种纳米技术,具有增强药物传递和改善几种疾病治疗的有利特性,在改善口服生物利用度和注射长效药物方面显示出益处。纳米制剂的物理化学性质和组成会影响纳米粒子的吸收、分布和消除;因此,开发用于药物传递的纳米颗粒应考虑纳米颗粒特性在药代动力学定义中的潜在作用。本研究的目的是研究依非韦伦sdn的药理学行为,并确定最佳的纳米颗粒性质和组成。77个依非韦伦sdn被纳入分析。在HepG2(肝)和Caco-2(肠)、CEM(淋巴细胞)、THP1(单核细胞)和A-THP1(巨噬细胞)细胞系中评估细胞积累。采用单层Caco-2细胞测定表观肠通透性(Papp)。使用基于生理学的药代动力学模型,使用Papp值来评估对药代动力学的潜在益处。与传统的依非韦伦制剂相比,生成的sdn具有增强的肠道通透性和在不同细胞系中的积累。纳米颗粒的大小和辅料的选择影响依非韦伦的表观渗透性和细胞积聚,这似乎是细胞系依赖的。这些发现为sdn的设计提供了一个有价值的平台,为选择最佳的纳米颗粒特征和组成提供了经验背景。了解纳米颗粒成分和物理化学性质如何影响药理学模式,将有助于合理设计具有理想药代动力学的sdn。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Towards a rational design of solid drug nanoparticles with optimised pharmacological properties

Towards a rational design of solid drug nanoparticles with optimised pharmacological properties

Solid drug nanoparticles (SDNs) are a nanotechnology with favourable characteristics to enhance drug delivery and improve the treatment of several diseases, showing benefit for improved oral bioavailability and injectable long-acting medicines. The physicochemical properties and composition of nanoformulations can influence the absorption, distribution, and elimination of nanoparticles; consequently, the development of nanoparticles for drug delivery should consider the potential role of nanoparticle characteristics in the definition of pharmacokinetics. The aim of this study was to investigate the pharmacological behaviour of efavirenz SDNs and the identification of optimal nanoparticle properties and composition. Seventy-seven efavirenz SDNs were included in the analysis. Cellular accumulation was evaluated in HepG2 (hepatic) and Caco-2 (intestinal), CEM (lymphocyte), THP1 (monocyte), and A-THP1 (macrophage) cell lines. Apparent intestinal permeability (Papp) was measured using a monolayer of Caco-2 cells. The Papp values were used to evaluate the potential benefit on pharmacokinetics using a physiologically based pharmacokinetic model. The generated SDNs had an enhanced intestinal permeability and accumulation in different cell lines compared to the traditional formulation of efavirenz. Nanoparticle size and excipient choice influenced efavirenz apparent permeability and cellular accumulation, and this appeared to be cell line dependent. These findings represent a valuable platform for the design of SDNs, giving an empirical background for the selection of optimal nanoparticle characteristics and composition. Understanding how nanoparticle components and physicochemical properties influence pharmacological patterns will enable the rational design of SDNs with desirable pharmacokinetics.

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