UniSA: Clinical and Health Sciences, Bradley Building, North Terrace, University of South Australia, Adelaide, 5001, Australia.
ARC Centre of Excellence in Convergent Bio-Nano Science and Technology, North Terrace, University of South Australia, Adelaide, 5001, Australia.
ACS Biomater Sci Eng. 2023 Jun 12;9(6):2819-2837. doi: 10.1021/acsbiomaterials.1c00814. Epub 2021 Nov 16.
The gastrointestinal mucus layer plays a significant role in maintaining gut homeostasis and health, offering protective capacities against the absorption of harmful pathogens as well as commensal gut bacteria and buffering stomach acid to protect the underlying epithelium. Despite this, the mucus barrier is often overlooked during preclinical pharmaceutical development and may pose a significant absorption barrier to high molecular weight or lipophilic drug species. The complex chemical and physical nature of the dynamic mucus layer has proven problematic to reliably replicate in a laboratory setting, leading to the development of multiple mucus models with varying complexity and predictive capacity. This, coupled with the wide range of analysis methods available, has led to a plethora of possible approaches to quantifying mucus permeation; however, the field remains significantly under-represented in biomedical research. For this reason, the development of a concise collation of the available approaches to mucus permeation is essential. In this review, we explore widely utilized mucus mimics ranging in complexity from simple mucin solutions to native mucus preparations for their predictive capacity in mucus permeation analysis. Furthermore, we highlight the diverse range of laboratory-based models available for the analysis of mucus interaction and permeability with a specific focus on , , and models. Finally, we highlight the predictive capacity of these models in correlation with pharmacokinetic data. This review provides a comprehensive and critical overview of the available technologies to analyze mucus permeation, facilitating the efficient selection of appropriate tools for further advancement in oral drug delivery.
胃肠道黏液层在维持肠道内环境平衡和健康方面起着重要作用,它提供了对有害病原体以及共生肠道细菌的吸收的保护能力,并缓冲胃酸以保护底层上皮细胞。尽管如此,在临床前药物开发过程中,黏液屏障往往被忽视,并且可能对高分子量或亲脂性药物种类构成显著的吸收屏障。动态黏液层的复杂化学和物理性质使得在实验室环境中可靠地复制变得具有挑战性,导致具有不同复杂性和预测能力的多种黏液模型的发展。这一点,再加上现有的各种分析方法,导致了大量可能的方法来定量评估黏液渗透;然而,该领域在生物医学研究中仍然严重缺乏代表性。出于这个原因,对可用的黏液渗透方法进行简明的整理是至关重要的。在这篇综述中,我们探讨了广泛使用的黏液模拟物,从简单的黏蛋白溶液到天然黏液制剂,以评估它们在黏液渗透分析中的预测能力。此外,我们强调了可用于分析黏液相互作用和渗透性的各种基于实验室的模型,特别关注 、 和 模型。最后,我们强调了这些模型与 药代动力学数据的相关性的预测能力。这篇综述提供了对分析黏液渗透的现有技术的全面和批判性概述,有助于为进一步推进口服药物输送选择合适的工具。