Advances of dual-organ and multi-organ systems for gut, lung, skin and liver models in absorption and metabolism studies

IF 5.4 2区 工程技术 Q1 BIOCHEMICAL RESEARCH METHODS Lab on a Chip Pub Date : 2025-02-13 DOI:10.1039/D4LC01011F
Konstanze Brandauer, Sophie Schweinitzer, Alexandra Lorenz, Judith Krauß, Silvia Schobesberger, Martin Frauenlob and Peter Ertl
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Abstract

Drug development is a costly and timely process with high risks of failure during clinical trials. Although in vitro tissue models have significantly advanced over the years, thus fostering a transition from animal-derived models towards human-derived models, failure rates still remain high. Current cell-based assays are still not able to provide an accurate prediction of the clinical success or failure of a drug candidate. To overcome the limitations of current methods, a variety of microfluidic systems have been developed as powerful tools that are capable of mimicking (micro)physiological conditions more closely by integrating physiological fluid flow conditions, mechanobiological cues and concentration gradients, to name only a few. One major advantage of these biochip-based tissue cultures, however, is their ability to seamlessly connect different organ models, thereby allowing the study of organ-crosstalk and metabolic byproduct effects. This is especially important when assessing absorption, distribution, metabolism, and excretion (ADME) processes of drug candidates, where an interplay between various organs is a prerequisite. In the current review, a number of in vitro models as well as microfluidic dual- and multi-organ systems are summarized with a focus on absorption (skin, lung, gut) and metabolism (liver). Additionally, the advantage of multi-organ chips in identifying a drug's on and off-target toxicity is discussed. Finally, the potential high-throughput implementation and modular chip design of multi-organ-on-a-chip systems within the pharmaceutical industry is highlighted, outlining the necessity of reducing handling complexity.

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肠、肺、皮肤和肝脏模型双器官和多器官系统在吸收代谢研究中的进展。
药物开发是一个昂贵和及时的过程,在临床试验中失败的风险很高。尽管体外组织模型近年来取得了显著进展,从而促进了从动物来源的模型向人类来源的模型的过渡,但失败率仍然很高。目前基于细胞的分析仍然不能提供一个准确的预测临床成功或失败的候选药物。为了克服当前方法的局限性,各种微流体系统已经被开发为强大的工具,能够通过整合生理流体流动条件,机械生物学线索和浓度梯度,更紧密地模拟(微)生理条件,仅举几例。然而,这些基于生物芯片的组织培养物的一个主要优势是它们能够无缝连接不同的器官模型,从而允许研究器官串扰和代谢副产物效应。在评估候选药物的吸收、分布、代谢和排泄(ADME)过程时,这一点尤其重要,其中各器官之间的相互作用是先决条件。在当前的综述中,总结了一些体外模型以及微流体双器官和多器官系统,重点是吸收(皮肤,肺,肠道)和代谢(肝脏)。此外,还讨论了多器官芯片在识别药物靶向毒性和脱靶毒性方面的优势。最后,强调了制药行业中多器官单芯片系统的潜在高通量实现和模块化芯片设计,概述了降低处理复杂性的必要性。
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来源期刊
Lab on a Chip
Lab on a Chip 工程技术-化学综合
CiteScore
11.10
自引率
8.20%
发文量
434
审稿时长
2.6 months
期刊介绍: Lab on a Chip is the premiere journal that publishes cutting-edge research in the field of miniaturization. By their very nature, microfluidic/nanofluidic/miniaturized systems are at the intersection of disciplines, spanning fundamental research to high-end application, which is reflected by the broad readership of the journal. Lab on a Chip publishes two types of papers on original research: full-length research papers and communications. Papers should demonstrate innovations, which can come from technical advancements or applications addressing pressing needs in globally important areas. The journal also publishes Comments, Reviews, and Perspectives.
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