微生理系统的进展:探索药物开发中的类器官和器官芯片技术-重点关注与药物动力学相关的器官。

IF 2.2 4区 医学 Q2 PHARMACOLOGY & PHARMACY Drug Metabolism and Pharmacokinetics Pub Date : 2025-02-01 Epub Date: 2024-12-17 DOI:10.1016/j.dmpk.2024.101046
Hiroshi Kimura , Masaki Nishikawa , Naokata Kutsuzawa , Fumiya Tokito , Takuma Kobayashi , Dhimas Agung Kurniawan , Hiroki Shioda , Wenxin Cao , Kenta Shinha , Hiroko Nakamura , Kotaro Doi , Yasuyuki Sakai
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引用次数: 0

摘要

本研究探讨了微生理系统(MPS)的发展前景,重点关注类器官和器官芯片(OoC)技术,这些技术在药物发现方面有望替代动物试验。MPS技术提供了高生理相关性的体外模型,模拟器官功能进行药代动力学研究。基于微流控平台的由三维细胞聚集体和模拟体内环境的ooc组成的类器官代表了MPS的前沿。本文全面概述了它们在研究肠道、肝脏和肾脏方面的应用,以及它们在成为可靠的体内模型替代品方面面临的挑战。虽然MPS技术还不能完全与体内系统相媲美,但在硅、自动化和人工智能方法的帮助下,它的持续发展有望带来进一步的进步。跨多个学科的合作和正在进行的监管讨论对于推动MPS在生物医学研究和药物开发中的实际和道德应用至关重要。
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Advancements in Microphysiological systems: Exploring organoids and organ-on-a-chip technologies in drug development -focus on pharmacokinetics related organs-
This study explored the evolving landscape of Microphysiological Systems (MPS), with a focus on organoids and organ-on-a-chip (OoC) technologies, which are promising alternatives to animal testing in drug discovery. MPS technology offers in vitro models with high physiological relevance, simulating organ function for pharmacokinetic studies. Organoids composed of 3D cell aggregates and OoCs mimicking in vivo environments based on microfluidic platforms represent the forefront of MPS. This paper provides a comprehensive overview of their application in studying the gut, liver, and kidney and their challenges in becoming reliable alternatives to in vivo models. Although MPS technology is not yet fully comparable to in vivo systems, its continued development, aided by in silico, automation, and AI approaches, is anticipated to bring about further advancements. Collaboration across multiple disciplines and ongoing regulatory discussions will be crucial in driving MPS toward practical and ethical applications in biomedical research and drug development.
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来源期刊
CiteScore
4.80
自引率
9.50%
发文量
50
审稿时长
69 days
期刊介绍: DMPK publishes original and innovative scientific papers that address topics broadly related to xenobiotics. The term xenobiotic includes medicinal as well as environmental and agricultural chemicals and macromolecules. The journal is organized into sections as follows: - Drug metabolism / Biotransformation - Pharmacokinetics and pharmacodynamics - Toxicokinetics and toxicodynamics - Drug-drug interaction / Drug-food interaction - Mechanism of drug absorption and disposition (including transporter) - Drug delivery system - Clinical pharmacy and pharmacology - Analytical method - Factors affecting drug metabolism and transport - Expression of genes for drug-metabolizing enzymes and transporters - Pharmacogenetics and pharmacogenomics - Pharmacoepidemiology.
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