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临床前研究中的人工智能:增强数字孪生和芯片器官以减少动物实验。

Artificial intelligence in preclinical research: enhancing digital twins and organ-on-chip to reduce animal testing.

作者信息

Gangwal Amit, Lavecchia Antonio

机构信息

Department of Natural Product Chemistry, Shri Vile Parle Kelavani Mandal's Institute of Pharmacy, Dhule 424001 Maharashtra, India.

"Drug Discovery" Laboratory, Department of Pharmacy, University of Naples Federico II, I-80131 Naples, Italy.

出版信息

Drug Discov Today. 2025 May;30(5):104360. doi: 10.1016/j.drudis.2025.104360. Epub 2025 Apr 17.

Abstract

Artificial intelligence (AI) is reshaping preclinical drug research offering innovative alternatives to traditional animal testing. Advanced techniques, including machine learning (ML), deep learning (DL), AI-powered digital twins (DTs), and AI-enhanced organ-on-a-chip (OoC) platforms, enable precise simulations of complex biological systems. AI plays a critical role in overcoming the limitations of DTs and OoC, improving their predictive power and scalability. These technologies facilitate early-stage, reliable evaluations of drug safety and efficacy, addressing ethical concerns, reducing costs, and accelerating drug development while adhering to the 3Rs principle (Replace, Reduce, Refine). By integrating AI with these advanced models, preclinical research can achieve greater accuracy and efficiency in drug discovery. This review examines the transformative impact of AI in preclinical research, highlighting its advancements, challenges, and the critical steps needed to establish AI as a cornerstone of ethical and efficient drug discovery.

摘要

人工智能(AI)正在重塑临床前药物研究,为传统动物试验提供创新的替代方案。包括机器学习(ML)、深度学习(DL)、人工智能驱动的数字孪生(DT)和人工智能增强的芯片上器官(OoC)平台在内的先进技术,能够精确模拟复杂的生物系统。人工智能在克服数字孪生和芯片上器官的局限性、提高其预测能力和可扩展性方面发挥着关键作用。这些技术有助于对药物安全性和有效性进行早期、可靠的评估,解决伦理问题,降低成本,并在坚持3R原则(替代、减少、优化)的同时加速药物开发。通过将人工智能与这些先进模型相结合,临床前研究可以在药物发现中实现更高的准确性和效率。本综述探讨了人工智能在临床前研究中的变革性影响,强调了其进展、挑战以及将人工智能确立为符合伦理和高效药物发现基石所需的关键步骤。

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