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Artificial intelligence as a tool in drug discovery and development

转化式学习 重新调整用途 数据科学 药物重新定位 计算机科学 大数据 可解释性 药物开发 药物发现 人工智能 工程伦理学 医学 工程类 药品 生物信息学 心理学 教育学 精神科 操作系统 废物管理 生物
作者
Maria Kokudeva,Mincho Vichev,Emilia Naseva,Dimitrina Georgieva Miteva,Tsvetelina Velikova
出处
期刊:World journal of experimental medicine [Baishideng Publishing Group Co (World Journal of Experimental Medicine)]
卷期号:14 (3) 被引量:4
标识
DOI:10.5493/wjem.v14.i3.96042
摘要

The rapidly advancing field of artificial intelligence (AI) has garnered substantial attention for its potential application in drug discovery and development. This opinion review critically examined the feasibility and prospects of integrating AI as a transformative tool in the pharmaceutical industry. AI, encompassing machine learning algorithms, deep learning, and data analytics, offers unprecedented opportunities to streamline and enhance various stages of drug development. This opinion review delved into the current landscape of AI-driven approaches, discussing their utilization in target identification, lead optimization, and predictive modeling of pharmacokinetics and toxicity. We aimed to scrutinize the integration of large-scale omics data, electronic health records, and chemical informatics, highlighting the power of AI in uncovering novel therapeutic targets and accelerating drug repurposing strategies. Despite the considerable potential of AI, the review also addressed inherent challenges, including data privacy concerns, interpretability of AI models, and the need for robust validation in real-world clinical settings. Additionally, we explored ethical considerations surrounding AI-driven decision-making in drug development. This opinion review provided a nuanced perspective on the transformative role of AI in drug discovery by discussing the existing literature and emerging trends, presenting critical insights and addressing potential hurdles. In conclusion, this study aimed to stimulate discourse within the scientific community and guide future endeavors to harness the full potential of AI in drug development.
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