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利用人工智能和机器学习方法增强癌症治疗和药物发现:叙事性综述。

USING ARTIFICIAL INTELLIGENCE AND MACHINE LEARNING APPROACHES TO ENHANCE CANCER THERAPY AND DRUG DISCOVERY: A NARRATIVE REVIEW.

机构信息

HIESS Department, Hamdard University, Karachi-Pakistan.

Department of Management Information Systems, College of Business Administration, King Faisal University-Saudi Arabia.

出版信息

J Ayub Med Coll Abbottabad. 2024 Jan-Mar;36(1):183-189. doi: 10.55519/JAMC-01-12921.

Abstract

BACKGROUND

This paper looks at how AI and machine learning have been applied over the last ten years to the development of anti-cancer drugs. By speeding up the synthesis of more desirable compounds and the identification of new ones, artificial intelligence (AI) has demonstrated substantial contributions to the research and therapy of anti-cancer therapies.

METHODS

This work is a narrative review that examines numerous uses of AI-based techniques in the development of anti-cancer medications.

RESULTS

Future developments in human cancer research and treatment are anticipated to be significantly influenced by AI. Protein-interaction network analysis, drug target prediction, binding site prediction, and virtual screening are examples of innovative techniques. Drug design and screening are enhanced by machine learning, and the use of multitarget drug development approaches has made it possible to develop cancer treatments with fewer side effects. AI does, however, have several drawbacks, such as a heavy reliance on data and a narrow scope of explanation. Interpretable AI models, which combine data and computation in AI-assisted cancer treatment research, will be the new development path in the future.

CONCLUSIONS

For more than thirty years, computer-aided drug design techniques have been a key component in the advancement of cancer therapies. Artificial intelligence is a new and powerful technology that has the potential to speed up, lower the cost, and improve the efficacy of anti-cancer therapy development.

摘要

背景

本文着眼于人工智能和机器学习在过去十年中如何应用于抗癌药物的开发。通过加速更理想化合物的合成和新化合物的鉴定,人工智能(AI)为抗癌疗法的研究和治疗做出了巨大贡献。

方法

这是一篇叙述性综述,考察了人工智能技术在抗癌药物开发中的多种用途。

结果

人工智能预计将对人类癌症研究和治疗的未来发展产生重大影响。蛋白质相互作用网络分析、药物靶点预测、结合部位预测和虚拟筛选等都是创新技术的例子。机器学习增强了药物设计和筛选,多靶点药物开发方法的使用使得开发副作用更少的癌症治疗方法成为可能。然而,人工智能也有一些缺点,例如严重依赖数据和解释范围狭窄。在未来,将数据和计算结合起来的可解释人工智能模型将成为人工智能辅助癌症治疗研究的新发展路径。

结论

三十多年来,计算机辅助药物设计技术一直是癌症治疗进展的关键组成部分。人工智能是一种新的强大技术,有可能加速、降低成本并提高抗癌疗法开发的效果。

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