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Computerized techniques pave the way for drug-drug interaction prediction and interpretation

机译:计算机化技术为药物-药物相互作用的预测和解释铺平了道路

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摘要

>Introduction: Health care industry also patients penalized by medical errors that are inevitable but highly preventable. Vast majority of medical errors are related to adverse drug reactions, while drug-drug interactions (DDIs) are the main cause of adverse drug reactions (ADRs). DDIs and ADRs have mainly been reported by haphazard case studies. Experimental in vivo and in vitro researches also reveals DDI pairs. Laboratory and experimental researches are valuable but also expensive and in some cases researchers may suffer from limitations. >Methods: In the current investigation, the latest published works were studied to analyze the trend and pattern of the DDI modelling and the impacts of machine learning methods. Applications of computerized techniques were also investigated for the prediction and interpretation of DDIs. >Results: Computerized data-mining in pharmaceutical sciences and related databases provide new key transformative paradigms that can revolutionize the treatment of diseases and hence medical care. Given that various aspects of drug discovery and pharmacotherapy are closely related to the clinical and molecular/biological information, the scientifically sound databases (e.g., DDIs, ADRs) can be of importance for the success of pharmacotherapy modalities. >Conclusion: A better understanding of DDIs not only provides a robust means for designing more effective medicines but also grantees patient safety.
机译:>简介:医疗行业也不可避免地遭受了医疗错误的惩罚,这些错误是不可避免的,但可以高度预防。绝大多数医学错误与药物不良反应有关,而药物-药物相互作用(DDI)是药物不良反应(ADR)的主要原因。主要通过偶然案例研究报告了DDI和ADR。体内和体外实验研究也揭示了DDI对。实验室和实验研究既有价值又昂贵,并且在某些情况下研究人员可能会受到限制。 >方法:在当前的调查中,研究了最新发表的作品,以分析DDI建模的趋势和模式以及机器学习方法的影响。还研究了计算机技术在DDI预测和解释中的应用。 >结果:药学科学和相关数据库中的计算机数据挖掘提供了新的重要变革范式,可以彻底改变疾病的治疗方法,从而彻底改变医疗保健。鉴于药物发现和药物治疗的各个方面都与临床和分子/生物学信息密切相关,因此科学合理的数据库(例如DDI,ADR)对于药物治疗模式的成功至关重要。 >结论:对DDI的更好理解不仅为设计更有效的药物提供了一种强有力的手段,而且还为受让人提供了患者安全性。

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