Department of Industrial Engineering, Alma Mater Studiorum - University of Bologna, Italy; Medical Technology Lab, IRCCS Istituto Ortopedico Rizzoli, Bologna, Italy.
Dipartimento di Scienze del Farmaco, University of Catania, Italy.
Methods. 2021 Jan;185:120-127. doi: 10.1016/j.ymeth.2020.01.011. Epub 2020 Jan 25.
Historically, the evidences of safety and efficacy that companies provide to regulatory agencies as support to the request for marketing authorization of a new medical product have been produced experimentally, either in vitro or in vivo. More recently, regulatory agencies started receiving and accepting evidences obtained in silico, i.e. through modelling and simulation. However, before any method (experimental or computational) can be acceptable for regulatory submission, the method itself must be considered "qualified" by the regulatory agency. This involves the assessment of the overall "credibility" that such a method has in providing specific evidence for a given regulatory procedure. In this paper, we describe a methodological framework for the credibility assessment of computational models built using mechanistic knowledge of physical and chemical phenomena, in addition to available biological and physiological knowledge; these are sometimes referred to as "biophysical" models. Using guiding examples, we explore the definition of the context of use, the risk analysis for the definition of the acceptability thresholds, and the various steps of a comprehensive verification, validation and uncertainty quantification process, to conclude with considerations on the credibility of a prediction for a specific context of use. While this paper does not provide a guideline for the formal qualification process, which only the regulatory agencies can provide, we expect it to help researchers to better appreciate the extent of scrutiny required, which should be considered early on in the development/use of any (new) in silico evidence.
从历史上看,公司向监管机构提供的安全性和有效性证据,作为新的医疗产品上市许可申请的支持,这些证据都是通过实验获得的,无论是在体外还是体内。最近,监管机构开始接收和接受通过计算机模拟(即建模和模拟)获得的证据。然而,在任何方法(实验或计算)都可以接受监管提交之前,该方法本身必须由监管机构认为是“合格的”。这涉及到评估该方法在为给定监管程序提供特定证据方面的整体“可信度”。在本文中,我们描述了一种用于评估使用物理和化学现象的机械知识以及可用的生物学和生理学知识构建的计算模型的可信度的方法框架;这些模型有时被称为“生物物理”模型。我们使用指导示例,探讨了使用范围的定义、可接受性阈值的风险分析,以及全面验证、验证和不确定性量化过程的各个步骤,最后考虑了特定使用范围的预测的可信度。虽然本文没有提供正式的资格认证过程指南,而只有监管机构可以提供,但我们希望它可以帮助研究人员更好地了解所需的审查程度,这应该在任何(新的)计算机模拟证据的开发/使用早期就考虑到。