German Cancer Research Center, Im Neuenheimer Feld 280, 69120 Heidelberg, Germany.
Toxicol Lett. 2021 Feb 1;337:18-27. doi: 10.1016/j.toxlet.2020.11.018. Epub 2020 Nov 21.
Optimal experimental design theory proposes choosing specific settings in experimental trials in order to maximize the precision of the resulting parameter estimates. In dose response experiments, this corresponds to choosing the optimal dose levels for every available observation, and can be applied both to singular dose-response relationships and to interaction experiments where two substances are given simultaneously at several different mixture ratios ("ray designs"). While the theory of experimental design for this situation is well developed, the mathematical complexity prevents widespread use in practical applications. A simple to use application making the theory accessible to practitioners is thus very desirable.
Results from established optimal experimental design theory are applied to dose response applications, focusing on log-logistic and Weibull class dose response functions. Suitable optimal design algorithms to solve these problems are implemented into an R-shiny based online application.
The application provides an interface to easily calculate D-optimal designs not only for singular dose experiments, but also for interaction trials with several combination rays of substances. Furthermore, the app also allows evaluating the efficiency of existing candidate designs, and finally allows construction of designs which perform robustly under different assumptions in regard to the true parameters.
优化实验设计理论建议在实验中选择特定的条件,以最大化所得参数估计的精度。在剂量反应实验中,这对应于为每个可用的观测值选择最佳的剂量水平,并且既可以应用于单一的剂量反应关系,也可以应用于同时以几种不同混合比例给予两种物质的相互作用实验(射线设计)。虽然这种情况下的实验设计理论已经很完善,但数学的复杂性阻碍了它在实际应用中的广泛使用。因此,一个简单易用的应用程序,使理论能够为从业者所使用,是非常需要的。
将已确立的优化实验设计理论的结果应用于剂量反应应用,重点是对数逻辑和威布尔类剂量反应函数。适用于解决这些问题的最佳设计算法被实现到一个基于 R-shiny 的在线应用程序中。
该应用程序提供了一个接口,可以方便地计算不仅对于单一剂量实验,而且对于具有几种物质组合射线的相互作用试验的 D-最优设计。此外,该应用程序还允许评估现有候选设计的效率,最终允许在关于真实参数的不同假设下构建稳健的设计。