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Application of Bayesian evidence synthesis to modelling the effect of ketogenic therapy on survival of high grade glioma patients

机译:贝叶斯证据合成在生酮疗法对高级别胶质瘤患者生存影响建模中的应用

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摘要

BackgroundKetogenic therapy in the form of ketogenic diets or calorie restriction has been proposed as a metabolic treatment of high grade glioma (HGG) brain tumors based on mechanistic reasoning obtained mainly from animal experiments. Given the paucity of clinical studies of this relatively new approach, our goal is to extrapolate evidence from the greater number of animal studies and synthesize it with the available human data in order to estimate the expected effects of ketogenic therapy on survival in HGG patients. At the same time we are using this analysis as an example for demonstrating how Bayesianism can be applied in the spirit of a circular view of evidence.
机译:背景技术基于主要从动物实验获得的机制推理,已经提出了以生酮饮食或热量限制形式的生酮疗法作为高级神经胶质瘤(HGG)脑肿瘤的代谢疗法。鉴于这种相对较新方法的临床研究较少,我们的目标是从大量动物研究中推断出证据,并将其与可用的人类数据进行合成,以评估生酮疗法对HGG患者生存的预期影响。同时,我们以这种分析为例来说明如何以循环证据的精神应用贝叶斯主义。

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