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A signaling visualization toolkit to support rational design of combination therapies and biomarker discovery: SiViT

机译:信号可视化工具包可支持合理设计联合疗法和生物标记物:SiViT

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摘要

Targeted cancer therapy aims to disrupt aberrant cellular signalling pathways. Biomarkers are surrogates of pathway state, but there is limited success in translating candidate biomarkers to clinical practice due to the intrinsic complexity of pathway networks. Systems biology approaches afford better understanding of complex, dynamical interactions in signalling pathways targeted by anticancer drugs. However, adoption of dynamical modelling by clinicians and biologists is impeded by model inaccessibility. Drawing on computer games technology, we present a novel visualization toolkit, SiViT, that converts systems biology models of cancer cell signalling into interactive simulations that can be used without specialist computational expertise. SiViT allows clinicians and biologists to directly introduce for example loss of function mutations and specific inhibitors. SiViT animates the effects of these introductions on pathway dynamics, suggesting further experiments and assessing candidate biomarker effectiveness. In a systems biology model of Her2 signalling we experimentally validated predictions using SiViT, revealing the dynamics of biomarkers of drug resistance and highlighting the role of pathway crosstalk. No model is ever complete: the iteration of real data and simulation facilitates continued evolution of more accurate, useful models. SiViT will make accessible libraries of models to support preclinical research, combinatorial strategy design and biomarker discovery.
机译:靶向癌症治疗旨在破坏异常的细胞信号通路。生物标志物是通路状态的替代物,但是由于通路网络的内在复杂性,在将候选生物标志物转化为临床实践方面取得的成功有限。系统生物学方法可以更好地理解抗癌药靶向信号通路中复杂的动态相互作用。但是,模型的不可访问性阻碍了临床医生和生物学家采用动态建模。利用计算机游戏技术,我们提出了一种新颖的可视化工具包SiViT,可将癌细胞信号的系统生物学模型转换为交互式仿真,而无需专业的计算专家就可以使用该仿真。 SiViT允许临床医生和生物学家直接引入例如功能突变和特异性抑制剂的丧失。 SiViT对这些引入对通路动力学的影响进行了动画处理,建议进行进一步的实验并评估候选生物标志物的有效性。在Her2信号转导的系统生物学模型中,我们使用SiViT实验验证了预测,揭示了耐药性生物标志物的动态变化并突出了通路串扰的作用。没有一个模型是完整的:真实数据和仿真的迭代促进了更准确,有用的模型的不断发展。 SiViT将提供可访问的模型库,以支持临床前研究,组合策略设计和生物标记物发现。

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