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Drug resistance mechanisms in colorectal cancer dissected with cell type-specific dynamic logic models

机译:用细胞类型特异性动态逻辑模型剖析大肠癌的耐药机制

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Genomic features are used as biomarkers of sensitivity to kinase inhibitors used widely to treat human cancer, but effective patient stratification based on these principles remains limited in impact. Insofar as kinase inhibitors interfere with signaling dynamics, and, in turn, signaling dynamics affects inhibitor responses, we investigated associations in this study between cell-specific dynamic signaling pathways and drug sensitivity. Specifically, we measured 14 phosphoproteins under 43 different perturbed conditions (combinations of 5 stimuli and 7 inhibitors) in 14 colorectal cancer cell lines, building cell line-specific dynamic logic models of underlying signaling networks. Model parameters representing pathway dynamics were used as features to predict sensitivity to a panel of 27 drugs. Specific parameters of signaling dynamics correlated strongly with drug sensitivity for 14 of the drugs, 9 of which had no genomic biomarker. Following one of these associations, we validated a drug combination predicted to overcome resistance to MEK inhibitors by co-blockade of GSK3, which was not found based on associations with genomic data. These results suggest that, in order to better understand cancer resistance and move toward personalized medicine, it is essential to consider signaling network dynamics that can not be inferred from static genotypes.
机译:基因组特征被用作对广泛用于治疗人类癌症的激酶抑制剂敏感的生物标志物,但是基于这些原理的有效患者分层仍然受到影响。就激酶抑制剂干扰信号传导动力学,进而信号传导动力学影响抑制剂反应而言,我们研究了这项研究中细胞特异性动态信号传导途径与药物敏感性之间的关联。具体而言,我们在14种结直肠癌细胞系中的43种不同扰动条件(5种刺激物和7种抑制剂的组合)下测量了14种磷蛋白,建立了基础信号网络的细胞系特异性动态逻辑模型。代表通路动态的模型参数被用作预测对27种药物的敏感性的特征。信号动力学的特定参数与14种药物的药物敏感性密切相关,其中9种没有基因组生物标记。根据这些关联中的一种,我们验证了通过共阻断GSK3可以克服MEK抑制剂耐药性的药物组合,但与基因组数据的关联并未发现。这些结果表明,为了更好地理解癌症抵抗力并走向个性化医学,必须考虑不能从静态基因型推断出的信号网络动态。

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