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Global connectivity of hub residues in Oncoprotein structures encodes genetic factors dictating personalized drug response to targeted Cancer therapy

机译:癌蛋白结构中集线器残基的全球连通性编码决定个体对靶向癌症治疗的药物反应的遗传因素

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The efficacy and mechanisms of therapeutic action are largely described by atomic bonds and interactions local to drug binding sites. Here we introduce global connectivity analysis as a high-throughput computational assay of therapeutic action – inspired by the Google page rank algorithm that unearths most “globally connected” websites from the information-dense world wide web (WWW). We execute short timescale (30?ps) molecular dynamics simulations with high sampling frequency (0.01?ps), to identify amino acid residue hubs whose global connectivity dynamics are characteristic of the ligand or mutation associated with the target protein. We find that unexpected allosteric hubs – up to 20? from the ATP binding site, but within 5? of the phosphorylation site – encode the Gibbs free energy of inhibition (ΔGinhibition) for select protein kinase-targeted cancer therapeutics. We further find that clinically relevant somatic cancer mutations implicated in both drug resistance and personalized drug sensitivity can be predicted in a high-throughput fashion. Our results establish global connectivity analysis as a potent assay of protein functional modulation. This sets the stage for unearthing disease-causal exome mutations and motivates forecast of clinical drug response on a patient-by-patient basis. We suggest incorporation of structure-guided genetic inference assays into pharmaceutical and healthcare Oncology workflows.
机译:治疗作用的功效和机理在很大程度上通过原子键和药物结合位点局部的相互作用来描述。在这里,我们将全球连接性分析作为一种高通量的治疗作用计算方法进行介绍-受Google页面排名算法的启发,该算法从信息密集的互联网(WWW)中挖掘出大多数“全球连接”的网站。我们以高采样频率(0.01µps)进行短时间尺度(30µps)的分子动力学模拟,以识别氨基酸残基中枢,这些枢纽的全局连通性动力学是与目标蛋白相关的配体或突变的特征。我们发现意外的变构中心-多达20个?来自ATP结合位点,但在5内?磷酸化位点的编码–编码针对特定蛋白激酶靶向的癌症治疗药物的吉布斯抑制自由能(ΔG inhibition )。我们进一步发现,可以高通量方式预测与耐药性和个性化药物敏感性相关的临床相关的体细胞癌突变。我们的结果将全球连通性分析确立为蛋白质功能调节的有效检测方法。这为发掘疾病引起的外显子组突变奠定了基础,并在逐个患者的基础上激发了对临床药物反应的预测。我们建议将结构指导的遗传推论测定法并入药物和保健肿瘤学工作流程中。

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