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蛋白质突变对药物结合的影响提示了随后的个体化药物选择。

The effect of protein mutations on drug binding suggests ensuing personalised drug selection.

机构信息

Department of Chemistry, Centre for Computational Science, University College London, London, WC1H 0AJ, UK.

Computational Biology, Carnegie Mellon University in Qatar (CMU-Q), Doha, Qatar.

出版信息

Sci Rep. 2021 Jun 29;11(1):13452. doi: 10.1038/s41598-021-92785-w.

Abstract

The advent of personalised medicine promises a deeper understanding of mechanisms and therefore therapies. However, the connection between genomic sequences and clinical treatments is often unclear. We studied 50 breast cancer patients belonging to a population-cohort in the state of Qatar. From Sanger sequencing, we identified several new deleterious mutations in the estrogen receptor 1 gene (ESR1). The effect of these mutations on drug treatment in the protein target encoded by ESR1, namely the estrogen receptor, was achieved via rapid and accurate protein-ligand binding affinity interaction studies which were performed for the selected drugs and the natural ligand estrogen. Four nonsynonymous mutations in the ligand-binding domain were subjected to molecular dynamics simulation using absolute and relative binding free energy methods, leading to the ranking of the efficacy of six selected drugs for patients with the mutations. Our study shows that a personalised clinical decision system can be created by integrating an individual patient's genomic data at the molecular level within a computational pipeline which ranks the efficacy of binding of particular drugs to variant proteins.

摘要

个性化医学的出现有望更深入地了解机制,从而开发出更有效的治疗方法。然而,基因组序列与临床治疗之间的联系往往并不清楚。我们研究了 50 名属于卡塔尔州人群队列的乳腺癌患者。通过桑格测序,我们在雌激素受体 1 基因(ESR1)中发现了几个新的有害突变。这些突变对 ESR1 编码的蛋白质靶标(即雌激素受体)药物治疗的影响是通过快速准确的蛋白质-配体结合亲和力相互作用研究来实现的,这些研究针对选定的药物和天然配体雌激素进行了研究。对配体结合域中的四个非同义突变进行了分子动力学模拟,使用绝对和相对结合自由能方法对它们进行了分析,从而对具有这些突变的患者的六种选定药物的疗效进行了排序。我们的研究表明,可以通过在计算管道中整合个体患者的基因组数据,在分子水平上为每个患者创建一个个性化的临床决策系统,该系统对特定药物与变异蛋白结合的疗效进行排名。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b159/8241852/12f470c7b9c0/41598_2021_92785_Fig1_HTML.jpg

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