Functional analysis of BRCA1 RING domain variants: computationally derived structural data can improve upon experimental features for training predictive models.

IF 1.5 4区 生物学 Q4 CELL BIOLOGY Integrative Biology Pub Date : 2020-09-30 DOI:10.1093/intbio/zyaa019
Majid Masso
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引用次数: 1

Abstract

Advancements in the interpretation of variants of unknown significance are critical for improving clinical outcomes. In a recent study, massive parallel assays were used to experimentally quantify the effects of missense substitutions in the RING domain of BRCA1 on E3 ubiquitin ligase activity as well as BARD1 RING domain binding. These attributes were subsequently used for training a predictive model of homology-directed DNA repair levels for these BRCA1 variants relative to wild type, which is critical for tumor suppression. Here, relative structural changes characterizing BRCA1 variants were quantified by using an efficient and cost-free computational mutagenesis technique, and we show that these features lead to improvements in model performance. This work underscores the potential for bench researchers to gain valuable insights from computational tools, prior to implementing costly and time-consuming experiments.

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BRCA1 RING结构域变异的功能分析:计算导出的结构数据可以改进训练预测模型的实验特征。
在解释未知意义的变异方面取得进展对于改善临床结果至关重要。在最近的一项研究中,大量平行分析被用于实验量化BRCA1环结构域错义替换对E3泛素连接酶活性和BARD1环结构域结合的影响。这些属性随后被用于训练同源性导向的DNA修复水平的预测模型,用于这些BRCA1变异相对于野生型,这对肿瘤抑制至关重要。在这里,通过使用一种高效且无成本的计算诱变技术,我们量化了表征BRCA1变异的相对结构变化,并表明这些特征导致了模型性能的改进。这项工作强调了板凳研究人员在实施昂贵且耗时的实验之前,从计算工具中获得有价值见解的潜力。
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来源期刊
Integrative Biology
Integrative Biology 生物-细胞生物学
CiteScore
4.90
自引率
0.00%
发文量
15
审稿时长
1 months
期刊介绍: Integrative Biology publishes original biological research based on innovative experimental and theoretical methodologies that answer biological questions. The journal is multi- and inter-disciplinary, calling upon expertise and technologies from the physical sciences, engineering, computation, imaging, and mathematics to address critical questions in biological systems. Research using experimental or computational quantitative technologies to characterise biological systems at the molecular, cellular, tissue and population levels is welcomed. Of particular interest are submissions contributing to quantitative understanding of how component properties at one level in the dimensional scale (nano to micro) determine system behaviour at a higher level of complexity. Studies of synthetic systems, whether used to elucidate fundamental principles of biological function or as the basis for novel applications are also of interest.
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