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一种用于估计人类遗传变异相对致病性的通用框架。

A general framework for estimating the relative pathogenicity of human genetic variants.

机构信息

1] Department of Genome Sciences, University of Washington, Seattle, Washington, USA. [2].

1] Department of Biostatistics, University of Washington, Seattle, Washington, USA. [2].

出版信息

Nat Genet. 2014 Mar;46(3):310-5. doi: 10.1038/ng.2892. Epub 2014 Feb 2.

Abstract

Current methods for annotating and interpreting human genetic variation tend to exploit a single information type (for example, conservation) and/or are restricted in scope (for example, to missense changes). Here we describe Combined Annotation-Dependent Depletion (CADD), a method for objectively integrating many diverse annotations into a single measure (C score) for each variant. We implement CADD as a support vector machine trained to differentiate 14.7 million high-frequency human-derived alleles from 14.7 million simulated variants. We precompute C scores for all 8.6 billion possible human single-nucleotide variants and enable scoring of short insertions-deletions. C scores correlate with allelic diversity, annotations of functionality, pathogenicity, disease severity, experimentally measured regulatory effects and complex trait associations, and they highly rank known pathogenic variants within individual genomes. The ability of CADD to prioritize functional, deleterious and pathogenic variants across many functional categories, effect sizes and genetic architectures is unmatched by any current single-annotation method.

摘要

目前注释和解释人类遗传变异的方法往往只利用单一信息类型(例如保守性),或者在范围上受到限制(例如,仅限于错义变化)。在这里,我们描述了综合注释依赖耗竭(CADD),这是一种将多种不同注释客观地整合到每个变体的单一指标(C 分数)中的方法。我们将 CADD 实现为一个支持向量机,该模型经过训练,可以将 1470 万个人类高频衍生等位基因与 1470 万个模拟变体区分开来。我们预先计算了所有 860 亿种可能的人类单核苷酸变体的 C 分数,并支持短插入缺失的评分。C 分数与等位基因多样性、功能注释、致病性、疾病严重程度、实验测量的调控效应和复杂性状关联相关,并且在个体基因组内高度排列已知的致病性变体。CADD 能够优先考虑多种功能类别、效应大小和遗传结构中的功能、有害和致病性变体的能力,是任何当前单一注释方法都无法比拟的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/332e/3992975/fa5e3e33c153/nihms555958f1.jpg

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