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全基因组多基因疾病风险评分可识别出与单基因突变风险相当的个体。

Genome-wide polygenic scores for common diseases identify individuals with risk equivalent to monogenic mutations.

机构信息

Center for Genomic Medicine, Massachusetts General Hospital, Boston, MA, USA.

Cardiology Division of the Department of Medicine, Massachusetts General Hospital, Boston, MA, USA.

出版信息

Nat Genet. 2018 Sep;50(9):1219-1224. doi: 10.1038/s41588-018-0183-z. Epub 2018 Aug 13.

Abstract

A key public health need is to identify individuals at high risk for a given disease to enable enhanced screening or preventive therapies. Because most common diseases have a genetic component, one important approach is to stratify individuals based on inherited DNA variation. Proposed clinical applications have largely focused on finding carriers of rare monogenic mutations at several-fold increased risk. Although most disease risk is polygenic in nature, it has not yet been possible to use polygenic predictors to identify individuals at risk comparable to monogenic mutations. Here, we develop and validate genome-wide polygenic scores for five common diseases. The approach identifies 8.0, 6.1, 3.5, 3.2, and 1.5% of the population at greater than threefold increased risk for coronary artery disease, atrial fibrillation, type 2 diabetes, inflammatory bowel disease, and breast cancer, respectively. For coronary artery disease, this prevalence is 20-fold higher than the carrier frequency of rare monogenic mutations conferring comparable risk. We propose that it is time to contemplate the inclusion of polygenic risk prediction in clinical care, and discuss relevant issues.

摘要

一个主要的公共卫生需求是识别出患有特定疾病的高风险个体,以便进行强化筛查或预防治疗。由于大多数常见疾病都有遗传成分,一种重要的方法是根据遗传 DNA 变异对个体进行分层。已提出的临床应用主要集中在寻找罕见单基因突变的携带者,他们的风险增加了几倍。尽管大多数疾病风险是多基因性质的,但迄今为止,还不可能使用多基因预测因子来识别风险与单基因突变相当的个体。在这里,我们开发和验证了五种常见疾病的全基因组多基因评分。该方法分别识别出 8.0%、6.1%、3.5%、3.2%和 1.5%的人群,他们患冠状动脉疾病、心房颤动、2 型糖尿病、炎症性肠病和乳腺癌的风险增加了三倍以上。对于冠状动脉疾病,这种患病率比赋予相当风险的罕见单基因突变的携带者频率高 20 倍。我们建议是时候考虑将多基因风险预测纳入临床护理,并讨论相关问题了。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/783f/6128408/a522d74a2a6a/nihms-977254-f0001.jpg

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