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通过自动减数分裂图谱结合机器学习鉴定出数千种影响免疫细胞的诱导种系突变。

Thousands of induced germline mutations affecting immune cells identified by automated meiotic mapping coupled with machine learning.

作者信息

Xu Darui, Lyon Stephen, Bu Chun Hui, Hildebrand Sara, Choi Jin Huk, Zhong Xue, Liu Aijie, Turer Emre E, Zhang Zhao, Russell Jamie, Ludwig Sara, Mahrt Elena, Nair-Gill Evan, Shi Hexin, Wang Ying, Zhang Duanwu, Yue Tao, Wang Kuan-Wen, SoRelle Jeffrey A, Su Lijing, Misawa Takuma, McAlpine William, Sun Lei, Wang Jianhui, Zhan Xiaoming, Choi Mihwa, Farokhnia Roxana, Sakla Andrew, Schneider Sara, Coco Hannah, Coolbaugh Gabrielle, Hayse Braden, Mazal Sara, Medler Dawson, Nguyen Brandon, Rodriguez Edward, Wadley Andrew, Tang Miao, Li Xiaohong, Anderton Priscilla, Keller Katie, Press Amanda, Scott Lindsay, Quan Jiexia, Cooper Sydney, Collie Tiffany, Qin Baifang, Cardin Jennifer, Simpson Rochelle, Tadesse Meron, Sun Qihua, Wise Carol A, Rios Jonathan J, Moresco Eva Marie Y, Beutler Bruce

机构信息

Center for the Genetics of Host Defense, University of Texas Southwestern Medical Center, Dallas, TX 75390.

Department of Immunology, University of Texas Southwestern Medical Center, Dallas, TX 75390.

出版信息

Proc Natl Acad Sci U S A. 2021 Jul 13;118(28). doi: 10.1073/pnas.2106786118.

Abstract

Forward genetic studies use meiotic mapping to adduce evidence that a particular mutation, normally induced by a germline mutagen, is causative of a particular phenotype. Particularly in small pedigrees, cosegregation of multiple mutations, occasional unawareness of mutations, and paucity of homozygotes may lead to erroneous declarations of cause and effect. We sought to improve the identification of mutations causing immune phenotypes in mice by creating Candidate Explorer (CE), a machine-learning software program that integrates 67 features of genetic mapping data into a single numeric score, mathematically convertible to the probability of verification of any putative mutation-phenotype association. At this time, CE has evaluated putative mutation-phenotype associations arising from screening damaging mutations in ∼55% of mouse genes for effects on flow cytometry measurements of immune cells in the blood. CE has therefore identified more than half of genes within which mutations can be causative of flow cytometric phenovariation in The majority of these genes were not previously known to support immune function or homeostasis. Mouse geneticists will find CE data informative in identifying causative mutations within quantitative trait loci, while clinical geneticists may use CE to help connect causative variants with rare heritable diseases of immunity, even in the absence of linkage information. CE displays integrated mutation, phenotype, and linkage data, and is freely available for query online.

摘要

正向遗传学研究利用减数分裂图谱来推断证据,证明通常由生殖系诱变剂诱导的特定突变是特定表型的病因。特别是在小家系中,多个突变的共分离、对突变的偶尔忽视以及纯合子的缺乏可能导致因果关系的错误判定。我们试图通过创建候选探索者(CE)来改进对导致小鼠免疫表型的突变的识别,CE是一个机器学习软件程序,它将遗传图谱数据的67个特征整合为一个单一的数字分数,在数学上可转换为验证任何假定的突变-表型关联的概率。目前,CE已经评估了对血液中免疫细胞进行流式细胞术测量时,在约55%的小鼠基因中筛选有害突变所产生的假定突变-表型关联。因此,CE已经确定了超过一半的基因,其中的突变可能是流式细胞术表型变异的原因。这些基因中的大多数以前并不被认为支持免疫功能或内环境稳定。小鼠遗传学家会发现CE数据在识别数量性状位点内的致病突变方面很有参考价值,而临床遗传学家即使在没有连锁信息的情况下,也可以使用CE来帮助将致病变异与罕见的遗传性免疫疾病联系起来。CE展示了整合的突变、表型和连锁数据,并且可以免费在线查询。

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