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Copy number variation profile-based genomic typing of premenstrual dysphoric disorder in Chinese 被引量:1
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作者 Hong Xue Zhenggang Wu +10 位作者 Xi Long Ata Ullah Si Chen Wai-Kin Mat Peng Sun Ming-Zhou Gao Jie-Qiong Wang Hai-Jun Wang Xia Li Wen-Jun Sun Ming-Qi Qiao 《Journal of Genetics and Genomics》 SCIE CAS CSCD 2021年第12期1070-1080,共11页
Premenstrual dysphoric disorder(PMDD) affects nearly 5% of women of reproductive age. Symptomatic heterogeneity, together with largely unknown genetics, has greatly hindered its effective treatment. In the present stu... Premenstrual dysphoric disorder(PMDD) affects nearly 5% of women of reproductive age. Symptomatic heterogeneity, together with largely unknown genetics, has greatly hindered its effective treatment. In the present study, analysis of genomic sequencing-based copy number variations(CNVs) called from 100 kb white blood cell DNA sequence windows by means of semisupervized clustering led to the segregation of patient genomes into the D and V groups, which correlated with the depression and invasion clinical types,respectively, with 89.0% consistency. Application of diagnostic CNV features selected using the correlation-based machine learning method enabled the classification of the CNVs obtained into the D group, V group, total patient group, and control group with an average accuracy of 83.0%. The power of the diagnostic CNV features was 0.98 on average, suggesting that these CNV features could be used for the molecular diagnosis of the major clinical types of PMDD. This demonstrated concordance between the CNV profiles and clinical types of PMDD supported the validity of symptom-based diagnosis of PMDD for differentiating between its two major clinical types, as well as the predominantly genetic nature of PMDD with a host of overlaps between multiple susceptibility genes/pathways and the diagnostic CNV features as indicators of involvement in PMDD etiology. 展开更多
关键词 clinical subtyping Genomic sequencing Machine learning Recurrent copy number variation Replication phase Semisupervized
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