Structural Variation in the Human Genome and its Role in Disease

拷贝数变化 生物 遗传学 单核苷酸多态性 结构变异 SNP基因分型 基因分型 孟德尔遗传 人类基因组 SNP阵列 基因组 比较基因组杂交 基因组学 分子反转探针 DNA测序 基因 全基因组关联研究 遗传变异 基因型
作者
Paweł Stankiewicz,James R. Lupski
出处
期刊:Annual Review of Medicine [Annual Reviews]
卷期号:61 (1): 437-455 被引量:1136
标识
DOI:10.1146/annurev-med-100708-204735
摘要

During the last quarter of the twentieth century, our knowledge about human genetic variation was limited mainly to the heterochromatin polymorphisms, large enough to be visible in the light microscope, and the single nucleotide polymorphisms (SNPs) identified by traditional PCR-based DNA sequencing. In the past five years, the rapid development and expanded use of microarray technologies, including oligonucleotide array comparative genomic hybridization and SNP genotyping arrays, as well as next-generation sequencing with "paired-end" methods, has enabled a whole-genome analysis with essentially unlimited resolution. The discovery of submicroscopic copy-number variations (CNVs) present in our genomes has changed dramatically our perspective on DNA structural variation and disease. It is now thought that CNVs encompass more total nucleotides and arise more frequently than SNPs. CNVs, to a larger extent than SNPs, have been shown to be responsible for human evolution, genetic diversity between individuals, and a rapidly increasing number of traits or susceptibility to traits; such conditions have been referred to as genomic disorders. In addition to well-known sporadic chromosomal microdeletion syndromes and Mendelian diseases, many common complex traits including autism and schizophrenia can result from CNVs. Both recombination- and replication-based mechanisms for CNV formation have been described.
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