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染色质构象调控人类基因组可遗传结构变异的起源。

Chromatin organization modulates the origin of heritable structural variations in human genome.

机构信息

Mayo Clinic, Department of Health Sciences Research, Center for Individualized Medicine, Rochester, MN 55905, USA.

出版信息

Nucleic Acids Res. 2019 Apr 8;47(6):2766-2777. doi: 10.1093/nar/gkz103.

Abstract

Structural variations (SVs) in the human genome originate from different mechanisms related to DNA repair, replication errors, and retrotransposition. Our analyses of 26 927 SVs from the 1000 Genomes Project revealed differential distributions and consequences of SVs of different origin, e.g. deletions from non-allelic homologous recombination (NAHR) are more prone to disrupt chromatin organization while processed pseudogenes can create accessible chromatin. Spontaneous double stranded breaks (DSBs) are the best predictor of enrichment of NAHR deletions in open chromatin. This evidence, along with strong physical interaction of NAHR breakpoints belonging to the same deletion suggests that majority of NAHR deletions are non-meiotic i.e. originate from errors during homology directed repair (HDR) of spontaneous DSBs. In turn, the origin of the spontaneous DSBs is associated with transcription factor binding in accessible chromatin revealing the vulnerability of functional, open chromatin. The chromatin itself is enriched with repeats, particularly fixed Alu elements that provide the homology required to maintain stability via HDR. Through co-localization of fixed Alus and NAHR deletions in open chromatin we hypothesize that old Alu expansion had a stabilizing role on the human genome.

摘要

人类基因组中的结构变异(SVs)源自与 DNA 修复、复制错误和 retrotransposition 相关的不同机制。我们对来自 1000 基因组计划的 26927 个 SV 的分析揭示了不同起源的 SV 的不同分布和后果,例如非等位同源重组(NAHR)的缺失更倾向于破坏染色质组织,而加工假基因可以创造可及染色质。自发双链断裂(DSBs)是 NAHR 缺失在开放染色质中富集的最佳预测因子。这一证据,以及属于同一缺失的 NAHR 断点之间的强烈物理相互作用表明,大多数 NAHR 缺失是非减数分裂的,即起源于同源定向修复(HDR)自发 DSBs 过程中的错误。反过来,自发 DSBs 的起源与可及染色质中的转录因子结合有关,揭示了功能开放染色质的脆弱性。染色质本身富含重复序列,特别是固定的 Alu 元件,这些元件提供了通过 HDR 维持稳定性所需的同源性。通过固定 Alu 和 NAHR 缺失在开放染色质中的共定位,我们假设旧的 Alu 扩展在人类基因组中具有稳定作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a85b/6451188/16ad7cc48089/gkz103fig1.jpg

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