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高通量单分子图谱将亚端粒变异和长程单倍型与特定端粒联系起来。

High-throughput single-molecule mapping links subtelomeric variants and long-range haplotypes with specific telomeres.

作者信息

Young Eleanor, Pastor Steven, Rajagopalan Ramakrishnan, McCaffrey Jennifer, Sibert Justin, Mak Angel C Y, Kwok Pui-Yan, Riethman Harold, Xiao Ming

机构信息

Drexel University, School of Biomedical Engineering, Philadelphia, PA, 19104 USA.

Cardiovascular Research Institute, University of California, San Francisco, CA, 94158 USA.

出版信息

Nucleic Acids Res. 2017 May 19;45(9):e73. doi: 10.1093/nar/gkx017.

Abstract

Accurate maps and DNA sequences for human subtelomere regions, along with detailed knowledge of subtelomere variation and long-range telomere-terminal haplotypes in individuals, are critical for understanding telomere function and its roles in human biology. Here, we use a highly automated whole genome mapping technology in nano-channel arrays to analyze large terminal human chromosome segments extending from chromosome-specific subtelomere sequences through subtelomeric repeat regions to terminal (TTAGGG)n repeat tracts. We establish detailed maps for subtelomere gap regions in the human reference sequence, detect many new large subtelomeric variants and demonstrate the feasibility of long-range haplotyping through segmentally duplicated subtelomere regions. These features make the method a uniquely valuable new tool for improving the quality of genome assemblies in complex DNA regions. Based on single molecule mapping of telomere-terminal DNA fragments, we provide proof of principle for a novel method to estimate telomere lengths linked to distinguishable telomeric haplotypes; this single-telomere genotyping method may ultimately enable delineation of human cis elements involved in telomere length regulation.

摘要

人类亚端粒区域的精确图谱和DNA序列,以及对个体中亚端粒变异和远距离端粒末端单倍型的详细了解,对于理解端粒功能及其在人类生物学中的作用至关重要。在这里,我们使用纳米通道阵列中的高度自动化全基因组图谱技术,来分析从特定染色体亚端粒序列延伸穿过亚端粒重复区域到末端(TTAGGG)n重复序列的大型人类染色体末端片段。我们建立了人类参考序列中亚端粒间隙区域的详细图谱,检测到许多新的大型亚端粒变异,并证明了通过分段重复的亚端粒区域进行远距离单倍型分型的可行性。这些特性使该方法成为提高复杂DNA区域基因组组装质量的独特且有价值的新工具。基于端粒末端DNA片段的单分子图谱,我们为一种估计与可区分的端粒单倍型相关的端粒长度的新方法提供了原理证明;这种单端粒基因分型方法最终可能有助于描绘参与端粒长度调节的人类顺式元件。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/db3c/5605236/ac6ec74c43cf/gkx017fig1.jpg

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