Genomic variation within alpha satellite DNA influences centromere location on human chromosomes with metastable epialleles.

Loading...

Date

2016-10

Journal Title

Journal ISSN

Volume Title

Citation Stats

Attention Stats

Abstract

Alpha satellite is a tandemly organized type of repetitive DNA that comprises 5% of the genome and is found at all human centromeres. A defined number of 171-bp monomers are organized into chromosome-specific higher-order repeats (HORs) that are reiterated thousands of times. At least half of all human chromosomes have two or more distinct HOR alpha satellite arrays within their centromere regions. We previously showed that the two alpha satellite arrays of Homo sapiens Chromosome 17 (HSA17), D17Z1 and D17Z1-B, behave as centromeric epialleles, that is, the centromere, defined by chromatin containing the centromeric histone variant CENPA and recruitment of other centromere proteins, can form at either D17Z1 or D17Z1-B. Some individuals in the human population are functional heterozygotes in that D17Z1 is the active centromere on one homolog and D17Z1-B is active on the other. In this study, we aimed to understand the molecular basis for how centromere location is determined on HSA17. Specifically, we focused on D17Z1 genomic variation as a driver of epiallele formation. We found that D17Z1 arrays that are predominantly composed of HOR size and sequence variants were functionally less competent. They either recruited decreased amounts of the centromere-specific histone variant CENPA and the HSA17 was mitotically unstable, or alternatively, the centromere was assembled at D17Z1-B and the HSA17 was stable. Our study demonstrates that genomic variation within highly repetitive, noncoding DNA of human centromere regions has a pronounced impact on genome stability and basic chromosomal function.

Department

Description

Provenance

Subjects

Citation

Published Version (Please cite this version)

10.1101/gr.206706.116

Publication Info

Aldrup-MacDonald, Megan E, Molly E Kuo, Lori L Sullivan, Kimberline Chew and Beth A Sullivan (2016). Genomic variation within alpha satellite DNA influences centromere location on human chromosomes with metastable epialleles. Genome Res, 26(10). pp. 1301–1311. 10.1101/gr.206706.116 Retrieved from https://hdl.handle.net/10161/15133.

This is constructed from limited available data and may be imprecise. To cite this article, please review & use the official citation provided by the journal.

Scholars@Duke

Sullivan

Lori Sullivan

Systems Programmer

I serve as Lab Manager and research technician in the Sullivan lab, where we study the structural dynamics, stability, and function of human chromosomes, with particular interest in the chromosomal locus known as the centromere.

 

Our focused studies contribute to a greater understanding of chromosome instability and inheritance associated with reproductive abnormalities, birth defects, and cancer.

Sullivan

Beth Ann Sullivan

James B. Duke Distinguished Professor of Molecular Genetics and Microbiology

Beth Sullivan is the Vice Dean for Basic and Preclinical Science in the School of Medicine. In this role, she provides strategic leadership for the School of Medicine’s basic and preclinical science enterprise. She oversees planning and alignment across basic science departments, research centers, and institutes and work with clinical and administrative leaders to strengthen the school’s research portfolio, support faculty recruitment and development, and ensure that the school’s infrastructure, training programs, and resources position Duke at the forefront of discovery. She is also a James B. Duke Professor of Molecular Genetics and Microbiology, overseeing a research program that studies the genetics and genomics of human chromosome inheritance.


Unless otherwise indicated, scholarly articles published by Duke faculty members are made available here with a CC-BY-NC (Creative Commons Attribution Non-Commercial) license, as enabled by the Duke Open Access Policy. If you wish to use the materials in ways not already permitted under CC-BY-NC, please consult the copyright owner. Other materials are made available here through the author’s grant of a non-exclusive license to make their work openly accessible.