Preprint · CC-BY
via OpenAlex
Nucleolar organizer regions: genomic ‘dark matter’ requiring illumination
Genes & Development · 2016 · ▲ 266 citations
Abstract
Nucleoli form around tandem arrays of a ribosomal gene repeat, termed nucleolar organizer regions (NORs). During metaphase, active NORs adopt a characteristic undercondensed morphology. Recent evidence indicates that the HMG-box-containing DNA-binding protein UBF (upstream binding factor) is directly responsible for this morphology and provides a mitotic bookmark to ensure rapid nucleolar formation beginning in telophase in human cells. This is likely to be a widely employed strategy, as UBF is present throughout metazoans. In higher eukaryotes, NORs are typically located within regions of chromosomes that form perinucleolar heterochromatin during interphase. Typically, the genomic architecture of NORs and the chromosomal regions within which they lie is very poorly described, yet recent evidence points to a role for context in their function. In Arabidopsis, NOR silencing appears to be controlled by sequences outside the rDNA (ribosomal DNA) array. Translocations reveal a role for context in the expression of the NOR on the X chromosome in Drosophila Recent work has begun on characterizing the genomic architecture of human NORs. A role for distal sequences located in perinucleolar heterochromatin has been inferred, as they exhibit a complex transcriptionally active chromatin structure. Links between rDNA genomic stability and aging in Saccharomyces cerevisiae are now well established, and indications are emerging that this is important in aging and replicative senescence(definition) in higher eukaryotes. This, combined with the fact that rDNA arrays are recombinational hot spots in cancer cells, has focused attention on DNA damage responses in NORs. The introduction of DNA double-strand breaks into rDNA arrays leads to a dramatic reorganization of nucleolar structure. Damaged rDNA repeats move from the nucleolar interior to form caps at the nucleolar periphery, presumably to facilitate repair, suggesting that the chromosomal context of human NORs contributes to their genomic stability. The inclusion of NORs and their surrounding chromosomal environments in future genome drafts now becomes a priority.
◌ CITATION ONLY
Full text is not openly licensed for redistribution here. Read it at the source:
Provenance
- Source
- OpenAlex
- DOI
- 10.1101/gad.283838.116
- Canonical
- link ↗
- Fetched
- 2026-07-16 MST
Cite this
APA
McStay, B. (2016). Nucleolar organizer regions: genomic ‘dark matter’ requiring illumination. <em>Genes & Development</em>. https://doi.org/10.1101/gad.283838.116
Vancouver
McStay B. Nucleolar organizer regions: genomic ‘dark matter’ requiring illumination. Genes & Development. 2016. doi:10.1101/gad.283838.116.
BibTeX
@unpublished{brian2016Nucleo,
title = {Nucleolar organizer regions: genomic ‘dark matter’ requiring illumination},
author = {Brian McStay},
journal = {Genes & Development},
year = {2016},
doi = {10.1101/gad.283838.116},
}
Research neighborhood
References, citing works, and semantically nearest findings. Click a node to open it.
Related findings
Science Advances 2018
Open access · CC-BY
Impaired cohesion and homologous recombination during replicative aging in budding yeast
Developmental Biology 2008
Open access · OA
Altered gene expression and methylation of the human chromosome 11 imprinted region in small for gestational age (SGA) placentae
Scientific reports 2024
Open access · OA
Lack of association between common polymorphisms associated with successful aging and longevity in the population of Sardinian Blue Zone.
Frontiers in Physiology 2019
Open access · CC-BY
Age-Related DNA Methylation Changes: Potential Impact on Skeletal Muscle Aging in Humans
Carcinogenesis 2000
Open access · OA
DNA methylation: past, present and future directions
Nature Communications 2015
Open access · OA