Literature DB >> 21484447

Genomic size of CENP-A domain is proportional to total alpha satellite array size at human centromeres and expands in cancer cells.

Lori L Sullivan1, Christopher D Boivin, Brankica Mravinac, Ihn Young Song, Beth A Sullivan.   

Abstract

Human centromeres contain multi-megabase-sized arrays of alpha satellite DNA, a family of satellite DNA repeats based on a tandemly arranged 171 bp monomer. The centromere-specific histone protein CENP-A is assembled on alpha satellite DNA within the primary constriction, but does not extend along its entire length. CENP-A domains have been estimated to extend over 2,500 kb of alpha satellite DNA. However, these estimates do not take into account inter-individual variation in alpha satellite array sizes on homologous chromosomes and among different chromosomes. We defined the genomic distance of CENP-A chromatin on human chromosomes X and Y from different individuals. CENP-A chromatin occupied different genomic intervals on different chromosomes, but despite inter-chromosomal and inter-individual array size variation, the ratio of CENP-A to total alpha satellite DNA size remained consistent. Changes in the ratio of alpha satellite array size to CENP-A domain size were observed when CENP-A was overexpressed and when primary cells were transformed by disrupting interactions between the tumor suppressor protein Rb and chromatin. Our data support a model for centromeric domain organization in which the genomic limits of CENP-A chromatin varies on different human chromosomes, and imply that alpha satellite array size may be a more prominent predictor of CENP-A incorporation than chromosome size. In addition, our results also suggest that cancer transformation and amounts of centromeric heterochromatin have notable effects on the amount of alpha satellite that is associated with CENP-A chromatin.

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Year:  2011        PMID: 21484447      PMCID: PMC3565466          DOI: 10.1007/s10577-011-9208-5

Source DB:  PubMed          Journal:  Chromosome Res        ISSN: 0967-3849            Impact factor:   5.239


  47 in total

1.  Structure and molecular organization of the centromere-kinetochore complex.

Authors:  B R Brinkley; I Ouspenski; R P Zinkowski
Journal:  Trends Cell Biol       Date:  1992-01       Impact factor: 20.808

2.  A novel chromatin immunoprecipitation and array (CIA) analysis identifies a 460-kb CENP-A-binding neocentromere DNA.

Authors:  A W Lo; D J Magliano; M C Sibson; P Kalitsis; J M Craig; K H Choo
Journal:  Genome Res       Date:  2001-03       Impact factor: 9.043

3.  The E6 and E7 genes of the human papillomavirus type 16 together are necessary and sufficient for transformation of primary human keratinocytes.

Authors:  K Münger; W C Phelps; V Bubb; P M Howley; R Schlegel
Journal:  J Virol       Date:  1989-10       Impact factor: 5.103

4.  The activation of a neocentromere in Drosophila requires proximity to an endogenous centromere.

Authors:  K A Maggert; G H Karpen
Journal:  Genetics       Date:  2001-08       Impact factor: 4.562

5.  Variable and hierarchical size distribution of L1-retroelement-enriched CENP-A clusters within a functional human neocentromere.

Authors:  Anderly C Chueh; Lee H Wong; Nicholas Wong; K H Andy Choo
Journal:  Hum Mol Genet       Date:  2004-11-10       Impact factor: 6.150

6.  Genomic microarray analysis reveals distinct locations for the CENP-A binding domains in three human chromosome 13q32 neocentromeres.

Authors:  Alicia Alonso; Radma Mahmood; Shulan Li; Fanny Cheung; Kinya Yoda; Peter E Warburton
Journal:  Hum Mol Genet       Date:  2003-08-19       Impact factor: 6.150

7.  CENP-C is required for maintaining proper kinetochore size and for a timely transition to anaphase.

Authors:  J Tomkiel; C A Cooke; H Saitoh; R L Bernat; W C Earnshaw
Journal:  J Cell Biol       Date:  1994-05       Impact factor: 10.539

8.  Histone modifications within the human X centromere region.

Authors:  Brankica Mravinac; Lori L Sullivan; Jason W Reeves; Christopher M Yan; Kristen S Kopf; Christine J Farr; Mary G Schueler; Beth A Sullivan
Journal:  PLoS One       Date:  2009-08-12       Impact factor: 3.240

9.  CENPA overexpression promotes genome instability in pRb-depleted human cells.

Authors:  Angela Amato; Tiziana Schillaci; Laura Lentini; Aldo Di Leonardo
Journal:  Mol Cancer       Date:  2009-12-10       Impact factor: 27.401

10.  Co-localization of CENP-C and CENP-H to discontinuous domains of CENP-A chromatin at human neocentromeres.

Authors:  Alicia Alonso; Björn Fritz; Dan Hasson; György Abrusan; Fanny Cheung; Kinya Yoda; Bernhard Radlwimmer; Andreas G Ladurner; Peter E Warburton
Journal:  Genome Biol       Date:  2007       Impact factor: 13.583

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  56 in total

Review 1.  Pericentric and centromeric transcription: a perfect balance required.

Authors:  Laura E Hall; Sarah E Mitchell; Rachel J O'Neill
Journal:  Chromosome Res       Date:  2012-07       Impact factor: 5.239

Review 2.  Neocentromeres and epigenetically inherited features of centromeres.

Authors:  Laura S Burrack; Judith Berman
Journal:  Chromosome Res       Date:  2012-07       Impact factor: 5.239

Review 3.  Transcription and ncRNAs: at the cent(rome)re of kinetochore assembly and maintenance.

Authors:  Kristin C Scott
Journal:  Chromosome Res       Date:  2013-12       Impact factor: 5.239

Review 4.  Using human artificial chromosomes to study centromere assembly and function.

Authors:  Oscar Molina; Natalay Kouprina; Hiroshi Masumoto; Vladimir Larionov; William C Earnshaw
Journal:  Chromosoma       Date:  2017-07-07       Impact factor: 4.316

Review 5.  Chromatin dynamics during the cell cycle at centromeres.

Authors:  Sebastian Müller; Geneviève Almouzni
Journal:  Nat Rev Genet       Date:  2017-01-31       Impact factor: 53.242

6.  Cell Cycle-Regulated Transcription of CENP-A by the MBF Complex Ensures Optimal Level of CENP-A for Centromere Formation.

Authors:  David Aristizabal-Corrales; Jinpu Yang; Fei Li
Journal:  Genetics       Date:  2019-01-11       Impact factor: 4.562

Review 7.  Flexibility of centromere and kinetochore structures.

Authors:  Laura S Burrack; Judith Berman
Journal:  Trends Genet       Date:  2012-03-23       Impact factor: 11.639

Review 8.  Human centromere genomics: now it's personal.

Authors:  Karen E Hayden
Journal:  Chromosome Res       Date:  2012-07       Impact factor: 5.239

9.  Chromatin Regulators as a Guide for Cancer Treatment Choice.

Authors:  Zachary A Gurard-Levin; Laurence O W Wilson; Vera Pancaldi; Sophie Postel-Vinay; Fabricio G Sousa; Cecile Reyes; Elisabetta Marangoni; David Gentien; Alfonso Valencia; Yves Pommier; Paul Cottu; Geneviève Almouzni
Journal:  Mol Cancer Ther       Date:  2016-05-16       Impact factor: 6.261

10.  Functional epialleles at an endogenous human centromere.

Authors:  Kristin A Maloney; Lori L Sullivan; Justyne E Matheny; Erin D Strome; Stephanie L Merrett; Alyssa Ferris; Beth A Sullivan
Journal:  Proc Natl Acad Sci U S A       Date:  2012-07-30       Impact factor: 11.205

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