Literature DB >> 6764903

Sequence of centromere separation: role of centromeric heterochromatin.

B K Vig.   

Abstract

The late metaphase-early anaphase cells from various tissues of male Mus musculus, M. poschiavinus, M. spretus, M. castaneus, female and male Bos taurus (cattle) and female Myopus schisticolor (wood lemming) were analyzed for centromeres that showed separation into two daughter centromeres and those that did not show such separation. In all strains and species of mouse the Y chromosome is the first one to separate, as is the X or Y in the cattle. These sex chromosomes are devoid of constitutive heterochromatin, whereas all autosomes in these species carry detectable quantities. In cattle, the late replicating X chromosome appears to separate later than the active X. In the wood lemming the three pairs of autosomes with the least amount of centromeric constitutive heterochromatin separate first. These are followed by the separation of seven pairs of autosomes carrying medium amounts of constitutive heterochromatin. Five pairs of autosomes with the largest amounts of constitutive heterochromatin are the last in the sequence of separation. The sex chromosomes with medium amounts of constitutive heterochromatin around the centromere, and a very large amount of distal heterochromatin, separate among the very late ones but are not the last. These observations assign a specific role to centromeric constitutive heterochromatin and also indicate that nonproximal heterochromatin does not exert control over the sequence in which the centromeres in the genome separate. It appears that qualitative differences among various types of constitutive heterochromatin are as important as quantitative differences in controlling the separation of centromeres.

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Year:  1982        PMID: 6764903      PMCID: PMC1201974     

Source DB:  PubMed          Journal:  Genetics        ISSN: 0016-6731            Impact factor:   4.562


  1 in total

1.  Fertile XX- and XY-type females in the wood lemming Myopus schisticolor.

Authors:  K Fredga; A Gropp; H Winking; F Frank
Journal:  Nature       Date:  1976-05-20       Impact factor: 49.962

  1 in total
  9 in total

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2.  Sequence of centromere separation: differential replication of pericentric heterochromatin in multicentric chromosomes.

Authors:  B K Vig; D Broccoli
Journal:  Chromosoma       Date:  1988       Impact factor: 4.316

3.  Heterochromatin associated with active versus inactive centromeres of mouse replicates at different times.

Authors:  B K Vig
Journal:  Experientia       Date:  1988-01-15

4.  Structure and evolution of a highly repetitive DNA sequence from Brassica napus.

Authors:  X Xia; G Selvaraj; H Bertrand
Journal:  Plant Mol Biol       Date:  1993-01       Impact factor: 4.076

5.  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

6.  Sequence of centromere separation another mechanism for the origin of nondisjunction.

Authors:  B K Vig
Journal:  Hum Genet       Date:  1984       Impact factor: 4.132

Review 7.  The molecular basis for centromere identity and function.

Authors:  Kara L McKinley; Iain M Cheeseman
Journal:  Nat Rev Mol Cell Biol       Date:  2015-11-25       Impact factor: 94.444

8.  Sequence of centromere separation: orderly separation of multicentric chromosomes in mouse L cells.

Authors:  B K Vig
Journal:  Chromosoma       Date:  1984       Impact factor: 4.316

9.  Mouse centric and pericentric satellite repeats form distinct functional heterochromatin.

Authors:  Mounia Guenatri; Delphine Bailly; Christèle Maison; Geneviève Almouzni
Journal:  J Cell Biol       Date:  2004-08-09       Impact factor: 10.539

  9 in total

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