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PMID: 8031404 Published · ppublish English Comment Journal Article Review

A rosy future for heterochromatin.

Cook KR, Karpen GH

Abstract

The demonstration by Zhang and Spradling (1) of efficient P element transposition into heterochromatic regions will aid ongoing studies of heterochromatin structure and function. P element insertions will provide entry points for further molecular analysis of heterochromatin and will allow the isolation of small and large heterochromatic deficiencies. The generation of heterochromatic P insertions also will aid the study of heterochromatic genes. Of the heterochromatic insertions isolated by Zhang and Spradling, five were homozygous lethal, and one of these defined a lethal locus not previously uncovered by heterochromatic deficiencies. P elements have previously been used to mutagenize and clone specific heterochromatic genes (14, 19, 26). New methods, like those described here (1, 32), should allow the efficient identification and molecular isolation of other single-copy heterochromatic genes. Furthermore, since position-effect suppression allowed the recovery of heterochromatic P insertions, it may also allow the recovery of insertions in euchromatic regions previously refractory to P mutagenesis. Studies of position-effect variegation show that genes normally found in heterochromatin require a heterochromatic context for normal expression and that heterochromatin is inhibitory to euchromatic gene expression (16). The physical basis of these related phenomena--chromatin assembly, nuclear positioning, and/or heterochromatin elimination--can be resolved only with a more thorough understanding of heterochromatin structure and functions. Analyzing heterochromatin also will help define the chromosomal components responsible for inheritance processes such as chromosome pairing, sister chromatid adhesion, and centromere function. These efforts will be facilitated by the effective use of P elements combined with other current molecular-genetic approaches.

MeSH Terms
Animals DNA Transposable Elements Drosophila melanogaster/genetics Heterochromatin Repetitive Sequences, Nucleic Acid
Chemicals
DNA Transposable Elements Heterochromatin
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Cook K R
Molecular Biology and Virology Laboratory, Salk Institute for Biological Studies, La Jolla, CA 92037.
Karpen G H
References (28)
28 references, click to expand
  1. The organization and expression of the light gene, a heterochromatic gene of Drosophila melanogaster.
    Genetics. 1990 May;125(1):129-40 PMID: 2111263
  2. The role of heterochromatin in the expression of a heterochromatic gene, the rolled locus of Drosophila melanogaster.
    Genetics. 1993 May;134(1):277-92 PMID: 8514136
  3. Cloning and characterization of the segment polarity gene cubitus interruptus Dominant of Drosophila.
    Genes Dev. 1990 Jun;4(6):1053-67 PMID: 2166702
  4. Reduced DNA polytenization of a minichromosome region undergoing position-effect variegation in Drosophila.
    Cell. 1990 Oct 5;63(1):97-107 PMID: 2208283
  5. Preferential insertion of P elements into genes expressed in the germ-line of Drosophila melanogaster.
    Mol Gen Genet. 1990 Jul;222(2-3):457-60 PMID: 2177140
  6. A position-effect assay for boundaries of higher order chromosomal domains.
    Cell. 1991 Mar 8;64(5):941-50 PMID: 1848159
  7. Segregation distorters.
    Annu Rev Genet. 1991;25:511-57 PMID: 1812815
  8. Evidence that intergenic spacer repeats of Drosophila melanogaster rRNA genes function as X-Y pairing sites in male meiosis, and a general model for achiasmatic pairing.
    Genetics. 1992 Oct;132(2):529-44 PMID: 1330825
  9. Analysis of subtelomeric heterochromatin in the Drosophila minichromosome Dp1187 by single P element insertional mutagenesis.
    Genetics. 1992 Nov;132(3):737-53 PMID: 1334894
  10. Functional elements in Drosophila melanogaster heterochromatin.
    Annu Rev Genet. 1992;26:239-75 PMID: 1482113
  11. A 5' element of the chicken beta-globin domain serves as an insulator in human erythroid cells and protects against position effect in Drosophila.
    Cell. 1993 Aug 13;74(3):505-14 PMID: 8348617
  12. Mapping simple repeated DNA sequences in heterochromatin of Drosophila melanogaster.
    Genetics. 1993 Aug;134(4):1149-74 PMID: 8375654
  13. Requiem for distributive segregation: achiasmate segregation in Drosophila females.
    Trends Genet. 1993 Sep;9(9):310-7 PMID: 8236460
  14. Insertional mutagenesis of Drosophila heterochromatin with single P elements.
    Proc Natl Acad Sci U S A. 1994 Apr 26;91(9):3539-43 PMID: 8170943
  15. Position-effect variegation and the new biology of heterochromatin.
    Curr Opin Genet Dev. 1994 Apr;4(2):281-91 PMID: 8032206
  16. The effects of chromosome rearrangements on the expression of heterochromatic genes in chromosome 2L of Drosophila melanogaster.
    Genetics. 1990 May;125(1):141-54 PMID: 2111264
  17. Reptitive DNA sequences in drosophila.
    Chromosoma. 1971;33(3):319-44 PMID: 5088497
  18. The effect of chromosomal position on the expression of the Drosophila xanthine dehydrogenase gene.
    Cell. 1983 Aug;34(1):47-57 PMID: 6309411
  19. Transformation of white locus DNA in drosophila: dosage compensation, zeste interaction, and position effects.
    Cell. 1984 Feb;36(2):469-81 PMID: 6319027
  20. Effects of genomic position on the expression of transduced copies of the white gene of Drosophila.
    Science. 1985 Aug 9;229(4713):558-61 PMID: 2992080
  21. Mouse satellite DNA, centromere structure, and sister chromatid pairing.
    J Cell Biol. 1986 Oct;103(4):1145-51 PMID: 2429969
  22. Studies of normal and position-affected expression of rosy region genes in Drosophila melanogaster.
    Genetics. 1986 Nov;114(3):819-40 PMID: 3098623
  23. Drosophila ribosomal RNA genes function as an X-Y pairing site during male meiosis.
    Cell. 1990 Apr 6;61(1):61-72 PMID: 2156630
  24. Chromosome structure at interfaces between major chromatin types: alpha- and beta-heterochromatin.
    Bioessays. 1990 Jan;12(1):1-6 PMID: 2108664
  25. Preferential transposition of Drosophila P elements to nearby chromosomal sites.
    Genetics. 1993 Feb;133(2):347-59 PMID: 8382177
  26. Efficient and dispersed local P element transposition from Drosophila females.
    Genetics. 1993 Feb;133(2):361-73 PMID: 8382178
  27. Homology with Saccharomyces cerevisiae RNA14 suggests that phenotypic suppression in Drosophila melanogaster by suppressor of forked occurs at the level of RNA stability.
    Genes Dev. 1993 Feb;7(2):241-9 PMID: 8436295
  28. The su(Hw) protein insulates expression of the Drosophila melanogaster white gene from chromosomal position-effects.
    EMBO J. 1993 Feb;12(2):435-42 PMID: 8382607
Article Info
Journal
Proceedings of the National Academy of Sciences of the United States of America
Abbr.
Proc Natl Acad Sci U S A
ISSN
0027-8424
Published
1994-06-07
Pages
5219-21
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC43965
Subset
IM
Corrections
CommentOn
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