- THIS ARTICLE
- Full Text (PDF)
- Alert me when this article is cited
- Alert me if a correction is posted
- SERVICES
- Similar articles in this journal
- Similar articles in PubMed
- Alert me to new issues of the journal
- Download to citation manager
- Reprints & Permissions
- CITING ARTICLES
- Citing Articles via HighWire
- Citing Articles via Google Scholar
- GOOGLE SCHOLAR
- Articles by Smith, P. A.
- Articles by Corces, V. G.
- Search for Related Content
- PUBMED
- PubMed Citation
- Articles by Smith, P. A.
- Articles by Corces, V. G.
Genetics, Vol 139, 215-228, Copyright © 1995
INVESTIGATIONS |
The suppressor of Hairy-wing Protein Regulates the Tissue-Specific Expression of the Drosophila gypsy Retrotransposon
P. A. Smith and V. G. Corces
Department of Biology, The Johns Hopkins University, Baltimore, Maryland 21218
The gypsy retrotransposon of Drosophila melanogaster causes mutations that show temporal and tissue-specific phenotypes. These mutant phenotypes can be reversed by mutations in su(Hw), a gene that also regulates the transcription of the gypsy element. Gypsy encodes a full-length 7.0-kb RNA that is expressed in the salivary gland precursors and fat body of the embryo, imaginal discs and fat body of larvae, and fat body and ovaries of adult females. The su(Hw)-binding region inserted upstream of the promoter of a lacZ reporter gene can induce {beta}-galactosidase expression in a subset of the embryonic and larval tissues where gypsy is normally transcribed. This expression is dependent on the presence of a functional su(Hw) product, suggesting that this protein is a positive activator of gypsy transcription. Flies transformed with a construct in which the 5' LTR and leader sequences of gypsy are fused to lacZ show {beta}-galactosidase expression in all tissues where gypsy is normally expressed, indicating that sequences other than the su(Hw)-binding site are required for proper spatial and temporal expression of gypsy. Mutations in the zinc fingers of su(Hw) affect its ability to bind DNA and to induce transcription of the lacZ reporter gene. Two other structural domains of su(Hw) also play an important role in transcriptional regulation of gypsy. Deletion of the amino-terminal acidic domain results in the loss of lacZ expression in larval fat body and adult ovaries, whereas mutations in the leucine zipper region result in an increase of lacZ expression in larval fat body and a decrease in adult ovaries. These effects might be the result of interactions of su(Hw) with activator and repressor proteins through the acidic and leucine zipper domains to produce the final pattern of tissue-specific expression of gypsy.
This article has been cited by other articles:
![]() |
N. Engel, J. L. Thorvaldsen, and M. S. Bartolomei CTCF binding sites promote transcription initiation and prevent DNA methylation on the maternal allele at the imprinted H19/Igf2 locus Hum. Mol. Genet., October 1, 2006; 15(19): 2945 - 2954. [Abstract] [Full Text] [PDF] |
||||
![]() |
E. Savitskaya, L. Melnikova, M. Kostuchenko, E. Kravchenko, E. Pomerantseva, T. Boikova, D. Chetverina, A. Parshikov, P. Zobacheva, E. Gracheva, et al. Study of Long-Distance Functional Interactions between Su(Hw) Insulators That Can Regulate Enhancer-Promoter Communication in Drosophila melanogaster Mol. Cell. Biol., February 1, 2006; 26(3): 754 - 761. [Abstract] [Full Text] [PDF] |
||||
![]() |
A. Golovnin, E. Melnick, A. Mazur, and P. Georgiev Drosophila Su(Hw) Insulator Can Stimulate Transcription of a Weakened yellow Promoter Over a Distance Genetics, July 1, 2005; 170(3): 1133 - 1142. [Abstract] [Full Text] [PDF] |
||||
![]() |
C. RONFORT, S. DE BREYNE, V. SANDRIN, J.-L. DARLIX, and T. OHLMANN Characterization of two distinct RNA domains that regulate translation of the Drosophila gypsy retroelement RNA, March 1, 2004; 10(3): 504 - 515. [Abstract] [Full Text] [PDF] |
||||
![]() |
E. Sarot, G. Payen-Groschene, A. Bucheton, and A. Pelisson Evidence for a piwi-Dependent RNA Silencing of the gypsy Endogenous Retrovirus by the Drosophila melanogaster flamenco Gene Genetics, March 1, 2004; 166(3): 1313 - 1321. [Abstract] [Full Text] [PDF] |
||||
![]() |
C. Meignin, J.-L. Bailly, F. Arnaud, B. Dastugue, and C. Vaury The 5' Untranslated Region and Gag product of Idefix, a Long Terminal Repeat-Retrotransposon from Drosophila melanogaster, Act Together To Initiate a Switch between Translated and Untranslated States of the Genomic mRNA Mol. Cell. Biol., November 15, 2003; 23(22): 8246 - 8254. [Abstract] [Full Text] [PDF] |
||||
![]() |
P. Majumder and H. N. Cai The functional analysis of insulator interactions in the Drosophila embryo PNAS, April 29, 2003; 100(9): 5223 - 5228. [Abstract] [Full Text] [PDF] |
||||
![]() |
A. G. West, M. Gaszner, and G. Felsenfeld Insulators: many functions, many mechanisms Genes & Dev., February 1, 2002; 16(3): 271 - 288. [Full Text] [PDF] |
||||
![]() |
W. Wei and M. D. Brennan The gypsy Insulator Can Act as a Promoter-Specific Transcriptional Stimulator Mol. Cell. Biol., November 15, 2001; 21(22): 7714 - 7720. [Abstract] [Full Text] [PDF] |
||||
![]() |
W. Wei and M. D. Brennan Polarity of transcriptional enhancement revealed by an insulator element PNAS, December 8, 2000; (2000) 11529598. [Abstract] [Full Text] |
||||
![]() |
J. Vazquez and P. Schedl Deletion of an Insulator Element by the Mutation facet-strawberry in Drosophila melanogaster Genetics, July 1, 2000; 155(3): 1297 - 1311. [Abstract] [Full Text] |
||||
![]() |
S. Nabirochkin, M. Ossokina, and T. Heidmann A Nuclear Matrix/Scaffold Attachment Region Co-localizes with the Gypsy Retrotransposon Insulator Sequence J. Biol. Chem., January 23, 1998; 273(4): 2473 - 2479. [Abstract] [Full Text] [PDF] |
||||
![]() |
S. Song, M Kurkulos, J. Boeke, and V. Corces Infection of the germ line by retroviral particles produced in the follicle cells: a possible mechanism for the mobilization of the gypsy retroelement of Drosophila Development, January 7, 1997; 124(14): 2789 - 2798. [Abstract] [PDF] |
||||
![]() |
W. Wei and M. D. Brennan Polarity of transcriptional enhancement revealed by an insulator element PNAS, December 19, 2000; 97(26): 14518 - 14523. [Abstract] [Full Text] [PDF] |
||||







