- 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 Livak, K. J.
- Search for Related Content
- PUBMED
- PubMed Citation
- Articles by Livak, K. J.
Genetics, Vol 124, 303-316, Copyright © 1990
INVESTIGATIONS |
Detailed Structure of the Drosophila melanogaster Stellate Genes and Their Transcripts
K. J. Livak
Central Research & Development Department, E. I. du Pont de Nemours & Co., Inc., Wilmington, Delaware 19880-0328
The X-linked Stellate locus contains two major size classes of a tandemly repeated gene. An example of each class has been sequenced. The steady-state level of Stellate RNA is much higher in XO testis than in XY testis. Sequencing of six cDNA clones derived from XO testis RNA shows that there are two major introns in the Stellate genes. Primer extension and RNase protection analyses show that these introns are spliced much more efficiently in XO than in XY testis. These results also indicate the major transcriptional start site for Stellate RNA. P element transformation results with a marked Stellate gene demonstrate that at least one of the genes sequenced contains a functional promoter, which generates low levels of RNA in XY testis and high levels of RNA in XO testis. This promoter does not contain a TATA element in the -30 region relative to the transcriptional start. Previous results had implicated a specific region of the Y chromosome, designated here as the Su(Ste) locus, in the control of the Stellate genes on the X. Analysis using segmental Y deficiencies shows that the Su(Ste) region suppresses both the high levels and efficient splicing of Stellate RNA.
This article has been cited by other articles:
![]() |
C. Klattenhoff and W. Theurkauf Biogenesis and germline functions of piRNAs Development, January 1, 2008; 135(1): 3 - 9. [Abstract] [Full Text] [PDF] |
||||
![]() |
M. C. Espunya, T. Lopez-Giraldez, I. Hernan, M. Carballo, and M. C. Martinez Differential expression of genes encoding protein kinase CK2 subunits in the plant cell cycle J. Exp. Bot., December 1, 2005; 56(422): 3183 - 3192. [Abstract] [Full Text] [PDF] |
||||
![]() |
Y. A. Abramov, G. L. Kogan, E. V. Tolchkov, V. I. Rasheva, S. A. Lavrov, S. Bonaccorsi, I. A. Kramerova, and V. A. Gvozdev Eu-heterochromatic Rearrangements Induce Replication of Heterochromatic Sequences Normally Underreplicated in Polytene Chromosomes of Drosophila melanogaster Genetics, December 1, 2005; 171(4): 1673 - 1681. [Abstract] [Full Text] [PDF] |
||||
![]() |
S. Cohen, N. Agmon, K. Yacobi, M. Mislovati, and D. Segal Evidence for rolling circle replication of tandem genes in Drosophila Nucleic Acids Res., August 9, 2005; 33(14): 4519 - 4526. [Abstract] [Full Text] [PDF] |
||||
![]() |
M. C. SIOMI, H. TSUKUMO, A. ISHIZUKA, T. NAGAMI, and H. SIOMI A potential link between transgene silencing and poly(A) tails RNA, July 1, 2005; 11(7): 1004 - 1011. [Abstract] [Full Text] [PDF] |
||||
![]() |
L. A. Usakin, G. L. Kogan, A. I. Kalmykova, and V. A. Gvozdev An Alien Promoter Capture as a Primary Step of the Evolution of Testes-Expressed Repeats in the Drosophila melanogaster Genome Mol. Biol. Evol., July 1, 2005; 22(7): 1555 - 1560. [Abstract] [Full Text] [PDF] |
||||
![]() |
R. B. Beckstead, S. S. Ner, K. G. Hales, T. A. Grigliatti, B. S. Baker, and H. J. Bellen Bonus, a Drosophila TIF1 Homolog, Is a Chromatin-Associated Protein That Acts as a Modifier of Position-Effect Variegation Genetics, February 1, 2005; 169(2): 783 - 794. [Abstract] [Full Text] [PDF] |
||||
![]() |
A. A. Aravin, M. S. Klenov, V. V. Vagin, F. Bantignies, G. Cavalli, and V. A. Gvozdev Dissection of a Natural RNA Silencing Process in the Drosophila melanogaster Germ Line Mol. Cell. Biol., August 1, 2004; 24(15): 6742 - 6750. [Abstract] [Full Text] [PDF] |
||||
![]() |
K. Hirai, S. Toyohira, T. Ohsako, and M.-T. Yamamoto Isolation and Cytogenetic Characterization of Male Meiotic Mutants of Drosophila melanogaster Genetics, April 1, 2004; 166(4): 1795 - 1806. [Abstract] [Full Text] [PDF] |
||||
![]() |
S. Cohen, K. Yacobi, and D. Segal Extrachromosomal Circular DNA of Tandemly Repeated Genomic Sequences in Drosophila Genome Res., June 1, 2003; 13(6): 1133 - 1145. [Abstract] [Full Text] [PDF] |
||||
![]() |
S. S. Ner, M. J. Harrington, and T. A. Grigliatti A Role for the Drosophila SU(VAR)3-9 Protein in Chromatin Organization at the Histone Gene Cluster and in Suppression of Position-Effect Variegation Genetics, December 1, 2002; 162(4): 1763 - 1774. [Abstract] [Full Text] [PDF] |
||||
![]() |
M. Belloni, P. Tritto, M. P. Bozzetti, G. Palumbo, and L. G. Robbins Does Stellate Cause Meiotic Drive in Drosophila melanogaster? Genetics, August 1, 2002; 161(4): 1551 - 1559. [Abstract] [Full Text] [PDF] |
||||
![]() |
D. E. Koryakov, I. F. Zhimulev, and P. Dimitri Cytogenetic Analysis of the Third Chromosome Heterochromatin of Drosophila melanogaster Genetics, February 1, 2002; 160(2): 509 - 517. [Abstract] [Full Text] [PDF] |
||||
![]() |
A. K. Kutach and J. T. Kadonaga The Downstream Promoter Element DPE Appears To Be as Widely Used as the TATA Box in Drosophila Core Promoters Mol. Cell. Biol., July 1, 2000; 20(13): 4754 - 4764. [Abstract] [Full Text] |
||||
![]() |
A. Schmidt, G. Palumbo, M. P. Bozzetti, P. Tritto, S. Pimpinelli, and U. Schäfer Genetic and Molecular Characterization of sting, a Gene Involved in Crystal Formation and Meiotic Drive in the Male Germ Line of Drosophila melanogaster Genetics, February 1, 1999; 151(2): 749 - 760. [Abstract] [Full Text] |
||||
![]() |
P. Zhang and R. L. Stankiewicz Y-Linked Male Sterile Mutations Induced by P Element in Drosophila melanogaster Genetics, October 1, 1998; 150(2): 735 - 744. [Abstract] [Full Text] |
||||
![]() |
Su(Ste) Diverged Tandem Repeats in a Y Chromosome of Drosophila melanogaster Are Transcribed and Variously Processed Genetics, January 1, 1998; 148(1): 243 - 250. |
||||
![]() |
A. I. Kalmykova, Y. Y. Shevelyov, A. A. Dobritsa, and V. A. Gvozdev Acquisition and amplification of a testis-expressed autosomal gene, SSL, by the Drosophila Y chromosome PNAS, June 10, 1997; 94(12): 6297 - 6302. [Abstract] [Full Text] [PDF] |
||||
![]() |
T W Burke and J T Kadonaga Drosophila TFIID binds to a conserved downstream basal promoter element that is present in many TATA-box-deficient promoters. Genes & Dev., March 15, 1996; 10(6): 711 - 724. [Abstract] [PDF] |
||||
![]() |
A. P. Bidwai, J. C. Reed, and C. V. C. Glover Cloning and Disruption of CKB1, the Gene Encoding the 38-kDa [IMAGE] Subunit of Saccharomyces cerevisiae Casein Kinase II (CKII) J. Biol. Chem., May 5, 1995; 270(18): 10395 - 10404. [Abstract] [Full Text] [PDF] |
||||
![]() |
R. Battistutta, S. Sarno, E. De Moliner, E. Papinutto, G. Zanotti, and L. A. Pinna The Replacement of ATP by the Competitive Inhibitor Emodin Induces Conformational Modifications in the Catalytic Site of Protein Kinase CK2 J. Biol. Chem., September 15, 2000; 275(38): 29618 - 29622. [Abstract] [Full Text] [PDF] |
||||










