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D C Rio

Publications and source records attributed to D C Rio.

At least 55 records · Page 3Linked to original sources

Regulation of Drosophila P element transposition.

Drosophila P transposable elements are the best-studied family of eukaryotic non-retroviral transposons. P element transposition is regulated in several different ways and has thus provided a unique system with which to study the control of DNA rearrangements and gene expression in metazoans. Recent genetic and biochemical experiments have begun to shed light on the mechanism of P element transposition and the mechanisms controlling the temporal and spatial patterns of transposition.

Animals↗

Cytotype control of Drosophila P element transposition: the 66 kd protein is a repressor of transposase activity.

Drosophila P transposable elements encode two proteins, an 87 kd transposase protein and a 66 kd protein that has been hypothesized to repress transposition. We have made germline transformants carrying modified P element derivatives that encode only the 66 kd protein and shown that these elements repress transposase activity in both the germline and the soma. The position of these elements in the genome quantitatively affected their ability to negatively regulate transposase and to express the 66 kd protein. Single 66 kd element-containing strains did not exhibit the maternal inheritance of P cytotype characteristic of P strains. However, we demonstrated that a true P strain produced higher levels of the 66 kd protein during oogenesis than single 66 kd P elements. Thus, the expression of the 66 kd repressor during oogenesis may be a major determinant of the maternal effect of P cytotype.

Animals↗

Regulated splicing of the Drosophila P transposable element third intron in vitro: somatic repression.

In eukaryotic cells alternative splicing of messenger RNA precursors (pre-mRNA's) is a means of regulating gene expression. Although a number of the components that participate in regulating some alternative splicing events have been identified by molecular genetic procedures, the elucidation of the biochemical mechanisms governing alternative splicing requires in vitro reaction systems. The tissue specificity of P element transposition in Drosophila depends on the germline restriction of pre-mRNA splicing of the P element third intron (IVS3). Drosophila P element IVS3 pre-mRNA substrates were spliced accurately in vitro in heterologous human cell extracts but not in Drosophila somatic cell splicing extracts. Components in Drosophila somatic cell extracts that specifically inhibited IVS3 splicing in vitro were detected by a complementation assay. Biochemical assays for Drosophila RNA binding proteins were then used to detect a 97-kilodalton protein that interacts specifically with 5' exon sequences previously implicated in the control of IVS3 splicing in vivo. Inhibition of IVS3 splicing in vitro could be correlated with binding of the 97-kD protein to 5' exon sequences, suggesting that one aspect of IVS3 tissue-specific splicing involves somatic repression by specific RNA-protein interactions.

Animals↗

Drosophila P element transposase recognizes internal P element DNA sequences.

Drosophila P transposable elements encode an 87 kd trans-acting protein, transposase, that is required to catalyze P element transposition and excision. We show here that purified transposase is a site-specific DNA binding protein. P element transposase does not interact with the terminal 31 bp inverted repeats but instead interacts specifically with an internal 10 bp consensus sequence present at both the 5' and 3' ends of P element DNA. These binding sites lie within sequences known to be important for transposition in vivo. Transposase also displays an unusually high nonspecific affinity for DNA. The transposase binding site at the 5' and overlaps sequences we show to be essential for transcription from the P element promoter in vitro, which raises the possibility that either transposase or the related 66 kd P element protein may affect P element transcription. From these and other observations, we suggest that the P element transposition reaction probably requires the binding of additional Drosophila protein factors to the terminal DNA sequences.

Animals↗

cis-acting DNA sequence requirements for P-element transposition.

The P transposable element of Drosophila melanogaster has a complex array of cis-acting DNA sequences necessary for efficient transposition. At the 3' end these sequences extend over more than 150 bp and include 11- and 31-bp sequences found repeated in inverted orientation at the 5' end. The P element's 5' end, however, cannot function as its 3' end. When two 3' P-element ends are present, the more proximal end is used preferentially. We found also that the duplication of the target site does not appear to play a role in forward transposition.

Animals↗

Evidence for Drosophila P element transposase activity in mammalian cells and yeast.

Drosophila P element transposase expression is limited to the germline by tissue-specific splicing of one of its three introns. Removal of this intron by mutagenesis in vitro has allowed both P element excision and transposition to be detected in Drosophila somatic tissues. In order to determine if P element transposase can function in other organisms, we have expressed modified P elements either lacking one intron or lacking all three introns in mammalian cells and yeast, respectively. Using an assay for P element excision, we have detected apparent excision events in cultured monkey cells. Furthermore, expression of the complete P element cDNA is lethal to Saccharomyces cerevisiae cells carrying a mutation in the RAD52 gene, indicating that double-stranded DNA breaks are generated, presumably by transposase action.

Animals↗

Identification and purification of a Drosophila protein that binds to the terminal 31-base-pair inverted repeats of the P transposable element.

We have used DNase I footprinting and partially fractionated nuclear extracts from Drosophila Kc tissue culture cells to identify DNA-binding proteins that interact with the terminal repeats of P transposable elements. We have identified a binding activity that interacts specifically with a region of the 31-base-pair terminal inverted repeats that is directly adjacent to the duplication of target site DNA. Binding occurs to both the 5' and 3' inverted terminal repeats irrespective of the sequence of the duplicated target DNA. UV photochemical crosslinking studies suggest that the binding activity resides in a polypeptide of 65-70 kDa. Biochemical fractionation and oligonucleotide affinity chromatography have been used to purify the binding activity to near homogeneity and identify a polypeptide of 66 kDa in the highly purified preparations. The site to which binding occurs is included in a region absolutely required for P element transposition, suggesting that this binding protein may be a cellular factor involved in P element transposition.

Animals↗

Accurate and efficient pre-mRNA splicing in Drosophila cell-free extracts.

Synthetic mRNA precursors from the Drosophila fushi tarazu (ftz) gene were shown to be accurately and efficiently spliced in Drosophila nuclear extracts derived from Kc tissue culture cells or 0- to 12-hr embryos. Splicing the ftz pre-mRNA requires ATP and low levels of Mg2+. The reaction proceeds with a lag of 20-30 min prior to appearance of spliced mRNA and appears to proceed in two steps. The first step is cleavage at the 5' splice site to generate a 5' exon (E1) fragment and an intron-3' exon (IVS-E2) species. The second step involves cleavage at the 3' splice site, ligation of the two exons (E1-E2), and intron (IVS) release. The excised intron (IVS) and intron-3' exon (IVS-E2) exhibit anomalous electrophoretic mobility, suggesting that they contain branched structures. Nuclease analysis using two-dimensional thin-layer chromatography indicates that both the IVS and IVS-E2 species possess branched trinucleotides in which a guanosine residue at the 5' end of the intron is linked in a 2'-5' phosphodiester bond to the 2' hydroxyl group of an adenosine residue in the intron. The site of branchpoint formation was localized by debranching the Drosophila lariat with mammalian (HeLa) cell debranching enzyme and by P1 and T2 nuclease analysis. These findings indicate that nuclear extracts derived from Drosophila cultured cells or embryos can accurately splice mRNA precursors and that the reaction mechanism is the same as has been observed in yeast and mammalian cells. This system provides an initial step toward the biochemical analysis of developmentally regulated pre-mRNA splicing events in Drosophila.

Animals↗

Tissue specificity of Drosophila P element transposition is regulated at the level of mRNA splicing.

We show that the germline specificity of P element transposition is controlled at the level of mRNA splicing and not at the level of transcription. In the major P element RNA transcript, isolated from somatic cells, the first three open reading frames are joined by the removal of two introns. Using in vitro mutagenesis and genetic analysis we demonstrate the existence of a third intron whose removal is required for transposase production. We propose that this intron is only removed in the germline and that its removal is the sole basis for the germline restriction of P element transposition.

Animals↗

Identification and immunochemical analysis of biologically active Drosophila P element transposase.

We have identified proteins encoded by P transposable elements expressed in transformed Drosophila tissue culture cells. Two proteins have been identified by immunochemical techniques. One, an 87,000 dalton polypeptide, is encoded by a P element mRNA lacking the third (ORF2-ORF3) intervening sequence. The other protein, a 66,000 dalton polypeptide, is encoded by an mRNA that retains the third intron and is found in somatic tissues. Furthermore, tissue culture cell lines expressing the 87,000 dalton polypeptide are able to catalyze both the precise and imprecise excision of a nonautonomous P element. The 87,000 dalton protein is encoded by sequences from all four P element open reading frames. Taken together, these data strongly suggest that the 87,000 dalton polypeptide is the P element transposase.

Amino Acid Sequence↗

trans Activation of the simian virus 40 enhancer.

We describe experiments which demonstrated that the simian virus 40 (SV40) enhancer affects certain transcriptional units differently. We also found that a specific enhancer-transcriptional unit interaction can be regulated by trans-acting factors. Using transient assays, we examined the effects of the SV40 enhancer on herpesvirus thymidine kinase (tk) RNA levels when transcription was initiated either by the herpesvirus tk promoter or by an SV40 early promoter-tk fusion. We were unable to detect any effect of the enhancer on transcription from the tk promoter in CV-1 or HeLa cells. However, we found that the addition of T-antigen in trans allowed the enhancer to stimulate expression from the tk promoter. This induction by T-antigen did not require T-antigen-binding sites in cis and appeared to be an indirect effect. In contrast, tk expression from the SV40 early promoter fusion was greatly stimulated by the enhancer in CV-1 cells. Furthermore, in 293 cells the SV40 enhancer had only a marginal effect on the SV40 promoter-tk fusion, whereas it strongly stimulated tk expression from the tk promoter. Our results raise the possibility that the enhancer function may not show cell specificity per se; rather, the interaction between the enhancer and a specific gene may be responsible for cell specificity. We discuss these observations in terms of the SV40 early gene-to-late gene switch that occurs during SV40 lytic growth.

Animals↗

A mammalian host-vector system that regulates expression and amplification of transfected genes by temperature induction.

SV40-transformed simian cells that permit temperature-dependent regulation of vector DNA replication were isolated and characterized. These cell lines (ts COS cells) produce high levels of thermolabile large T antigen under the transcriptional control of the Rous sarcoma virus long terminal repeat. The ts COS cell lines can complement SV40 A gene mutants and support replication of SV40-origin containing vectors at 33 degrees C but not at 40 degrees C. It should now be possible to regulate the copy number of transfected plasmid DNA's and also maintain selectable vector sequences either as integrated DNA or as autonomously replicating episomes by modulating T antigen activity in ts COS cells.

Animals↗

Transformation of cultured Drosophila melanogaster cells with a dominant selectable marker.

We have developed a method for the stable and efficient introduction of foreign DNA into Drosophila melanogaster tissue culture cells. A plasmid vector was constructed that carries the bacterial neomycin resistance gene under the transcriptional control of the copia transposable element long terminal repeat promoter. After calcium phosphate-DNA transfection, this vector rendered D. melanogaster cells resistant to the aminoglycoside G-418, a derivative of gentamicin. The vector DNA appeared to be integrated in long tandem arrays of 10 to 20 copies per cell and was stable for many generations in the absence of selection. To test the usefulness of this system for introducing nonselected DNA into D. melanogaster cells, a gene fusion between the P transposable element and the hsp70 promoter was inserted into the copia-neomycin resistance plasmid. After transfection and establishment of a G-418-resistant cell line, the hsp-P fusion gene was found to be efficiently transcribed after heat shock.

Animals↗

Multiple control elements involved in the initiation of SV40 late transcription.

Mutants with deletions in the control region of simian virus 40 (SV40) were tested for their ability to direct late transcription in a nuclear extract derived from HeLa cells. Primer extension analysis revealed that late SV40 transcription initiates predominantly at two sites in vitro, one of which corresponds to the major in vivo start site at nucleotide 325, while the other site is located at nucleotide 170. A series of 5',3', and internal deletions of the putative promoter region were used to define two distinct control elements that appear to function independently of each other and that are located upstream from each of the in vitro initiation sites. In addition, transcription from the initiation site at 325 is also influenced by GC-rich sequences (CCGCCC) found within a regulatory region that consists of two 21 bp perfect repeats and a third degenerate repeat located 250 bp upstream from the major late initiation site. These six upstream GC blocks, which lie directly upstream from the initiation site at 170, also affect transcription from this start site. Although these 21 bp repeats are known to be an important part of the SV40 early promoter, our findings suggest that they are also involved in modulating the levels of late transcription in vitro.

Base Sequence↗

SV40 T antigen binding site mutations that affect autoregulation.

Deletion and substitution mutations in the control region of simian virus 40 (SV40) were used to study regulation of early transcription by T antigen. A mutant, pIN4, containing substitutions within T antigen binding site II, is transcribed in a cell-free extract at wild-type efficiency but is unable to be repressed in vitro by purified T antigen under conditions that fully repress wild-type transcription. These results suggest a functional role for T antigen binding site II in the repression of early SV40 transcription. To investigate autoregulation in vivo, transcription from the SV40 early promoter was quantitated in COS7 monkey cells transfected with plasmid vectors carrying the mouse dihydrofolate reductase gene (SV-dhfr vectors). Mutant SV-dhfr vectors lacking T antigen site I or site II sequences overproduce dhfr RNA from the SV40 early promoter three to four fold, whereas deletion of both sites I and II or the presence of a temperature-sensitive T antigen (tsA209) results in an eight to ten fold increase in dhfr RNA. Our results indicate that binding of T antigen to both sites I and II plays a role in autoregulation.

Animals↗