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Splicing of Xenopus laevis ribosomal protein RNAs is inhibited in vivo by antisera to ribonucleoproteins containing U1 small nuclear RNA.

The activity of antisera against ribonucleoproteins containing U1 small nuclear RNA (Sm and RNP) has been analysed on pol II transcripts in an in vivo system. Xenopus laevis ribosomal protein gene transcripts are accumulated in the form of precursor RNA when either of the two kinds of antisera are injected into the germinal vesicles of X. laevis oocytes before the injection of purified L1 and L14 ribosomal protein genes. No effect on the accumulation of mature histone mRNA is detected when X. laevis histone genes are injected together with the RNP antiserum. These results strongly suggest that U1-RNP complexes play an essential role in intron removal in vivo.

Animals↗

Sequential synthesis of small capped RNA transcripts in vitro by vesicular stomatitis virus.

Using purified viral or intracellular transcriptive complexes (RNP cores) of vesicular stomatitis virus (VSV), we have identified several small RNA species, ranging in size from 12 to 47 nucleotides in length that are synthesized in vitro by the genomic RNA. One group of small RNA transcripts is composed of three species that are capped at their 5' termini. Two of the capped species are from the start of the N gene and one is from the start of the NS gene. Unlike the previously described 5' triphosphated small RNAs, the templates encoding these small capped RNAs had uv target sizes greater than their respective lengths. In addition, these RNAs appeared sequentially during synchronized in vitro transcription reactions. Thus, these results provide evidence that sequences representing the 5'-capped termini of N and NS mRNAs are synthesized concomitantly with their respective mRNAs rather than simultaneously at the onset of transcription as proposed for the multiple entry, start-stop model (D. Testa, P. K. Chanda, and A. K. Banerjee, 1980, Cell 21, pp. 267-275). Together with the inability of the internally initiated 5'-triphosphated RNAs to be chased into mRNA (R. A. Lazzarini, I. Chien, F. Yang, and J. D. Keene, 1982, J. Gen. Virol. 58, 429-441), these results support a single entry model of VSV mRNA transcription.

Genes, Viral↗

Descriptive analysis of Ebola virus proteins.

The virion proteins of two strains of Ebola virus were compared by SDS-polyacrylamide gel electrophoresis (PAGE) and radioimmunoprecipitation (RIP). Seven virion proteins were described; an L (180K), GP (125K), NP (104K), VP40 (40K), VP35 (35K), VP30 (30K), and VP24 (24K). The RNP complex of the virus contained the L, the NP, and VP30, with VP35 in loose association with them. The GP was the major spike protein, with VP40 and VP24 making up the remaining protein content of the multilayered envelope.

Animals↗

Association of a 5S gene transcription factor with 5S RNA and altered levels of the factor during cell differentiation.

We have previously purified from Xenopus ovaries a protein factor (TF IIIA) which is necessary for the accurate in vitro transcription of 5S RNA genes. We now report that this factor (a 5S gene transcription effector) is identical by immunological, chemical and functional criteria to the protein associated with 5S RNA (the gene product) as a 7S ribonucleoprotein (RNP) complex in immature oocytes. After oocyte maturation, TF IIIA is no longer detectable functionally or immunologically in unfertilized eggs, which do not synthesize 5S RNA in vitro. Moreover, we cannot detect TF IIIA immunologically in extracts fron Xenopus somatic cells which, nevertheless, efficiently transcribe 5S genes.

Animals↗

Studies on the temperature sensitivity of influenza A virus reassortants nonpathogenic for chicken.

Influenza A virus reassortants which are nonpathogenic for chickens are like mammalian influenza A viruses in that they are temperature sensitive for growth at 41 degrees C. We have investigated the mechanism of this temperature sensitivity using reassortants between the two highly pathogenic strains A/FPV/Rostock/34 (FPV, H7N1) and A/turkey/England/63 (TE, H7N3). These reassortants show a strict correlation between the pathogenicity for chickens and the constellation of the genes coding for the ribonucleoprotein complex, RNP. Evidence is presented which shows that all viral components are synthesized in sufficient amounts and that the block in the viral replication cycle at the nonpermissive temperature is a late one affecting virus maturation. It is suggested that the RNP, although still enzymatically functional, may lose its ability to interact normally with viral surface components, thus interfering with the process of virus maturation. Some of the nonpathogenic reassortants which possessed the neuraminidase of TE showed an interesting temperature-dependent phenomenon: the haemagglutinin synthesized at the elevated temperature could only agglutinate erythrocytes at 20 degrees C, when the neuraminidase was inhibited or the infected cells vigorously disrupted by ultrasonication. This phenomenon is possibly not directly related to the temperature-sensitive block.

Animals↗

Influenza A virus NP protein expressed in insect cells by a recombinant baculovirus is associated with a protein kinase activity and possesses single-stranded RNA binding activity.

Influenza A virus NP protein, the phosphoprotein associated with viral RNA in ribonucleoprotein (RNP) complexes, has been expressed at high levels (approximately 100 mg/liter cells) in insect (Sf9) cells by a baculovirus recombinant, and was localized almost entirely in the nuclei of these cells. NP was purified by immuno-affinity chromatography, and purified NP was shown to autophosphorylate and to phosphorylate casein in a cAMP-independent reaction. Furthermore, purified NP was able to bind to ssRNA as demonstrated by a mobility shift of ssRNA in non-denaturing gels. The binding of NP to ssRNA caused a diminution of its kinase activity in proportion to binding.

Animals↗

Electroporation of influenza virus ribonucleoprotein complexes for rescue of the nucleoprotein and matrix genes.

Reverse genetics has been successfully used for the generation of recombinant influenza virus with altered biological properties. The standard method is based on DEAE-dextran transfection of in vitro reconstituted influenza virus ribonucleoprotein complex (RNP) into helper virus infected cells with subsequent selection of the recombinant viruses. Here we report the utilization of electroporation for reverse genetics of influenza virus as an improvement over the standard method. In a neuraminidase (NA) gene rescue system, we were able to demonstrate that electroporation of in vitro reconstituted NA RNP of influenza A/WSN/33 (H1N1) virus into WSN/HK virus infected cells allows the rescue of the transfectant WSN virus. The titer of transfectant virus obtained using electroporation is comparable to that generated using the DEAE-dextran transfection method. More significantly, the ratio of transfectant virus to helper virus is as much as 20-fold greater than that achieved using the DEAE-dextran system. We have also used electroporation to generate recombinant influenza virus carrying cDNA-derived matrix (M) gene or nucleoprotein (NP) gene of the WSN virus by using the temperature-sensitive (ts) mutants ts51 and ts56 as helper viruses. In the case of electroporation of M gene RNP, 88% of the viruses isolated after selection at 39 degrees C were transfectants. In contrast, the majority of viruses obtained using the DEAE-dextran transfection method were revertants of the helper virus. The NP-gene transfectant was only generated by the electroporation method. Our results suggest that electroporation of influenza virus RNP may be a useful method for generation of recombinant influenza viruses, especially in a system in which a ts mutant is used as helper virus.

Animals↗

Mechanisms of tRNA import into yeast mitochondria: an overview.

Mitochondrial import of tRNA is now considered as a quasi-universal phenomenon. In the yeast Saccharomyces cerevisiae, one of the three lysine isoacceptors, the tRNA(Lys)1 with the anticodon CUU (tRNA-K1), is encoded by the nuclear genome and distributed between the cytoplasmic (> 95%) and mitochondrial (< 5%) compartments. In vivo and in vitro import assays were developed to study the mechanisms of tRNA-K1 mitochondrial import. Transmembrane translocation of the tRNA requires the intactness of at least two of the components of the mitochondrial import machinery of pre-proteins, MOM19 and MIM44, as well as energy of ATP hydrolysis and an electrochemical potential across the inner membrane. The import of tRNA-K1 involves formation of an RNP complex on the mitochondrial outer membrane. tRNA-K1 import is also dependent upon cytosolic protein factors, one of which was identified as the precursor of the mitochondrial lysyl-tRNA synthetase (MSK). Although essential for tRNA-K1 import in vitro and in vivo, pre-MSK is however not sufficient to direct the import in vitro, which suggests the need of additional cytosolic factor(s). The tRNA can be imported in its mature form and nucleoside modification is not essential. Aminoacylation of the imported tRNA by the cytoplasmic lysyl-tRNA synthetase is a prerequisite for import. Possible mechanisms of intracellular partitioning and mitochondrial membrane translocation of tRNA-K1 are discussed.

Amino Acyl-tRNA Synthetases↗

Genes for murine Y1 and Y3 Ro RNAs have class 3 RNA polymerase III promoter structures and are unlinked on mouse chromosome 6.

Murine YRNAs, which are components of the conserved Ro ribonucleoprotein (RNP) complex, have been identified by enzymatic RNA sequencing. Mouse Y1 (mY1) and Y3 (mY3; originally named mY2) RNAs share 97 and 95% identity to the human Y1 and Y3 RNAs, respectively. TATA-like sequences, Proximal Sequence Elements, and octamer sequences, which are upstream promoter element motifs indicative of Class 3 RNA Polymerase III (RNAPIII) transcribed genes, are found upstream of both the putative mY1 and mY3 coding regions. Further, these elements are strikingly conserved both in sequence and position relative to known Class 3 genes and to human YRNA genes. Inhibition of transcription in vitro by 200 micrograms/ml but not 1 microgram/ml of alpha-amanitin indicates transcription of the mouse YRNA genes by RNAPIII. Southern blot of C57BL/6J and Mus spretus murine genomic DNA with mY1 and mY3 gene-specific probes suggests that these genes are single copy in the mouse genome. Finally, gene mapping with a (C57BL/6J x SPRET/Ei)F1 x SPRET/Ei mouse interspecific backcross DNA panel localizes the mY1 gene to the distal end of mouse chromosome 6, close to the motheaten (me) autoimmunity locus. The mY3 gene maps to the proximal end of mouse chromosome 6 very close to the T cell receptor beta locus, in a region homologous to human chromosome 7 where the human YRNA genes have been mapped.

Animals↗

Mechanism of influenza virus transcription inhibition by matrix (M1) protein.

The mechanism by which influenza virus matrix (M1) protein inhibits viral RNA (vRNA) transcription was investigated. Evidence has been generated that M1 protein inhibits the steps of vRNA transcription initiation and reinitiation more effectively than that of RNA chain elongation. The vRNA-associated nucleocapsid protein (NP) appears to be critical for this inhibition, implying that M1 protein binds to the ribonucleoprotein complex (RNP) through NP.

Capsid↗

The nucleolar snRNAs: catching up with the spliceosomal snRNAs.

Despite their early discovery, research into the small RNAs associated with the eukaryotic nucleolus (snoRNAs) has lagged behind that of their cousins, the small nuclear RNAs which are known to function in mRNA splicing (spliceosomal snRNAs). Recent progress has now shown that the snoRNAs also occupy a vital niche in the RNA world, participating in the processing of ribosomal RNA. Like the spliceosomal snRNAs, the snoRNAs exist as ribonucleoprotein (RNP) particles which appear to assemble into a large multi-RNA RNP complex for pre-rRNA maturation.

Animals↗

Nuclear export of RNA.

A defining feature of eukaryotic cells is the presence of a nuclear envelope separating transcription and DNA replication in the nucleus from the site of protein synthesis in the cytoplasm. The regulation of gene expression relies in part on the controlled exchange of molecules between these two compartments. Factors implicated in transcription regulation and DNA replication have to be imported into the nucleus, whereas RNAs produced in the nucleus have to be exported, either to fulfill their function in protein synthesis or to mature into functional particles. This review summarizes studies performed over the last 15 years that led to the identification of cellular factors mediating nuclear export of the different classes of RNAs, including tRNAs, UsnRNAs, micro-RNAs, ribosomal RNAs and mRNAs. We also discuss recent evidence indicating that the nuclear transport step is intimately linked to RNA synthesis, processing and mRNP assembly, thus ensuring that only properly matured ribonucleoprotein (RNP) complexes reach the cytoplasm.

Active Transport, Cell Nucleus↗

Epitope spreading within lupus-associated ribonucleoprotein antigens.

Autoantibodies reactive with several cellular antigens are present in the sera of patients with systemic lupus erythematosus. Polypeptides within the Ro-RNP complex and the snRNP complex are often targeted by these autoantibodies. One of the mechanisms responsible for their evolution is that of epitope spreading. Experimental animal model systems provide evidence for this. This review discusses the animal model systems of epitope spreading within these ribonucleoprotein antigens, the mechanisms of epitope spreading, and its relevance for disease pathogenesis.

Animals↗

Assembly of the archaeal box C/D sRNP can occur via alternative pathways and requires temperature-facilitated sRNA remodeling.

Archaeal dual-guide box C/D small nucleolar RNA-like RNAs (sRNAs) bind three core proteins in sequential order at both terminal box C/D and internal C'/D' motifs to assemble two ribonuclear protein (RNP) complexes active in guiding nucleotide methylation. Experiments have investigated the process of box C/D sRNP assembly and the resultant changes in sRNA structure or "remodeling" as a consequence of sRNP core protein binding. Hierarchical assembly of the Methanocaldococcus jannaschii sR8 box C/D sRNP is a temperature-dependent process with binding of L7 and Nop56/58 core proteins to the sRNA requiring elevated temperature to facilitate necessary RNA structural dynamics. Circular dichroism (CD) spectroscopy and RNA thermal denaturation revealed an increased order and stability of sRNA folded structure as a result of L7 binding. Subsequent binding of the Nop56/58 and fibrillarin core proteins to the L7-sRNA complex further remodeled sRNA structure. Assessment of sR8 guide region accessibility using complementary RNA oligonucleotide probes revealed significant changes in guide region structure during sRNP assembly. A second dual-guide box C/D sRNA from M. jannaschii, sR6, also exhibited RNA remodeling during temperature-dependent sRNP assembly, although core protein binding was affected by sR6's distinct folded structure. Interestingly, the sR6 sRNP followed an alternative assembly pathway, with both guide regions being continuously exposed during sRNP assembly. Further experiments using sR8 mutants possessing alternative guide regions demonstrated that sRNA folded structure induced by specific guide sequences impacted the sRNP assembly pathway. Nevertheless, assembled sRNPs were active for sRNA-guided methylation independent of the pathway followed. Thus, RNA remodeling appears to be a common and requisite feature of archaeal dual-guide box C/D sRNP assembly and formation of the mature sRNP can follow different assembly pathways in generating catalytically active complexes.

Amino Acid Sequence↗

An efficient helper-virus-free method for rescue of recombinant paramyxoviruses and rhadoviruses from a cell line suitable for vaccine development.

Recovery of recombinant, negative-strand, nonsegmented RNA viruses from a genomic cDNA clone requires a rescue system that promotes de novo assembly of a functional ribonucleoprotein (RNP) complex in the cell cytoplasm. This is accomplished typically by cotransfecting permissive cells with multiple plasmids that encode the positive-sense genomic RNA, the nucleocapsid protein (N or NP), and the two subunits of the viral RNA-dependent RNA polymerase (L and P). The transfected plasmids are transcribed in the cell cytoplasm by phage T7 RNA polymerase (T7 RNAP), which usually is supplied by infection with a recombinant vaccinia virus or through use of a stable cell line that expresses the polymerase. Although both methods of providing T7 RNAP are effective neither is ideal for viral vaccine development for a number of reasons. Therefore, it was necessary to modify existing technology to make it possible to routinely rescue a variety of recombinant viruses when T7 RNAP was provided by a cotransfected expression plasmid. Development of a broadly applicable procedure required optimization of the helper-virus-free methodology, which resulted in several modifications that improved rescue efficiency such as inclusion of plasmids encoding viral glycoproteins and matrix protein, heat shock treatment, and use of electroporation. The combined effect of these enhancements produced several important benefits including: (1) a helper-virus-free methodology capable of rescuing a diverse variety of paramyxoviruses and recombinant vesicular stomatitis virus (rVSV); (2) methodology that functioned effectively when using Vero cells, a suitable substrate for vaccine production; and (3) a method that enabled rescue of highly attenuated recombinant viruses, which had proven refractory to rescue using published procedures.

Animals↗

Genome-wide analysis reveals an unexpected function for the Drosophila splicing factor U2AF50 in the nuclear export of intronless mRNAs.

The protein factor U2AF is an essential component required for pre-mRNA splicing. Mutations identified in the S. pombe large U2AF subunit were used to engineer transgenic Drosophila carrying temperature-sensitive U2AF large subunit alleles. Mutant recombinant U2AF heterodimers showed reduced polypyrimidine tract RNA binding at elevated temperatures. Genome-wide RNA profiling comparing wild-type and mutant strains identified more than 400 genes differentially expressed in the dU2AF50 mutant flies grown at the restrictive temperature. Surprisingly, almost 40% of the downregulated genes lack introns. Microarray analyses revealed that nuclear export of a large number of intronless mRNAs is impaired in Drosophila-cultured cells RNAi knocked down for dU2AF50. Immunopurification of nuclear RNP complexes showed that dU2AF50 associates with intronless mRNAs. These results reveal an unexpected role for the splicing factor dU2AF50 in the nuclear export of intronless mRNAs.

Active Transport, Cell Nucleus↗

Regulated compartmentalization of the putative DEAD-box helicase MDDX28 within the mitochondria in COS-1 cells.

We recently cloned a putative DEAD-box helicase MDDX28 and found that it was localized to the nuclei and mitochondria of COS-1 cells. The mitochondrial localization of MDDX28 is largely diffuse. We have, however, used immunofluorescence and immunogold cytochemistry to show that the MDDX28 protein is localized in a distinct mitochondrial subcompartment in 5-10% of COS-1 cells. This proportion increases to approximately 35% after treatment with ethidium bromide, suggesting upregulation following transcription inhibition. To our knowledge, this is the first example of protein relocation in the mitochondria caused by transcription inhibition. The mitochondrial subcompartmentation of MDDX28 was negatively affected by mutations in a RNA-binding domain and three basic domains previously shown to be important in transcription-dependent intranuclear localization. Furthermore, immunogold cytochemistry and fractionation of rat liver indicated that the protein is a part of an RNA-protein (RNP) complex interacting peripherally with the mitochondrial inner membrane. Our results reveal new principles for regulation of protein localization in the mitochondria and suggest parallels between the function of the MDDX28 protein in the nucleus and mitochondria.

Animals↗

DNA target site requirements for homing in vivo of a bacterial group II intron encoding a protein lacking the DNA endonuclease domain.

Group II intron-encoded proteins (IEPs), which have maturase and reverse transcriptase activities, form a ribonucleoprotein (RNP) complex with the intron RNA. Some IEPs also have a C-terminal DNA-binding region and conserved DNA endonuclease domain involved in the recognition and cleavage of specific DNA target sites used for intron homing. RmInt1 is a mobile group II intron of Sinorhizobium meliloti, the IEP of which lacks the endonuclease domain, as do over half of their bacterial counterparts. Here, we analyzed the DNA target sequence requirements for homing in vivo of intron RmInt1 and compared these requirements to those established for the Lactococcus lactis Ll.LtrB intron, a representative of mobile subgroup IIA introns encoding proteins with functional C-terminal DNA endonuclease domains. As for Ll.LtrB, RmInt1 homing requires modifiable base-pairing interactions between the intron RNA and the DNA target, involving 13 nucleotides. However, instead of the delta-delta' interaction, typical of subgroup IIA introns, we demonstrate that RmInt1 recognizes the first nucleotide within the 3' exon of the target site by a new EBS3/IBS3 pairing predicted for subgroup IIB self-splicing introns. Unlike Ll.LtrB, there are less stringent requirements for RmInt1 recognition of distal 5' and 3' exon regions, where only single nucleotide positions are fixed constraints for intron homing. Our results predict differences in the DNA target-site requirements among group II introns, which may have mechanistic and evolutionary implications.

Bacterial Proteins↗