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Identification and characterization of FTSJ2, a novel human nucleolar protein homologous to bacterial ribosomal RNA methyltransferase.

Cellular RNAs in eukaryotes undergo extensive posttranscriptional modifications, but as yet only a few RNA-modifying enzymes have been identified and characterized. Here we report on the cloning of FTSJ2, a novel human gene encoding a putative RNA methyltransferase. FTSJ2 shares significant sequence homology with FtsJ/RrmJ, a recently identified Escherichia coli 23S rRNA uridine-2'-O-methyltransferase. FTSJ2 belongs to a new family of evolutionarily conserved S-adenosylmethionine-binding proteins. The gene FTSJ2 is located on chromosome 7p22 between MAD1L1 and NUDT1. It is 8 kb in length, spanning three exons. Northern blot analysis revealed that the FTSJ2 transcripts are abundant in skeletal muscle, placenta, and heart, as well as in cancer cells. Immunofluorescence staining demonstrated that FTSJ2 protein localizes to the nucleolus. Our results suggest that FTSJ2 is likely a nucleolar RNA methyltransferase involved in eukaryotic RNA processing and modification.

Amino Acid Sequence↗

Early diagnosis of SARS coronavirus infection by real time RT-PCR.

BACKGROUND: A novel coronavirus was recently identified as the aetiological agent of Severe Acute Respiratory Syndrome (SARS). Molecular assays currently available for detection of SARS-coronavirus (SARS-CoV) have low sensitivity during the early stage of the illness. OBJECTIVE: To develop and evaluate a sensitive diagnostic test for SARS by optimizing the viral RNA extraction methods and by applying real-time quantitative RT-PCR technology. STUDY DESIGN: 50 nasopharyngeal aspirate (NPA) samples collected from days 1-3 of disease onset from SARS patients in whom SARS CoV infections was subsequently serologically confirmed and 30 negative control samples were studied. Samples were tested by: (1) our first generation conventional RT-PCR assay with a routine RNA extraction method (Lancet 361 (2003) 1319), (2) our first generation conventional RT-PCR assay with a modified RNA extraction method, (3) a real-time quantitative RT-PCR assay with a modified RNA extraction method. RESULTS: Of 50 NPA specimens collected during the first 3 days of illness, 11 (22%) were positive in our first generation RT-PCR assay. With a modification in the RNA extraction protocol, 22 (44%) samples were positive in the conventional RT-PCR assay. By combining the modified RNA extraction method and real-time quantitative PCR technology, 40 (80%) of these samples were positive in the real-time RT-PCR assay. No positive signal was observed in the negative controls. CONCLUSION: By optimizing RNA extraction methods and applying quantitative real time RT-PCR technologies, the sensitivity of tests for early diagnosis of SARS can be greatly enhanced.

Humans↗

Tertiary structure formation in the hairpin ribozyme monitored by fluorescence resonance energy transfer.

The complex formed by the hairpin ribozyme and its substrate consists of two independently folding domains which interact to form a catalytic structure. Fluorescence resonance energy transfer methods permit us to study reversible transitions of the complex between open and closed forms. Results indicate that docking of the domains is required for both the cleavage and ligation reactions. Docking is rate-limiting for ligation (2 min-1) but not for cleavage, where docking (0.5 min-1) precedes a rate-limiting conformational transition or slow-reaction chemistry. Strikingly, most modifications to the RNA (such as a G+1A mutation in the substrate) or reaction conditions (such as omission of divalent metal ion cofactors) which inhibit catalysis do so by preventing docking. This demonstrates directly that mutations and modifications which inhibit a step following substrate binding are not necessarily involved in catalysis. An improved kinetic description of the catalytic cycle is derived, including specific structural transitions.

Base Composition↗

Evidence of 5'-terminal modification in the kemerovo virus double-stranded RNA segments and its removal by treatment with alkaline phosphatase.

Only one strand of each double-stranded (ds) RNA segment of the Kemerovo virus genome was 5'end-labelled using gamma-32P-ATP and T 4 polynucleotide kinase after preceding dephosphorylation of 5'ends by calf intestinal alkaline phosphatase. This suggests a 5'-terminal modification of the one of complementary strands in the ds RNA segments.

Adenosine Triphosphate↗

Nucleotide analogues to investigate RNA structure and function.

RNA plays an essential cellular role in nearly every aspect of the transmission and expression of genetic information, including regulatory roles that have significance for cellular development. Access to RNA bearing synthetic modifications has allowed biological chemists to probe deep into the inner workings of cellular processes. Here, we describe recent advances in harnessing the power of nucleotide analogues to obtain mechanistic and biological insights into RNA structure, function and dynamics.

Catalysis↗

Chemical syntheses of inhibitory substrates of the RNA-RNA ligation reaction catalyzed by the hairpin ribozyme.

The chemical syntheses of RNA oligomers containing modifications on the 5'-carbon of the 5'-terminal nucleoside for crystallographic and mechanistic studies of the hairpin ribozyme are reported. Phosphoramidites 4 and 8 were prepared and used in solid phase syntheses of RNA oligomers containing the sequence 5'-N'UCCUCUCC, where N' indicates either 5'-chloro-5'-deoxyguanosine or 5'-amino-5'-deoxyguanosine, respectively. A ribozyme ligation assay with the 5'-chloro- and 5'-amino-modified RNA oligomers demonstrated their inhibition of the hairpin-catalyzed RNA-RNA ligation reaction.

Base Sequence↗

Chemical modification patterns of active and inactive as well as procapsid-bound and unbound DNA-packaging RNAof bacterial virus Phi29.

During replication, the lengthy genome of dsDNA viruses is translocated with remarkable velocity into the limited space within the preformed procapsid. We previously found that a viral-encoded RNA (pRNA) played a key role in bacterial virus phi29 DNA translocation. Design of mutant pRNA sets containing two and three inactive mutant pRNAs, respectively, led to the conclusion that the stoichiometry of pRNA in DNA packaging is the common multiple of 2 and 3. Together with studies using binomial distribution of mutant and wild-type pRNA, it has been confirmed that six pRNAs of phi29 form a hexagonal complex to drive the DNA translocating machine. These findings have brought about commonality between viral DNA packaging and other universal DNA/RNA-riding processes including DNA replication and RNA transcription. Chemical modification was used to compare the structures of active and inactive as well as free and procapsid-bound pRNA. Our results explain why certain pRNA mutants are inactive in DNA packaging while remaining competent in procapsid binding, since the mutations were located in a domain involved in DNA translocation that is dispensable for procapsid binding. A mutant pRNA that had reduced procapsid binding was revealed to have a structural alteration within the procapsid-binding region that may account for the binding deficiency. Chemical probing of procapsid-bound pRNA revealed a large area of protection, while a 3-base bulge, C(18)C(19)A(20), was accessible to chemicals. A pRNA with a deletion of this 3-base bulge was fully competent to form dimers, bind procapsids, and inhibit phi29 virion assembly in vitro; however, its activity in DNA packaging and virion assembly was completely lost. The results suggest that this bulge is not involved in procapsid binding but may interact with other DNA-packaging components. A computer model showing the location of the CCA bulge was presented.

Bacillus Phages↗

Modification of Trypanosoma brucei mitochondrial rRNA by posttranscriptional 3' polyuridine tail formation.

Trypanosoma brucei mitochondrial transcripts can be posttranscriptionally processed by uridine addition or deletion. With editing of mRNAs, uridine addition and deletion create precisely altered reading frames. The addition of nonencoded uridines to mitochondrial guide RNAs results in a less precise modification. Although uridines are specifically added to the 3' termini, their number varies, which results in heterogeneous oligo(U) tails on guide RNAs. In this paper, we show that the mitochondrial 9S and 12S rRNAs are also modified by uridine addition. These modifications appear to have aspects in common with both RNA editing and oligo(U) tail formation. Metabolic labeling studies with intact mitochondria and [alpha-32P]UTP, in the absence of transcription, demonstrated the posttranscriptional timing of the event. T1 RNase comparison analyses of cytidine 3',5'-[5'-32P]biphosphate 3'-end-labeled and [alpha-32P]UTP metabolically labeled rRNAs, along with direct RNA sequencing of the 3' termini, identified the site of uridine addition and revealed the creation of an oligo(U) tail for both rRNAs. 12S and 9S rRNAs hybrid selected from total cell RNA exhibited the same modification, demonstrating the presence of this processing in vivo. Moreover, only 3'-poly(U)-tailed 9S and 12S rRNAs were detected in total cellular and mitochondrial RNAs, which suggests that they are the most abundant and probable mature forms. The 12S and 9S rRNA oligo(U) tails differed significantly from each other, with the 12S having a heterogeneous tail of 2 to 17 uridines and the 9S having a tail of precisely 11 uridines. The mechanism of formation and the function of the rRNA poly(U) tails remain to be determined.

Animals↗

Large accumulation of mRNA and DNA point modifications in a plant senescent tissue.

Although nucleic acids are the paradigm of genetic information conservation, they are inherently unstable molecules that suffer intrinsic and environmental damage. Oxidative stress has been related to senescence and aging and, recently, it has been shown that mutations accumulate at high frequency in mitochondrial DNA with age. We investigated RNA and DNA modifications in cork, a senescent plant tissue under high endogenous oxidative stress conditions. When compared to normally growing young tissue, cork revealed an unexpected high frequency of point modifications in both cDNA (Pn = 1/1784) and nuclear DNA (Pn = 1/1520). Cork should be viewed as a mosaic of genetically heterogeneous cells. This has biological implications: it supports somatic mutation models for aging and challenges 'single cDNA clone' as descriptor for the molecular genetics of senescent tissues.

DNA, Plant↗

RNA phosphorylation: a polynucleotide kinase function in mouse L cell nuclei.

Analysis of [gamma-32P]ATP in vitro labeled nuclear RNA shows transfer of gamma-32P from ATP to form the 5'-terminal monophosphate for large RNA molecules. This finding is an actively transcribing nuclear system capable of guanylation and methylation reactions indicates that polynucleotide kinase activity in the eukaryotic nucleus may be functional in kinase reactions involving RNA. It further suggest a participation in the posttranscriptional modification reactions involved in RNA processing. All four nucleosides were found to act as acceptors at the 5' termini of RNA. It is also shown that both ATP and GTP can serve as donors in the nuclear polynucleotide kinase reaction.

Adenosine Triphosphate↗

Hyperplasia of the exocrine pancreas after small bowel resection in the rat.

The effect of a 90% small bowel resection on the exocrine pancreas was investigated over a three month period in adult Wistar rats. Control animals underwent a sham-resection consisting of a transection and reanastomosis of the small intestine. After jejunoileal resection, the wet weight of a gland increased significantly (52%) from the 15th day. The parallel increase in total protein, DNA and RNA content without any modification in the ratios of pancreatic weight, protein, and RNA to DNA suggests that there is cellular hyperplasia but not hypertrophy. Small intestinal resection decreased significantly the amount of amylase when expressed per unit pancreatic weight; it reduced slightly but not significantly that of chymotrypsin, while it did not modify the amount of lipase. However, the total amount of these enzymes in the pancreas remained unaltered when compared with controls. It is concluded that a massive resection of the small bowel induces cellular hyperplasia in the rat exocrine pancreas; this could compensate that reduced level of enzymes in acinar cells.

Adaptation, Physiological↗

Quantitation of radioactively labeled RNA by hybrid selection using biotinylated oligonucleotides.

We describe a procedure to quantify specific, radioactively labeled RNA sequences. This procedure combines hybrid selection of an RNA using biotinylated oligonucleotides with gel electrophoretic analysis of the selected RNA. We show that the hybrid selection procedure is specific and quantitative. It enriches a specific RNA sequence at least 600-fold. Specificity and sensitivity are increased to at least 10,000-fold enrichment by a combination of RNase T1 digestion of the RNA:oligonucleotide hybrid prior to selection, followed by gel electrophoretic fractionation of the selected RNA fragment. Furthermore, this modification allows one to quantify specific regions of an RNA transcript, as well as to monitor several different RNA sequences in one experiment. It is estimated that the sensitivity of this procedure is high enough to detect specific RNA sequences present at 1 part in 100,000.

Base Sequence↗

Effect of beta-decay of radionuclides incorporated into influenza virus RNA and proteins on the infectivity of the virus and antigenicity of its nucleoprotein.

The effect of beta-decay of radionuclides incorporated into influenza virus on the properties of the two closely adjacent structures--RNA and nucleoprotein (NP)--was studied. The long-term storage of 3H-uridine labelled influenza virus was shown to lead to the loss of infectivity. This effect may be explained by lethal intra-molecular modifications of viral RNA, caused by beta-decay of 3H incorporated into the molecule. There was an accompanying decrease of monoclonal antibody (MAB) binding activity, this also being a plausible result of beta-decay. The different rates of inactivation of MAB binding activity of different epitopes of NP of the 3H-labelled virus shown in our studies suggest that there are different types of structural organization or different location of these epitopes in the NP. The effect of 3H-decay on the intracellular RNA of reproducing virus lead to a decrease in virus yield; this may be due to radiation- and transmutation-induced damage of messenger and progeny RNA populations synthesized during the infection. The storage of influenza virus labelled with 14C-aminoacids lead to a decrease in MAB binding activity of the NP that was unaccompanied by a decrease in infectivity. Furthermore, 14C-decay in proteins of reproducing virus had no adverse effect.

Animals↗

The survival of motor neurons (SMN) protein interacts with the snoRNP proteins fibrillarin and GAR1.

BACKGROUND: The survival of motor neurons (SMN) protein is the protein product of the spinal muscular atrophy (SMA) disease gene. SMN and its associated proteins Gemin2, Gemin3, and Gemin4 form a large complex that plays a role in snRNP assembly, pre-mRNA splicing, and transcription. The functions of SMN in these processes are mediated by a direct interaction of SMN with components of these machineries, such as Sm proteins and RNA helicase A. RESULTS: We show that SMN binds directly to fibrillarin and GAR1. Fibrillarin and GAR1 are specific markers of the two classes of small nucleolar ribonucleoprotein particles (snoRNPs) that are involved in posttranscriptional processing and modification of ribosomal RNA. SMN interaction requires the arginine- and glycine-rich domains of both fibrillarin and GAR1 and is defective in SMN mutants found in some SMA patients. Coimmunoprecipitations demonstrate that the SMN complex associates with fibrillarin and with GAR1 in vivo. The inhibition of RNA polymerase I transcription causes a transient redistribution of SMN to the nucleolar periphery and loss of fibrillarin and GAR1 colocalization with SMN in gems. Furthermore, the expression of a dominant-negative mutant of SMN (SMNDeltaN27) causes snoRNPs to accumulate outside of the nucleolus in structures that also contain components of gems and coiled (Cajal) bodies. CONCLUSIONS: These findings identify fibrillarin and GAR1 as novel interactors of SMN and suggest a function for the SMN complex in the assembly and metabolism of snoRNPs. We propose that the SMN complex performs functions necessary for the biogenesis and function of diverse ribonucleoprotein complexes.

Arginine↗

Secondary structures of Escherichia coli antisense micF RNA, the 5'-end of the target ompF mRNA, and the RNA/RNA duplex.

The Escherichia coli micF RNA is a prototype for a class of antisense RNAs encoded by genes at different loci from those that code for their target RNAs. RNAs in this class exhibit only partial complementarity to their targets. micF RNA binds to and regulates the stability of ompF mRNA in response to a variety of environmental stimuli. The secondary structures of micF RNA, ompF-213 mRNA (a segment containing the 213 nucleotides at the 5'-terminus of the target message), and the micF RNA/ompF-213 mRNA duplex were analyzed in vitro by partial digestion with structure-specific ribonucleases and chemical modification. Both micF RNA and ompF mRNA have single-stranded 5'-ends and contain stable stem-loop structures. Strong phylogenetic support for the proposed secondary structure for E. coli micF RNA is provided by a comparison of structural models derived from micF sequences from related bacteria. The micF RNA/ompF-213 mRNA duplex interaction appears to involve only a short segment of micF RNA. Unfolding of only one stem-loop of micF RNA and a minor stem-loop of ompF-213 mRNA appears to be necessary to form the duplex. The probing data suggest that the Shine-Dalgarno sequence and AUG start codon of ompF mRNA, found in single-stranded regions in the free message, are base-paired to micF RNA in the RNA/RNA duplex.

Bacterial Outer Membrane Proteins↗

Poly(A) polymerase modification and reverse transcriptase PCR amplification of environmental RNA.

We describe a combination of two established techniques for a novel application for constructing full-length cDNA clone libraries from environmental RNA. The cDNA was cloned without the use of prescribed primers that target specific genes, and the procedure did not involve random priming. Purified RNA was first modified by addition of a poly(A) tail and then was amplified by using a commercially available reverse transcriptase PCR (RT-PCR) cDNA synthesis kit. To demonstrate the feasibility of this approach, a cDNA clone library was constructed from size-fractionated RNA (targeting 16S rRNA) purified from a geothermally heated soil in Yellowstone National Park in Wyoming. The resulting cDNA library contained clones representing Bacteria and Eukarya taxa and several mRNAs. There was no exact clone match between this library and a separate cDNA library generated from an RT-PCR performed with unmodified rRNA and Bacteria-specific forward and universal reverse primers that were designed from cultivated organisms; however, both libraries contained representatives of the Firmicutes and the alpha-Proteobacteria. Unexpectedly, there were no Archaea clones in the library generated from poly(A)-modified RNA. Additional RT-PCRs performed with universal and Archaea-biased primers and unmodified RNA demonstrated the presence of novel Archaea in the soil. Experiments with pure cultures of Sulfolobus solfataricus and Halobacterium halobium revealed that some Archaea rRNA may not be a suitable substrate for the poly(A) tail modification step. The protocol described here demonstrates the feasibility of directly accessing prokaryote RNA (rRNA and/or mRNA) in environmental samples, but the results also illustrate potentially important problems.

Archaea↗

The small nucleolar RNAs.

The present review summarizes key progress made in characterizing the small nucleolar RNAs (snoRNAs) of eukaryotic cells. Recent studies have shown snoRNA populations to be substantially more complex than anticipated initially. Many newly discovered snoRNAs are synthesized by an intron-processing pathway, which provides a potential mechanism for coordinating nuclear RNA synthesis. Several snoRNAs and snoRNP proteins are known to be needed for processing of ribosomal RNA, but precise functions remain to be defined. In principle, snoRNAs could have several roles in ribosome synthesis including: folding of pre-rRNA, formation of rRNP substrates, catalyzing RNA cleavages, base modification, assembly of pre-ribosomal subunits, and export of product rRNP particles.

Animals↗