Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “RNA sequencing”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 541 records · Page 30Linked to original sources

Verification of 50- to 100-mer DNA and RNA sequences with high-resolution mass spectrometry.

Electrospray ionization with Fourier-transform mass spectrometry achieves accurate (< 50-ppm) determination of molecular weights of nucleotides, verifying structures of biological RNA and synthetic single-stranded DNA. High (1o(5)) resolving power makes possible detection of subpicomole impurities and adducts that confuse lower-resolution measurements. Molecular ions in a spectrum of 76-mer tRNA(Phe) had 34-55 Na adducts; when desalted, these show a molecular mass of 24,950.5 Da (expected, 24,950.3 Da) and minor variants at approximately -15 and +15 Da. A 50-mer DNA is characterized with < 10-ppm mass error, with detection of both N + 1 and N - 1 failure sequences. Special electrospray ionization conditions are necessary for a 72-mer to minimize fragmentation in the ion source. Despite the chemical noise from this, as well as failed sequences from automated synthesis, the spectrum of a 100-mer single-stranded DNA yielded a molecular mass of 30,702.4 +/- 1 Da, in good agreement with the expected value, 30,702.1 Da.

Base Sequence↗

Accessing rare activities from random RNA sequences: the importance of the length of molecules in the starting pool.

BACKGROUND: In the past few years numerous binding and catalytic motifs have been isolated from pools of random nucleic acid sequences. To extend the utility of this approach it is important to learn how to design random-sequence pools that provide maximal access to rare activities. In an effort to better define the relative merits of longer and shorter pools (i.e. pools with longer or shorter random-sequence segments), we have examined the inhibitory effect of excess arbitrary sequence on ribozyme activity and have evaluated whether this inhibition overshadows the calculated advantage of longer pools. RESULTS: The calculated advantage of longer sequences was highly dependent on the size and complexity of the desired motif. Small, simple motifs were not much more abundant in longer molecules. In contrast, larger motifs, particularly the most complex (highly modular) motifs, were much more likely to be present in longer molecules. The experimentally determined inhibition of activity by excess sequence was moderate, with bulk effects among four libraries ranging from no effect to 18-fold inhibition. The median effect among 60 clones was fivefold inhibition. CONCLUSIONS: For accessing simple motifs (e.g. motifs at least as small and simple as the hammerhead ribozyme motif), longer pools have little if any advantage. For more complex motifs, the inhibitory effect of excess sequence does not approach the calculated advantage of pools of longer molecules. Thus, when seeking to access rare activities, the length of typical random-sequence pools (< or = 70 random positions) is shorter than optimal. As this conclusion holds over a range of incubation conditions, it may also be relevant when considering the emergence of new functional motifs during early evolution.

Base Composition↗

Phylogenic homogeneity of Coxiella burnetii strains as determinated by 16S ribosomal RNA sequencing.

DNA coding for the 16S rRNA of six strains of the obligate intracellular bacterium Coxiella burnetii was directly amplified from lysed host cells using the polymerase chain reaction. The amplification product was sequenced using a linear-PCR procedure and compared with other published 16S rRNA sequences. The results of this analysis confirm the position of C. burnetii in the gamma subgroup of the proteobacteria. The data show that all of the C. burnetii strains are highly related (> 99%) on the basis of 16S rRNA sequences although they had different geographic origins and phenotypic characteristics. The data support a phylogenetic homogeneity of the genus Coxiella with only one species which is C. burnetii.

Base Sequence↗

Comparisons of ribosomal RNA sequences from amitochondrial protozoa: implications for processing, mRNA binding and paromomycin susceptibility.

The amitochondrial (a-mt) protozoa include four groups of organisms that are of interest as important human parasites and as probable descendents of the earliest branches of eukaryotic evolution. These organisms have not been directly compared in terms of structure and function of a specific molecule. We sequenced portions of their rRNA-encoding genes coding for the internal transcribed spacers (ITS1 and 2) and adjoining small subunit (SS), 5.8S and large subunit (LS) rRNAs. Included are sites for RNA processing, mRNA interaction and aminoglycoside binding, as well as potential protein-encoding genes. The ITS of all a-mt protozoa examined are relatively short, but otherwise diverse. They include one or two predominant nucleotides (A in Entamoeba and Trichomonas, T in Encephalitozoon and C in Giardia) and have minimal potential secondary structure, which may form the basis for the preferential processing of ITS sequences. The mechanism employed by a-mt protozoa to bind mRNA may be unique, since Giardia, Trichomonas and Entamoeba mRNAs have usually short 5' non-coding regions. In bacteria, the 3' terminus of the SS rRNA is involved in mRNA binding; analysis of Entamoeba and Trichomonas mRNA 5' non-coding sequences suggests an analogous mechanism involving potential base pairing to the loop of the terminal SS rRNA hairpin. Giardia sensitivity to paromomycin was previously correlated with the presence of a C:G bp near the decoding region of SS rRNA. This bp is also present in Entamoeba and Trichomonas, consistent with their susceptibility. Its absence in Encephalitozoon and other microsporidia predicts paromomycin resistance, and suggests a distinct evolutionary origin for this group.

Amino Acid Sequence↗

Ribosomal RNA sequences of Sarcocystis muris, Theileria annulata and Crypthecodinium cohnii reveal evolutionary relationships among apicomplexans, dinoflagellates, and ciliates.

Sarcocystis muris is a coccidium with a two-host life cycle involving the domestic cat and the mouse, Mus musculus. S. muris and Theileria annulata belong to the phylum Apicomplexa, but the latter organism is a tick-borne protozoon in the subclass Piroplasmea and causes tropical theileriosis in cattle. The small-subunit ribosomal RNA (16S-like rRNA) coding regions of these organisms as well as that of the free living dinoflagellate Crypthecodinium cohnii were amplified using polymerase chain reaction techniques and compared to 16S-like rRNA sequences from other eukaryotes. The 16S-like rRNA genes of S. muris and T. annulata are more similar to each other than either is to Plasmodium falciparum, the cause of malignant tertian malaria of humans or Plasmodium berghei, the agent of the commonly studied malaria of rodents. Evolutionary trees inferred from the rRNA sequence similarities support a close phylogenetic relationship between the Apicomplexa and Dinoflagellata as represented by Prorocentrum micans and C. cohnii. Apparently members of these related phyla arose from an ancestral stock that gave rise to the ciliated protozoa.

Animals↗

Efficient initiation of HIV-1 reverse transcription in vitro. Requirement for RNA sequences downstream of the primer binding site abrogated by nucleocapsid protein-dependent primer-template interactions.

Synthesis of HIV-1 (-) strong-stop DNA is initiated following annealing of the 3' 18 nucleotides (nt) of tRNA(3)(Lys) to the primer binding site (PBS) near the 5' terminus of viral RNA. Here, we have investigated whether sequences downstream of the PBS play a role in promoting efficient (-) strong-stop DNA synthesis. Our findings demonstrate a template requirement for at least 24 bases downstream of the PBS when tRNA(3)(Lys) or an 18-nt RNA complementary to the PBS (R18), but not an 18-nt DNA primer, are used. Additional assays using 18-nt DNA-RNA chimeric primers, as well as melting studies and circular dichroism spectra of 18-nt primer:PBS duplexes, suggest that priming efficiency is correlated with duplex conformation and stability. Interestingly, in the presence of nucleocapsid protein (NC), the 24 downstream bases are dispensable for synthesis primed by tRNA(3)(Lys) but not by R18. We present data supporting the conclusion that NC promotes extended interactions between the anticodon stem and variable loop of tRNA(3)(Lys) and a sequence upstream of the A-rich loop in the template. Taken together, this study leads to new insights into the initiation of HIV-1 reverse transcription and the functional role of NC-facilitated tRNA-template interactions in this process.

Base Sequence↗

RNA sequence and the nature of the CuA-binding site in cytochrome c oxidase.

For cytochrome c oxidase subunit II (COXII), DNA and protein sequences suggest that Met-207 (bovine numbering) is conserved in all species except plants. Sequencing of plant mitochondrial COXII mRNAs now indicates that Met-207 is also conserved among plants as a result of a C-to-U type of RNA editing. Considering the strict evolutionary conservation of Met-207 and the homology of COXII to type I (blue) copper proteins and nitrous oxide reductase, we propose a model in which Met-207 is associated with the CuA-binding site (along with Cys-196, Cys-200 and His-204) and plays a role in determining its reduction potential and stability.

Base Sequence↗

Strand-specific detection of Hantaan virus RNA sequences by in vitro DNA amplification.

Hantaan virus often causes a fatal human disease, hemorrhagic fever with renal syndrome (HFRS). An assay for strand-specific detection and quantitation of Hantaan virus RNA was developed based on the polymerase chain reaction (PCR). A protocol for the efficient detection of both genomic RNA and its transcript is presented, in which a reverse transcriptase reaction (RTR) followed by PCR with two common primers was used to distinguish between positive- and negative-stranded RNA. Using this method, the growth characteristics of Hantaan virus, strain 76-118, were studied in Vero E6 cells. Positive-stranded RNA was detected on the next day after infection, and the amount increased remarkably beginning from 3 days after infection. The negative-stranded RNA (genomic), was detected at 2 days after infection which predominated over the transcript RNA. Three days after infection, the amount of viral RNA attained 80% of the maximum amount which was detected by 6 days after infection, while, 4 days after infection the amount of the positive-stranded RNA became over 80% of the maximum amount of 6 days after infection and reached the amount of viral RNA. Both RNAs reached plateaus at 6 days after infection and after that the amounts of synthesized viral RNA and its transcripts were constant.

Base Sequence↗

Detection and cellular localization of enterovirus RNA sequences in spinal cord of patients with ALS.

OBJECTIVE: To investigate the possible association of persistent enterovirus (EV) infection with the development of ALS. BACKGROUND: Although ALS is a clinically well-defined motor neuron disease, little is known about the etiology and pathogenesis of the sporadic cases. Among the different causes that have been hypothesized, conflicting results have been reported about the possible role of persistent enteroviral infection. METHODS: Reverse transcriptase-PCR (RT-PCR) and direct RT in situ PCR (RT-IS-PCR) were performed in formaldehyde-fixed spinal cord samples of 17 patients with confirmed ALS and 29 control subjects with no history of motor neuron disease. When obtained, PCR products were sequenced subsequently. RESULTS: Using direct RT-IS-PCR, EV nucleic acid sequences were detected in 15 (88.3%) of 17 patients with ALS compared to 1 (3.4%) of 29 control subjects. PCR products were located in neuronal cell bodies of the anterior horns of the spinal cord. The RT-PCR products obtained in 13 of the 17 patients with ALS showed between 94% and 86% homology with echovirus 7 sequences. CONCLUSION: The 88.3% rate of detection of enterovirus (EV) nucleic acids in the neuronal cell bodies within the gray matter of the spinal cord of patients with ALS strongly suggests association between persistent EV RNA and ALS. Further work is required to confirm that the persisting EV sequences we detected are somehow involved in the development of ALS.

Amyotrophic Lateral Sclerosis↗

A consensus CaMK IV-responsive RNA sequence mediates regulation of alternative exons in neurons.

Neurons make extensive use of alternative pre-mRNA splicing to regulate gene expression and diversify physiological responses. We showed previously in a pituitary cell line that the Ca(++)/calmodulin-dependent protein kinase CaMK IV specifically repressed splicing of the BK channel STREX exon. This repression is dependent on a CaMK IV-responsive RNA element (CaRRE) within the STREX 3' splice site. Here, we report that similar Ca(++) regulation of splicing, mediated by L-type calcium channels and CaM kinase IV, occurs in cultured neurons and in the brain. We identify a critical CaRRE motif (CACATNRTTAT) that is essential for conferring CaMK IV repression on an otherwise constitutive exon. Additional Ca(++)-regulated exons that carry this consensus sequence are also identified in the human genome. Thus, the Ca(++)/CaMK IV pathway in neurons controls the alternative splicing of a group of exons through this short CaRRE consensus sequence. The functions of some of these exons imply that splicing control through the CaMK IV pathway will alter neuronal activity.

Alternative Splicing↗

A molecular technique for identification of bacteria using small subunit ribosomal RNA sequences.

We have recently developed a novel molecular technique for identification of specific bacterial species within a complex mixture. The technique uses PCR to amplify small subunit ribosomal RNA (SSU rRNA) genes from a mixture of bacteria. One of the PCR primers is labeled with a fluorescent dye to allow detection of the amplified product. The PCR product is then digested with restriction enzymes and a capillary electrophoresis unit equipped with a laser-induced fluorescence detector is employed to analyze the restriction fragments. Only restriction fragments that contain the fluorescent-labeled primer are detected. Generally, the nucleotide sequence of the SSU rRNA genes is unique for each bacterial species. Consequently, the fluorescent-labeled restriction fragments from different bacterial species often have characteristic lengths. Thus, the different fluorescent peaks that appear in a capillary electropherogram correspond to labeled restriction fragments from different bacterial species. This protocol allows us to identify a number of different bacterial species in a complex mixture. Only a minute sample of bacterial DNA and a minimal amount of time (8-10 h) are required for this analysis. The protocol is sensitive, rapid and capable of identifying a broad spectrum of bacterial species.

Bacteria↗