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The specificity of nucleotide removal during RNA editing in Trypanosoma brucei.

RNA editing in Trypanosoma brucei produces mature mRNAs by posttranscriptional insertion and deletion of uridylates (Us) by a series of catalytic steps, which include endoribonucleolytic cleavage, 3' terminal addition or removal of Us, and RNA ligation. Preedited mRNA (pre-mRNA) and guide RNA (gRNA) that are mutated at or near the editing site (ES) were used to examine the effects on the specificity of in vitro editing. Sequences that are not predicted to form a gRNA/pre-mRNA base pair immediately 5' to the ES still supported accurate editing. Substitution of a non-U nucleotide at various positions within a stretch of Us that are normally removed from the ES resulted in deletion of only the Us that were 3' to the substituted nucleotide. Overall, ES selection by the endoribonuclease, the specificity of the 3' exoribonuclease for Us, and ligation appear to act in concert to ensure the production of accurately edited RNA.

Animals↗

Identification and characterization of RNA editing events within the 5-HT2C receptor.

RNA editing is a post-transcriptional modification that generates an RNA transcript with a nucleotide sequence different from its gene. We have recently discovered RNA editing events, involving the conversion of adenosine bases to inosine residues, within the RNA encoding the serotonin 2C (5-HT2C) receptor. Editing events at four major positions, termed A, B, C and D, as well as one minor site termed C', are predicted to alter amino acids within the second intracellular loop of the G-protein coupled 5-HT2C receptor. Editing is mediated by at least two members of a family of adenosine deaminases and is contingent upon the presence of an extensive RNA duplex structure formed by exonic and intronic sequences of 5-HT2C receptor precursor messenger RNA (pre-mRNA). This critical secondary structure has been observed within brain pre-mRNA derived from four species; the isolation of edited 5-HT2C receptor transcripts from these samples further confirms the evolutionary conservation of this RNA processing event. Among members of the 5-HT2 receptor family, editing within second intracellular loop RNA is unique to the 5-HT2C receptor. Editing within the 5-HT2C receptor generates receptor isoforms that differ in their ability to interact with the phospholipase C signaling cascade in a transfected cell line, suggesting that this RNA processing event may contribute to the modulation of serotonergic neurotransmission in the central nervous system.

Amino Acid Sequence↗

The polarity of editing within a multiple gRNA-mediated domain is due to formation of anchors for upstream gRNAs by downstream editing.

Seventeen kinetoplast minicircle-encoded and nine maxicircle-encoded gRNA genes have been identified. Six overlapping minicircle-encoded gRNAs mediate editing for the 5'-pan-edited MURF4 gene and two for the 5'-edited COIII gene. The pan-edited RPS12 mRNA is edited by seven minicircle-encoded gRNAs and one maxicircle-encoded gRNA. The 3'-most gRNA in each domain forms an anchor with unedited mRNA, whereas upstream gRNAs form anchors only with edited mRNA, thereby explaining the observed 3' to 5' polarity of editing within an editing domain. We suggest that a role of G-U base pairs is to allow breathing of the edited mRNA-gRNA hybrid and formation of the upstream anchor hybrid.

Animals↗

The European Biomedical Ethics Practitioner Education Project: an experiential approach to philosophy and ethics in health care education.

The European Biomedical Ethics Practitioner Education Project (EBEPE), funded by the BIOMED programme of the European Commission, is a five-nation partnership to produce open learning materials for healthcare ethics education. Papers and case studies from a series of twelve conferences throughout the European Union, reflecting the 'burning issues' in the participants' healthcare systems, have been collected by a team based at Imperial College, London, where they are now being edited into a series of seven activity-based workbooks for individual or group study. These draft workbooks are now being read by a network of critical readers across Europe, whose comments will be incorporated into the final versions of the workbooks. The result will be the first European-wide and Europe-centred resource for teaching students, practitioners, and members of ethics committees. Topics covered include: Resource allocation and rationing The rights of children and young people Long-term care of the elderly Mental health and mental illness Autonomy and patient choice Decisions at the end of life A study guide to using the workbooks. The collaborative nature of the project has highlighted differentiated national approaches in medical ethics. Against the British and Dutch rights-orientated approach have emerged two other alternative models: the Nordic preference for administrative resolution of entitlement disputes, and the southern European emphasis on deontological codes. A genuinely European reconstruction of autonomy and rights, using hermeneutic, feminist and narrative approaches to counterbalance individualistic models, is emerging across the workbooks. The programme has also uncovered national differences in how ethics should be taught, with the workbooks' style being an experiential approach. Thus the EBEPE project is developing new models in both substantive and pedagogic senses, about both what should be taught and how it should be presented.

Bioethics↗

Evolution and mechanism of translation in chloroplasts.

The entire sequence (120-190 kb) of chloroplast genomes has been determined from a dozen plant species. The genome contains from 87 to 183 known genes, of which half encode components involved in translation. These include a complete set of rRNAs and about 30 tRNAs, which are likely to be sufficient to support translation in chloroplasts. RNA editing (mostly C to U base changes) occurs in some chloroplast transcripts, creating start and stop codons and changing codons to retain conserved amino acids. Many components that constitute the chloroplast translational machinery are similar to those of Escherichia coli, whereas only one third of the chloroplast mRNAs contain Shine-Dalgarno-like sequences at the correct positions. Analyses conducted in vivo and in vitro have revealed the existence of multiple mechanisms for translational initiation in chloroplasts.

Base Sequence↗

The clinical advantages of editable real-time volume rendering in a medical virtual environment: VolMed.

Segmentation for a medical virtual environment is a process of image diagnosis. It should be performed by clinical doctors, otherwise the data may be meaningless for using clinical purposes. At the National Cancer Center, in Japan, we have recently developed interactive, editable real-time volume rendering software (VolMed), based on Volren-6 software, with the ability to interactively edit the 3D images of a patient's virtual cancer and virtual organs, in a virtual environment. Doctors can see proposed solutions to clinical problems as 3D images, using real-time volume rendering. We conclude that interactive editing is very important for clinical use, and also decreases the time required to create the virtual cancer images used for surgical simulation, pre-surgical planning and 3D invasion diagnoses.

Algorithms↗

Identification of novel components of Trypanosoma brucei editosomes.

The editosome is a multiprotein complex that catalyzes the insertion and deletion of uridylates that occurs during RNA editing in trypanosomatids. We report the identification of nine novel editosome proteins in Trypanosoma brucei. They were identified by mass spectrometric analysis of functional editosomes that were purified by serial ion exchange/gel permeation chromatography, immunoaffinity chromatography specific to the TbMP63 editosome protein, or tandem affinity purification based on a tagged RNA editing ligase. The newly identified proteins have ribonuclease and/or RNA binding motifs suggesting nuclease function for at least some of these. Five of the proteins are interrelated, as are two others, and one is related to four previously identified editosome proteins. The implications of these findings are discussed.

Amino Acid Sequence↗

DSM-III and the revolution in the classification of mental illness.

A revolution occurred within the psychiatric profession in the early 1980s that rapidly transformed the theory and practice of mental health in the United States. In a very short period of time, mental illnesses were transformed from broad, etiologically defined entities that were continuous with normality to symptom-based, categorical diseases. The third edition of the American Psychiatric Association's Diagnostic and Statistical Manual of Mental Disorders (DSM-III) was responsible for this change. The paradigm shift in mental health diagnosis in the DSM-III was neither a product of growing scientific knowledge nor of increasing medicalization. Instead, its symptom-based diagnoses reflect a growing standardization of psychiatric diagnoses. This standardization was the product of many factors, including: (1) professional politics within the mental health community, (2) increased government involvement in mental health research and policymaking, (3) mounting pressure on psychiatrists from health insurers to demonstrate the effectiveness of their practices, and (4) the necessity of pharmaceutical companies to market their products to treat specific diseases. This article endeavors to explain the origins of DSM-III, the political struggles that generated it, and its long-term consequences for clinical diagnosis and treatment of mental disorders in the United States.

Diagnostic and Statistical Manual of Mental Disord↗

Role of editing in plant mitochondrial transfer RNAs.

Editing in plant mitochondria consists in C to U changes and mainly affects messenger RNAs, thus providing the correct genetic information for the biosynthesis of mitochondrial (mt) proteins. But editing can also affect some of the plant mt tRNAs encoded by the mt genome. In dicots, a C to U editing event corrects a C:A mismatch into a U:A base pair in the acceptor stem of mt tRNA(Phe) (GAA). In larch mitochondria, three C to U editing events restore U:A base pairs in the acceptor stem, D stem and anticodon stem, respectively, of mt tRNA(His) (GUG). For both these mt RNA(Phe) and tRNA(His), editing of the precursors is a prerequisite for their processing into mature tRNAs. In potato mt tRNA(Cys) (GCA), editing converts a C28:U42 mismatch in the anticodon stem into a U28:U42 non-canonical base pair, and reverse transcriptase minisequencing has shown that the mature mt tRNA(Cys) is fully edited. In the bryophyte Marchantia polymorpha this U residue is encoded in the mt genome and evolutionary studies suggest that restoration of a U28 residue is necessary when it is not encoded in the gene. However, in vitro studies have shown that neither processing of the precursor, nor aminoacylation of tRNA(Cys), requires C to U editing at this position. But sequencing of the purified mt tRNA(Cys) has shown that Psi is present at position 28, indicating that C to U editing is a prerequisite for the subsequent isomerization of U into Psi at position 28.

Cytidine↗

Apolipoprotein B mRNA editing: a new tier for the control of gene expression.

Two forms of apolipoprotein (apo) B are found in mammals. The shorter form is translated from an edited mRNA in which a specific cytidine base is deaminated to a uridine, creating a new stop codon. Apo B mRNA editing is mediated by a site-specific cytidine deaminase that recognizes a downstream target sequence in the RNA. The enzyme has no energy or cofactor requirements and no RNA component, and thus bears no obvious relationship to RNA processing events such as splicing or polyadenylation. While apo B mRNA editing activity may have arrived late in evolution to target dietary lipid to the liver in mammals, the discovery of the editing activity in tissues and cells that do not express apo B suggests a more widespread role in the generation of RNA and protein diversity.

Animals↗

Sequence requirements for the editing of apolipoprotein B mRNA.

Apolipoprotein (apo) B48 is produced in the mammalian intestine by a tissue-specific RNA-editing mechanism, which mediates a C to U conversion at position 6666 in apoB mRNA. This generates an inframe translation stop codon (UAA) in place of glutamine (CAA) at position 2153. To establish the sequences required for editing we have used an in vitro conversion assay to monitor the editing of synthetic RNAs by rat intestinal extracts. Transcripts containing 55 nucleotides (positions 6649-6703) or more of human apoB mRNA sequence were edited in vitro. Transcripts containing 42 nucleotides (positions 6648-6689) and 26 nucleotides (positions 6662-6687) were edited at 62 and 24% efficiency, respectively, of the 55-nucleotide sequence. To delineate the precise sequence requirements for editing, mutants were generated where 6-nucleotide sections of the 55-base region were changed to anti-sense sequence. Mutation of the 12-nucleotide region immediately downstream of C-6666 abolished editing, and mutation of 6-base sequences immediately 3' and 5' of this 12-nucleotide region significantly reduced editing. Having identified the key region of interest, a panel of 46 mutant RNAs carrying single base substitutions or deletions between nucleotide positions 6657 and 6685 was constructed. Mutagenesis in the sequence 5'-TGATCAGTATA-3' (positions 6671-6681) downstream of C-6666 had the most dramatic effect, since almost all mutations abolished or greatly reduced conversion in vitro. These results suggest that editing is a highly sequence-specific process. We propose that this downstream region is a recognition and/or binding site for the editing enzyme. A search for this sequence in other genes may help to reveal other RNAs that undergo editing.

Animals↗

Maxicircle DNA and edited mRNA sequences of closely related trypanosome species: implications of kRNA editing for evolution of maxicircle genomes.

kRNA editing produces functional mRNAs by uridine insertion and deletion. We analyzed portions of the apocytochrome b and NADH dehydrogenase subunits 7 and 8 (ND7 and 8) genes and their edited mRNAs in Trypanosoma congolense and compared these to the corresponding sequences in T.brucei. We find that these genes are highly diverged between the two species, especially in the positions of thymidines and in nucleotide transitions. Editing eliminates differences in encoded uridines producing edited mRNAs that are identical except for the nucleotide substitutions. The resulting predicted proteins are identical since all nucleotide substitutions are silent. A T.congolense minicircle-encoded gRNA which can specify editing of ND8 mRNA was identified. This gRNA can basepair with both T.congolense and T.brucei ND8 mRNA despite nucleotide transitions due to the flexibility of G:U base-pairing. These results illustrate how editing affects the characteristics of maxicircle sequence divergence and allows protein sequence conservation despite a level of DNA sequence divergence which would be predicted to be intolerable in the absence of editing.

Amino Acid Sequence↗

Transcripts of the ndhH-D operon of barley plastids: possible role of unedited site III in splicing of the ndhA intron.

The plastid ndhH-D operon produces several transcripts containing ndhA sequence with and without its group II intron. After sequencing an 8125 bp fragment of barley plastid DNA including the ndhH-D operon, we investigated the editing-splicing status of transcripts in the range 1.0-7.8 kb. Reverse transcription and sequencing of RNA bands separated by electrophoresis were used to determine C-->U editing sites. Sites I, II and IV of ndhA and site V of ndhD were edited in all transcripts analysed and, probably, were edited before any splicing had taken place. In contrast, site III of ndhA (13 bp from the 5'-end base of the second exon) was not edited in transcripts containing the intron (including the 1.7 kb intermediary transcript consisting of the intron and the second exon) but was edited in all transcripts lacking the ndhA intron. Comparison of the secondary structures of the ndhA intron and intron-second exon intermediate suggests that G pairing prevents editing of site III in transcripts containing the intron and maintains the secondary structure required for splicing. Splicing of the ndhA intron releases the site III C from pairing and, probably, brings it close to cis-acting elements for editing upstream in the first exon.

Base Sequence↗

Proton MRI of (13)C distribution by J and chemical shift editing.

The sensitivity of (13)C NMR imaging can be considerably favored by detecting the (1)H nuclei bound to (13)C nuclei via scalar J-interaction (X-filter). However, the J-editing approaches have difficulty in discriminating between compounds with similar J-constant as, for example, different glucose metabolites. In such cases, it is almost impossible to get J-edited images of a single-compound distribution, since the various molecules are distinguishable only via their chemical shift. In a recent application of J-editing to high-resolution spectroscopy, it has been shown that a more efficient chemical selectivity could be obtained by utilizing the larger chemical shift range of (13)C. This has been made by introducing frequency-selective (13)C pulses that allow a great capability of indirect chemical separation. Here a double-resonance imaging approach is proposed, based on both J-editing and (13)C chemical shift editing, which achieves a powerful chemical selectivity and is able to produce full maps of specific chemical compounds. Results are presented on a multicompartments sample containing solutions of glucose and lactic and glutamic acid in water.

Journal Article↗

Editing of morbillivirus P gene transcripts in infected animals.

RNA editing in the Morbillivirus genus in vivo was investigated by applying a polymerase chain reaction-based primer extension technique to measure the edited and non-edited mRNA transcripts. In this genus of the Paramyxoviridae the P gene transcript is altered by the co-transcriptional addition of one extra G residue to produce the mRNA for the V non-structural protein. Using tissues of phocine distemper virus (PDV) infected seals, canine distemper virus (CDV) infected dogs and rinderpest virus (RPV) infected cattle, it was demonstrated that editing occurs in vivo. The P:V mRNA ratios were generally similar to those found in tissue culture infections with the same virus and a minor fraction of transcripts had 2-4 extra G residues. In one seal brain infected with PDV the ratio of P:V mRNA was reversed but no differences were found in the levels of mRNA editing in different tissues from the same animal infected with CDV or RPV. However, variation was seen between animals infected with different isolates of RPV and even between animals infected with the same isolate of RPV.

Animals↗

DNA sequence confidence estimation.

A significant bottleneck in the current DNA sequencing process is the manual editing of trace data generated by automated DNA sequencers. This step is used to correct base calls and to associate to each base call a confidence level. The confidence levels are used in the assembly process to determine overlaps and to resolve discrepancies in determining the consensus sequence. This single step may cost as much as 4 to 8 cents per finished base. We report an approach to automated trace editing using classification trees to detect and exploit context-based patterns in trace peak heights. Local base composition and nearby peak heights account for 80% of the variations in peak heights. Classification algorithms were developed to identify 37% of automated base calls that differ from the consensus sequence. With these algorithms, 12% of the base calls had confidence levels less than 90%.

Algorithms↗

Computer-assisted data collection in multicenter epidemiologic research. The Atherosclerosis Risk in Communities Study.

The Atherosclerosis Risk in Communities (ARIC) Study uses a computer-assisted data collection (CADC) system in which staff at four Field Centers directly record into microcomputers much of the data obtained from the 16,000 study participants during 4 hours of interviews and exams. A pilot study was conducted to evaluate the feasibility of training Field Center staff in the use of a CADC system and to assess study participants' reaction to such a system. When asked to compare CADC to a paper-based system, all five of the pilot study staff members preferred the CADC system. The 16 pilot study participants either had no preference (63%) or preferred CADC (37%). With respect to data quality, no systematic differences between the two methods of data collection were evident in the pilot study. The CADC system required approximately 10% longer for data collection, keying, and editing than the paper-based system took for collection alone. Immediate data entry in a CADC system may improve data quality by eliminating a transcription step and by allowing prompt detection of suspicious values while the participant is still available to provide confirmation or correction. CADC simplifies data collection by automating complex branching questions and can enhance data completeness. The ARIC CADC system is based on commercially available software customized by the study's Coordinating Center. The microcomputer-based CADC system described in this report may serve as the prototype for future epidemiologic studies that collect standardized data on large numbers of participants at a small number of sites.

Arteriosclerosis↗

REDIdb: the RNA editing database.

The RNA Editing Database (REDIdb) is an interactive, web-based database created and designed with the aim to allocate RNA editing events such as substitutions, insertions and deletions occurring in a wide range of organisms. The database contains both fully and partially sequenced DNA molecules for which editing information is available either by experimental inspection (in vitro) or by computational detection (in silico). Each record of REDIdb is organized in a specific flat-file containing a description of the main characteristics of the entry, a feature table with the editing events and related details and a sequence zone with both the genomic sequence and the corresponding edited transcript. REDIdb is a relational database in which the browsing and identification of editing sites has been simplified by means of two facilities to either graphically display genomic or cDNA sequences or to show the corresponding alignment. In both cases, all editing sites are highlighted in colour and their relative positions are detailed by mousing over. New editing positions can be directly submitted to REDIdb after a user-specific registration to obtain authorized secure access. This first version of REDIdb database stores 9964 editing events and can be freely queried at http://biologia.unical.it/py_script/search.html.

DNA, Complementary↗