Enzymatic conversion of cytidine to lysidine in anticodon of bacterial isoleucyl-tRNA--an alternative way of RNA editing.
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Apolipoprotein (apo) B mRNA undergoes a novel tissue-specific editing reaction, which replaces a genomically templated cytidine with uridine. This substitution converts codon 2153 from glutamine (CAA) in apo B100 mRNA to a stop codon (UAA) in apoB48 mRNA (Powell, L. M., Wallis, S. C., Pease, R. J., Edwards, Y. H., Knott, T. J., and Scott, J. (1987) Cell 50, 831-840). To examine sequences in the human apoB mRNA required for the editing reaction, a series of deletion mutants around the cytidine conversion site was prepared and transfected into a rat hepatoma cell line (McArdle 7777). This cell makes both apoB100 and apoB48. Editing was detected by a primer extension assay on cDNA that had been amplified by the polymerase chain reaction. RNAs of between 2385 and 26 nucleotides spanning the conversion site underwent similar levels of conversion. Editing was confirmed by cloning and sequencing of cDNA corresponding to the transfected RNAs. Conversion did not occur in transfected human hepatoblastoma (HepG2) or epithelial carcinoma (HeLa) cell lines, which do not make apoB48. These results verify that apoB48 is generated by a genuine tissue-specific RNA editing reaction and show that 26 nucleotides of apoB mRNA are sufficient for editing.
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The coding sequence within several mitochondrial mRNAs of the trypanosomatid protozoa is created through editing by the precise insertion and deletion of U nucleotides. The biochemical characterisation of the editing reaction in the Leishmania genus of the trypanosomatids has been hindered by the lack of a direct in vitro assay. We describe here the first direct assay for the detection of guide RNA-directed editing mediated by a mitochondrial extract prepared from two independent isolates of Leishmania tarentolae. The assay enabled the editing activity within a L. tarentolae mitochondrial extract to be significantly enriched and will facilitate the characterisation of the editing reaction. The results suggest that the difficulty in establishing an assay for the L. tarentolae reaction was not simply a result of the catalytic machinery being limiting but rather reflected the presence of constraints on both the guide RNA and mRNA sequences.
The complete cDNA sequence corresponding to the rapeseed atp6 gene transcript (coding for subunit 6 of F0-ATPase) has been determined by a method involving cDNA synthesis, using specific oligonucleotides as primers, followed by PCR amplification, cloning and sequencing of the amplification products. Only one modification, a C-to-U conversion, has been found when compared to the genomic mitochondrial DNA sequence. Comparison of the extent and frequency of RNA editing of the pol cytoplasmic male sterile (cms) atp6 transcript with those of normal atp6 transcript indicates that there is no variation between the editing status of the atp6 transcripts from pol cms and normal cytoplasms.
In vitro editing in mammalian nuclear extracts reveals adenosine-to-inosine conversions in glutamate receptor messenger RNAs.
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We identified a gene for subunit 9 of NADH dehydrogenase (nad9) in rice mitochondrial DNA. Southern and Northern hybridizations demonstrated that rice nad9 is present in a unique region in mtDNA and is transcribed at a high level. The transcript of rice nad9 is edited at twelve positions.
ADAR2 is a double-stranded-RNA-specific adenosine deaminase involved in the editing of mammalian RNAs by the site-selective conversion of adenosine to inosine. Previous studies from our laboratory have demonstrated that ADAR2 can modify its own pre-mRNA to create a proximal 3' splice site containing a noncanonical adenosine-inosine dinucleotide. Alternative splicing to this proximal acceptor adds 47 nucleotides to the mature ADAR2 transcript, thereby resulting in the loss of functional ADAR2 protein expression due to premature translation termination in an alternate reading frame. To examine whether the editing of ADAR2 transcripts represents a negative autoregulatory strategy to modulate ADAR2 protein expression, we have generated genetically modified mice in which the ability of ADAR2 to edit its own pre-mRNA has been selectively ablated by deletion of a critical sequence (editing site complementary sequence [ECS]) required for adenosine-to-inosine conversion. Here we demonstrate that ADAR2 autoediting and subsequent alternative splicing are abolished in homozygous deltaECS mice and that ADAR2 protein expression is increased in numerous tissues compared to wild-type animals. The observed increases in ADAR2 protein expression correlate with the extent of ADAR2 autoediting observed with wild-type tissues and correspond to increases in the editing of ADAR2 substrates, indicating that ADAR2 autoediting is a key regulator of ADAR2 protein expression and activity in vivo.
A rooted phylogenetic tree of the kinetoplastid protozoa has been constructed that, together with a comparative analysis of editing of several genes, leads to the surprising conclusion that extensive or pan-editing with multiple overlapping guide RNAs is more ancient than 5'-editing. The mechanism of editing is still uncertain, but multiple ribonucleoprotein complexes have been identified that contain components of the enzymatic machinery.
C to U editing of apt9, nad3, and cox2 mRNAs was investigated in maize seedlings at various developmental stages as well as in suspension-cultured cells. Heterogeneity of mRNAs that result from incomplete editing was analyzed for each gene and from five tissues or developmental conditions. The editing status of approximately 30 cDNA clones was determined by digestion with a restriction enzyme that discriminates between unedited and edited DNA sequences. The atp9 and spliced cox2 cDNAs were essentially completely edited in all samples examined. Analysis of three editing sites of nad3 cDNAs indicated that incompletely edited cDNAs were detected in all tissues and treatments with a temporal increase in the overall editing status, from 50% at 3 days to about 75% at 7 days. These results indicate that incompletely edited mRNAs are prevalent for some plant mitochondrial genes, and can change with developmental or growth conditions.
We discovered in 1987 that the shorter form of apolipoprotein B (B48) synthesized in the intestine is due to the action, previously unrecognized in mammalian cells, of an mRNA-editing process, and more recently we demonstrated that this was due to a specific enzyme (APOBEC-1) with cytidine deaminase activity. We show here, by sequence alignment, molecular modelling and mutagenesis, that APOBEC-1 is a cytidine deaminase, responsible for editing apoB mRNA, and that is related in crystal structure to the cytidine deaminase of Escherichia coli (ECCDA). The two enzymes are both homodimers with composite active sites formed with loops from each monomer. In the sequence of APOBEC-1, three gaps compared with ECCDA match the size and contour of the minimal RNA substrate. We propose a model in which the asymmetric binding of one active site to the substrate cytidine which is positioned by the downstream binding of the product uridine and that this helps to target the other active site for deamination.
The primary structure of the 5S rRNA from Arabidopsis thaliana was determined. A comparison of this nucleotide sequence with that of 5S rRNA gene showed two differences. Furthermore, we compared all plant 5S rRNA and 5S rDNA sequences known to date and found that lack of colinearity is widespread among higher plant 5S rRNAs and occurred mainly in the double stranded regions. To explain this, we suggest a mechanism which converts putative products of pseudogene ("cryptogene") to mature 5S rRNA molecule. This kind of editing mechanism functions primarily in stems of 5S rRNA in order, to correct mispairing and thereby restoring the Watson-Crick base pairs. This idea could explain why so many different 5S rRNA genes or gene like sequences and only one 5S rRNA species exist in the plant cell. The editing can serve as a new mechanism of regulation of 5S rRNA synthesis in addition to transcription of 5S rRNA gene.
The psbB operon contained in the plastomes of higher plants consists of the genes psbB, psbH, petB and petD. The primary transcript of this operon is subject to a series of processing steps which include cleavages resulting in four monocistronic mRNAs and splicing of the petB and petD transcripts. A search for editing sites within the two latter transcripts from maize led us to the detection of one editing site within the petB coding region which is conserved at the DNA level in other graminean species and in tobacco. This shows that editing must be considered as an additional processing step of the psbB operon encoded primary transcript. As is evident from cDNA sequences derived from the dicistronic and/or unspliced petB/D transcripts which are completely edited, editing is an early step of mRNA processing which precedes both splicing and cleavage to the monocistronic mRNAs and which must, therefore, be independent of the latter two steps. This conclusion is confirmed by a similar observation with the editing site of the rpl2 transcript which is contained in the polycistronic transcript of the rpoA operon, although here only partial editing is observed for the unspliced dicistronic rpl23/rpl2 transcript.