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RNA editing in ribosome-less plastids of iojap maize.

In maize chloroplasts, 28 C-to-U editing events have been identified in the transcripts of 14 different genes. The iojap mutant of maize, which lacks chloroplast ribosomes, affords the opportunity to examine whether any chloroplast translation products are required for the editing of any of the 28 sites. Furthermore, the mode of action of the IOJAP protein itself is unknown, so we explored the possibility that homozygous ij1/ ij1 plants are defective in RNA editing. Current knowledge of RNA editing in chloroplasts indicates the existence of site-specific factors responsible for recognizing C targets of editing, but the factors have not yet been identified and their encoding genes are unknown. Our results indicate that all 28 editing sites can be recognized and processed in ribosome-less plastids. Transcripts of rpoB are more abundant and more highly edited in iojap mutants. The editing site in rpl2, which creates the mRNA start codon, is the most severely affected in homozygous ij/ ij plants, but nevertheless exhibits at least 10% editing in all mutant lines. Reduced editing of rpl2 may be an indirect effect of reduced splicing, rather than a defect caused by the iojap mutation. We conclude that neither the IOJAP protein nor chloroplast translation products are required for editing any of the 28 C targets of editing in maize chloroplast RNAs.

Alternative Splicing↗

Temperature sensitivity of RNA editing and intron splicing reactions in the plastid ndhB transcript.

Primary transcripts in higher plant cell organelles undergo a series of essential RNA processing steps, including 5'- and 3'-terminal maturation, intron splicing and RNA editing. Most of the protein factors involved in these RNA processing mechanisms are still unknown. Also, little is known about the environmental and developmental factors regulating RNA processing events in plastids. Here we have tested the influence of the environmental factor temperature on RNA processing in the ndhB mRNA from tobacco plastids. We find that, whereas temperature increase to 37 degrees C fully inhibits RNA editing at only one out of nine sites in the tobacco ndhB transcript, further temperature increase to 42 degrees C selectively blocks editing at two additional sites. As these temperature effects are strictly site-specific, our findings provide evidence for the existence of site-specific editing factors which exhibit differential temperature sensitivity. Furthermore, splicing of the group II intron present in the ndhB pre-mRNA is largely blocked at 42 degrees C, suggesting that chloroplast RNA processing steps are more sensitive to high temperature than chloroplast transcription. Our findings may also suggest that impaired plastid RNA processing contributes to the loss of chloroplast function upon plant growth at high temperature.

Hot Temperature↗

A-to-I RNA editing and human disease.

The post-transcriptional modification of mammalian transcripts by A-to-I RNA editing has been recognized as an important mechanism for the generation of molecular diversity and also regulates protein function through recoding of genomic information. As the molecular players of editing are characterized and an increasing number of genes become identified that are subject to A-to-I modification, the potential impact of editing on the etiology or progression of human diseases is realized. Here we review the recent knowledge on where disturbances in A-to-I RNA editing have been correlated with human disease phenotypes.

Adenosine↗

A unique two-gene gametophytic male sterility system in sorghum involving a possible role of RNA editing in fertility restoration.

The sorghum line IS1112C carries a male sterility-inducing cytoplasm when introduced into nuclear backgrounds that do not include fertility restoration genes. An mtDNA chimeric configuration resulting from recombination/duplication with atp9 resulted in the formation of orf107, a chimeric open reading frame. Transcription of orf107 is driven by three promoters, and abundant whole-length transcripts are detected in male-sterile lines. Fertility restoration is exacted through a unique two-gene gametophytic system requiring complementary action of genes designated Rf3 and Rf4. In male-sterile lines carrying Rf3, or lines restored to fertility, an enhanced nucleolytic transcript processing activity is targeted within orf107, cleaving 75% of whole-length transcripts. Rf3 thus confers or regulates the nucleolytic processing activity. A correlation between the frequency of RNA editing at two sites in orf107 and transcript processing suggests that processing may be dependent on templates edited at these sites. In addition, editing of atp6 transcripts is specifically reduced in anthers/pollen of male-sterile lines. Partially restored F1s and segregating F2s exhibit atp6 editing frequencies consistent with the possibility that Rf4 may confer the restitution of normal editing frequency. Thus RNA editing may be involved in features of fertility restoration in this unusual system.

Amino Acid Sequence↗

RNA editing of tobacco petB mRNAs occurs both in chloroplasts and non-photosynthetic proplastids.

We found an RNA editing site in the protein coding region of tobacco (Nicotiana tabacum) petB transcripts. This editing (CCA to CUA) leads to an amino acid conversion from proline to leucine. It is observed not only in chloroplasts isolated from tobacco leaves but also in non-photosynthetic proplastids isolated from a tobacco cell culture. Also unspliced pre-mRNA shows complete editing. The editing site is the same as that recently observed in the maize petB transcripts which restores the codon for a highly conserved leucine residue, suggesting that RNA editing at this site is critical for the protein (cytochrome b6) function.

Base Sequence↗

RNA editing in higher plant plastids: oligoribonucleotide SSCP analysis allows the proof of base conversion directly at the RNA level.

Plastid RNA editing of a number of transcripts at specific sites changes genomically encoded cytidines to nucleosides, which act like uridines in RT-PCR analyses. To study plastid-editing directly at the RNA level, we established a single-strand conformational polymorphism assay for the discrimination of small RNA molecules. The electrophoretic mobility of a oligoribonucleotide resulting from a RNase T1-digested and edited plastid mRNA was shown to be identical with a control RNA molecule containing a uridine at the editing site, whereas the unedited RNA behaved like a RNA molecule containing a cytidine at the respective position.

Chromosome Mapping↗

Pervasive RNA editing among hornwort rbcL transcripts except Leiosporoceros.

RNA editing affecting chloroplast and mitochondrial genomes has been identified in all major clades of land plants. The frequency of edited sites varies greatly between lineages but hornworts represent an extreme in propensity for editing in both their chloroplast and mitochondrial genomes. cDNA sequences from seven taxonomically diverse hornwort rbcL sequences combined with a survey of 13 additional DNA sequences for potential edited sites demonstrate the presence of 62 edited sites and predict a minimum of 10 additional sites. These 72 total edited sites represent 43 C-to-U and 28 U-to-C nucleotide conversions, with 1 site exhibiting editing in both directions. With one exception, all taxa are heavily edited, with each having from 20 to 34 edited sites. However, a single sample, Leiosporoceros, is shown to lack edited sites. Phylogenetic reconstruction of hornworts results in ambiguous resolution of Leiosporoceros depending on whether edited sites are maintained or eliminated from the analyses. Depending on the inferred relationship of Leiosporoceros to the hornworts, at least two explanations for the origin and maintenance of pervasive editing in hornworts are possible. The absence of edited sites in Leiosporoceros could represent either the absence or a low level of editing ability in the common ancestor of hornworts, as represented by Leiosporoceros, or the loss of editing sites in this lineage after the primary diversification events in the group.

Anthocerotophyta↗

Distinct in vivo roles for double-stranded RNA-binding domains of the Xenopus RNA-editing enzyme ADAR1 in chromosomal targeting.

The RNA-editing enzyme adenosine deaminase that acts on RNA (ADAR1) deaminates adenosines to inosines in double-stranded RNA substrates. Currently, it is not clear how the enzyme targets and discriminates different substrates in vivo. However, it has been shown that the deaminase domain plays an important role in distinguishing various adenosines within a given substrate RNA in vitro. Previously, we could show that Xenopus ADAR1 is associated with nascent transcripts on transcriptionally active lampbrush chromosomes, indicating that initial substrate binding and possibly editing itself occurs cotranscriptionally. Here, we demonstrate that chromosomal association depends solely on the three double-stranded RNA-binding domains (dsRBDs) found in the central part of ADAR1, but not on the Z-DNA-binding domain in the NH2 terminus nor the catalytic deaminase domain in the COOH terminus of the protein. Most importantly, we show that individual dsRBDs are capable of recognizing different chromosomal sites in an apparently specific manner. Thus, our results not only prove the requirement of dsRBDs for chromosomal targeting, but also show that individual dsRBDs have distinct in vivo localization capabilities that may be important for initial substrate recognition and subsequent editing specificity.

Adenosine Deaminase↗

RNA editing in transcripts of the mitochondrial genes of the insect trypanosome Crithidia fasciculata.

With the aid of cDNA and RNA sequence analysis, we have determined to what extent transcripts of mitochondrial maxicircle genes of the insect trypanosome Crithidia fasciculata are altered by RNA editing, a novel mechanism of gene expression which operates via the insertion and deletion of uridine residues. Editing of cytochrome c oxidase (cox) subunit II and III transcripts and of maxicircle unidentified reading frame (MURF) 2 RNA is limited to a small section and results in the creation of a potential AUG translational initiation codon (coxIII, MURF2) or the removal of a frameshift (coxII). No differences with the genomic sequences were observed in the remainder of these RNAs. Surprisingly, NADH dehydrogenase subunit I transcripts were completely unedited in the coding region, implying that an AUG translational initiation codon is absent. The partial ribosomal RNA sequences determined also conform to the gene sequences. Together these results lead to the conclusion that the unusual sequences predicted by the protein and rRNA genes must indeed be present in the gene products. Editing also occurred in the poly(A) tail of RNAs from all protein genes, including those that are unedited in the coding region. The tails display a large variation in AU sequence motifs. Finally, some cDNAs contained sequences absent from both the DNA and the edited RNA. Some of these may represent intermediates in the RNA editing process. We argue, however, that long runs of T may be artefacts of cDNA synthesis.

Animals↗

Tuning of RNA editing by ADAR is required in Drosophila.

RNA editing increases during development in more than 20 transcripts encoding proteins involved in rapid synaptic neurotransmission in Drosophila central nervous system and muscle. Adar (adenosine deaminase acting on RNA) mutant flies expressing only genome-encoded, unedited isoforms of ion-channel subunits are viable but show severe locomotion defects. The Adar transcript itself is edited in adult wild-type flies to generate an isoform with a serine to glycine substitution close to the ADAR active site. We show that editing restricts ADAR function since the edited isoform of ADAR is less active in vitro and in vivo than the genome-encoded, unedited isoform. Ubiquitous expression in embryos and larvae of an Adar transcript that is resistant to editing is lethal. Expression of this transcript in embryonic muscle is also lethal, with above-normal, adult-like levels of editing at sites in a transcript encoding a muscle voltage-gated calcium channel.

Adenosine Deaminase↗

Regenerating good sense: RNA editing and trans splicing in plant mitochondria.

The protein products of plant mitochondrial genes cannot be predicted accurately from genomic sequences, since RNA editing modifies almost all mRNA sequences post-transcriptionally. Furthermore, RNA editing alters leader, trailer and intron sequences, and may be required for processing of these sequences. For several plant mitochondrial transcripts, processing includes trans splicing, which connects exons scattered throughout the genome. The mature transcripts are assembled via split group II intron sequences.

Introns↗

Analysis of silent RNA editing sites in atp6 transcripts of Sorghum bicolor.

We have observed numerous examples of silent or rare non-silent editing sites in the amino-extension and part of the conserved core of mitochondrial atp6 transcripts of Sorghum. In this region of the 1.4-kb atp6-2 mRNA (position 300 to 550) two editing sites, which alter the amino-acid sequence and occur in all cDNAs analysed, were already known, while nine others were found which are silent or occur in a few mRNAs only. Many aspects of RNA editing in the mitochondria of higher plants are still unknown. This includes the influence of genomic background or silent RNA editing. We were interested in the influence of nuclear and mitochondrial backgrounds on RNA editing. Previous preliminary results indicated the possibility of line-specific editing at silent sites. However, a more comprehensive approach gave no consistent evidence for such editing. These results are discussed with respect to their potential impact on the evolution of mitochondrial genes.

Base Sequence↗

Induction of protein translation by ADAR1 within living cell nuclei is not dependent on RNA editing.

Translation of mRNA is usually cytoplasmic. We report that the RNA editing enzyme ADAR1, which catalyzes the deamination of adenosine to inosine in double-stranded RNA substrates, induces translation within the nucleus, possibly at the surface of the nucleolus. This activity does not depend on RNA editing. Two regions within ADAR1 are defined that act independently of each other to induce translation: the first includes the double-stranded RNA binding domains (DRBMs) of ADAR1 while the second maps to the C-terminal portion of the catalytic domain. Point mutations within each domain are identified that reduce nuclear translation; those in the DRBM region are also known to diminish RNA binding. This report adds to the growing functionality ascribed to the nucleus.

3T3 Cells↗

RNA editing of the human serotonin 5-HT2C receptor disrupts transactivation of the small G-protein RhoA.

The human serotonin 5-HT2C receptor undergoes adenosineto-inosine RNA editing at five positions, generating multiple receptor isoforms with altered G-protein coupling properties. In the current study, we demonstrate that RNA editing regulates the pattern of intracellular signaling. The non-edited human 5-HT2C receptor isoform INI activates phospholipase D via the G13 heterotrimer G-protein. We present evidence that transactivation of the small G-protein RhoA is required for phospholipase D activation. In contrast, neither transactivation of RhoA nor phospholipase D activation was detected in cells expressing the fully edited VGV isoform. The ability to activate phospholipase C is also reduced in VGV-expressing cells, but not to the extent found for the phospholipase D signal. We conclude that RNA editing represents a novel mechanism for regulating 5-HT2C receptor signaling to pathways linked to actin cytoskeletal organization and regulated exocytosis.

Enzyme Activation↗

Hepatitis D virus RNA editing is inhibited by a GFP fusion protein containing a C-terminally deleted delta antigen.

During its life cycle, hepatitis D virus (HDV) produces two forms of delta antigen (HDAg), small delta antigen (SDAg) and large delta antigen (LDAg), which differ in their C-terminal 19 amino acids. Host enzymes termed ADARs (adenosine deaminases that act on double-stranded RNA) are required for LDAg production. These enzymes change the stop codon (UAG) of SDAg to a tryptophan codon (UGG). However, the temporal and spatial regulation of HDV RNA editing is largely unknown. In this study, we constructed three GFP fusion proteins containing different lengths of SDAg and characterized their cellular localization and effects on HDV replication. One of these fusion proteins, designated D(1-88)-GFP, inhibited LDAg but not SDAg production, suggesting that D(1-88)-GFP inhibits HDV RNA editing. Two experiments further supported this supposition: (i). RT-PCR analysis combined with NcoI restriction enzyme digestion revealed that HDV RNA editing was reduced by 42% in HeLa-D(1-88)-GFP when compared with HeLa cells; and (ii). the ratio of SDAg/LDAg production from the reporter RNAs was reduced in cells co-transfected with ADAR-expressing and reporter plasmids in the presence of D(1-88)-GFP. Double fluorescence microscopy found that D(1-88)-GFP was either associated with SC-35 or was adjacent to PML (premyelocytic leukaemia antigen) at nuclear speckles, but D(1-88)-GFP was not co-localized with ADAR, which was mainly located in the nucleolus. In situ hybridization showing co-localization of HDV RNA with D(1-88)-GFP at nuclear speckles suggested that HDV RNA editing might occur in the nuclear speckles and require other nuclear factor(s), in addition to ADAR.

Base Sequence↗

Involvement of 5' flanking sequence for specifying RNA editing sites in plant mitochondria.

Unsuccessful insertion of foreign DNA into plant mitochondrial genomes has hindered scientific evaluation of cis-elements needed for RNA editing. Both a normal atp6 gene and a chimeric atp6 sequence are present in rice mitochondria. The chimeric atp6 contains one-half of the normal atp6 sequence in its 5' portion and an unknown sequence in its downstream portion. The C-nucleotide at position 511, located just upstream of the unknown sequence recombined in the chimeric atp6 sequence, is edited, as are other possible editing sites upstream from position 511. We report here that the 5' sequence adjacent to the editing site of atp6 contains cis-information required for RNA editing and that the 3' sequence flanking the editing site provides little contribution to editing-site recognition.

Amino Acid Sequence↗

Subunit 6 of the Fo-ATP synthase complex from cytoplasmic male-sterile radish: RNA editing and NH2-terminal protein sequencing.

RNA editing and NH2-terminal processing of subunit 6 (atp6) of the mitochondrial Fo-ATPase complex has been investigated for the normal (fertile) and Ogura (male-sterile) radish cytoplasms to determine if previously identified differences between the Ogura atp6 locus and its normal radish counterpart are associated with cytoplasmic male sterility. Analysis of cDNA clones from five different sterile and fertile radish lines identified one C-to-U transition, which results in the replacement of a proline with a serine, in several of the lines. No editing of atp6 transcripts was observed in two lines, Scarlet Knight (normal radish) and sterile CrGC15 (Ogura radish). This is the first example of a naturally occurring plant mitochondrial gene that is not edited. The Ogura atp6 polypeptide is synthesized with a predicted NH2-terminal extension of 174 amino acids in contrast to the nine amino acid extension found in normal radish. In spite of the lack of similarity between the two extensions, NH2-terminal sequence analysis indicates that both polypeptides are processed to yield identical core proteins with a serine as the NH2-terminal residue. These results indicate that ATPase subunit 6 is synthesized normally in Ogura radish, and that it is unlikely that the atp6 locus is associated with Ogura cytoplasmic male sterility.

Amino Acid Sequence↗

Messenger RNA editing and the genetic code.

Messenger RNA editing is defined as a process leading to predetermined modifications of the coding region of a primary gene transcript. By this definition, splicing processes are special forms of editing; however, they are not dealt with in this review. Editing processes different from splicing have been defined in mammalian cells, in RNA viruses, and in mitochondria of trypanosomes, higher plants and vertebrates. These post- or co-transcriptional processes involve addition, deletion, or modification-substitution of nucleotides, and represent previously unrecognized mechanisms for altering the coding potential of a gene and for modulating gene expression.

Animals↗