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Liver disintegration in the mouse embryo caused by deficiency in the RNA-editing enzyme ADAR1.

ADAR1 (adenosine deaminase acting on RNA-1) is widely expressed in mammals, but its biological role is unknown. We show here by gene targeting that ADAR1 selectively edits in vivo two of five closely spaced adenosines in the serotonin 5-hydroxytryptamine subtype 2C receptor pre-mRNA of nervous tissue; and hence, site-selective adenosine-to-inosine editing is indeed a function of ADAR1. Remarkably, homozygosity for two different null alleles of ADAR1 caused a consistent embryonic phenotype appearing early at embryonic day 11 and leading to death between embryonic days 11.5 and 12.5. This phenotype manifests a rapidly disintegrating liver structure, along with severe defects in definitive hematopoiesis, encompassing both erythroid and myeloid/granuloid progenitors as well as spleen colony-forming activity from the aorta-gonad-mesonephros region and fetal liver. Probably as a consequence of these developmental impairments, ADAR1-deficient embryonic stem cells failed to contribute to liver, bone marrow, spleen, thymus, and blood in adult chimeric mice. Thus, ADAR1 subserves critical steps in developing non-nervous tissue, which are likely to include transcript editing.

Adenosine Deaminase↗

The RNA editing process in Trypanosoma brucei.

Twelve mitochondrial mRNAs are edited in Trypanosoma brucei, nine extensively, by addition and removal of uridines. The accumulation of the edited RNAs is regulated during the life cycle. Hundreds of different gRNAs, encoded three or four per minicircle, specify the editing and minicircle content accounts for variation in editing among species and in mutants. The current understanding of the process of gRNA utilization, the editing mechanism and the editing machinery is discussed.

Animals↗

An anthropoid-specific locus of orphan C to U RNA-editing enzymes on chromosome 22.

The cytidine (C) to uridine (U) editing of apolipoprotein (apo) B mRNA is mediated by tissue-specific, RNA-binding cytidine deaminase APOBEC1. APOBEC1 is structurally homologous to Escherichia coli cytidine deaminase (ECCDA), but has evolved specific features required for RNA substrate binding and editing. A signature sequence for APOBEC1 has been used to identify other members of this family. One of these genes, designated APOBEC2, is found on chromosome 6. Another gene corresponds to the activation-induced deaminase (AID) gene, which is located adjacent to APOBEC1 on chromosome 12. Seven additional genes, or pseudogenes (designated APOBEC3A to 3G), are arrayed in tandem on chromosome 22. Not present in rodents, this locus is apparently an anthropoid-specific expansion of the APOBEC family. The conclusion that these new genes encode orphan C to U RNA-editing enzymes of the APOBEC family comes from similarity in amino acid sequence with APOBEC1, conserved intron/exon organization, tissue-specific expression, homodimerization, and zinc and RNA binding similar to APOBEC1. Tissue-specific expression of these genes in a variety of cell lines, along with other evidence, suggests a role for these enzymes in growth or cell cycle control.

APOBEC-1 Deaminase↗

A transition state analogue for an RNA-editing reaction.

Deamination at C6 of adenosine in RNA catalyzed by the ADAR enzymes generates inosine at the corresponding position. Because inosine is decoded as guanosine during translation, this modification can lead to codon changes in messenger RNA. Hydration of 8-azanebularine across the C6-N1 double bond generates an excellent mimic of the transition state proposed for the hydrolytic deamination reaction catalyzed by ADARs. Here, we report the synthesis of a phosphoramidite of 8-azanebularine and its use in the preparation of RNAs mimicking the secondary structure found at a known editing site in the glutamate receptor B subunit pre-mRNA. The binding properties of analogue-containing RNAs indicate that a tight binding ligand for an ADAR can be generated by incorporation of 8-azanebularine. The observed high-affinity binding is dependent on a functional active site, the presence of one, but not the other, of ADAR2's two double-stranded RNA-binding motifs (dsRBMs), and the correct placement of the nucleoside analogue into the sequence/structural context of a known editing site. These results advance our understanding of substrate recognition during ADAR-catalyzed RNA editing and are important for structural studies of ADAR.RNA complexes.

Adenosine Deaminase↗

RNA editing in trypanosomes: is there a message?

The uridine sequence of mitochondrial transcripts of trypanosomes sometimes differs from the one predicted by the genome. The question is whether the RNA editing processes that generate these deviating U sequences operate within the principles of the 'central dogma' of molecular genetics. The answer is probably yes.

Animals↗

EndoV does not measurably affect TadA-dependent A-to-I RNA editing in Escherichia coli under exponential-growth conditions in rich medium.

Adenosine-to-inosine (A-to-I) mRNA editing changes the genetic information post-transcriptionally and was only recently reported to occur in bacteria. Here, we examined whether endonuclease V (EndoV; encoded by nfi) cleaves inosine-containing RNAs in vivo and thereby influences the abundance and fate of A-to-I-edited mRNAs in Escherichia coli. We generated an nfi loss-of-function mutant carrying a premature stop codon and performed RNA sequencing alongside the isogenic wild-type strain. We observed that global and site-specific editing occurrence or levels in both mRNAs and tRNAs were indistinguishable between strains. Moreover, overexpression of EndoV did not affect the number of edited sites, motif enrichment, or editing levels compared with a control strain overexpressing mCherry. Our findings suggest that, in contrast to human EndoV, bacterial EndoV does not regulate the steady-state pool of edited mRNAs in E. coli under nutrient-rich, exponential-growth conditions in vivo.IMPORTANCEAdenosine-to-inosine (A-to-I) mRNA editing is an emerging regulatory layer in bacteria, but the factors that act on edited transcripts are largely unknown. Endonuclease V (EndoV) was a prime candidate because it cleaves inosine-containing nucleic acids and can act on inosine-containing RNA in vitro. By combining loss-of-function and overexpression of EndoV with genome-wide RNA editing measurements, we show that EndoV does not measurably influence TadA-dependent A-to-I mRNA editing in Escherichia coli under standard laboratory conditions. This negative result is important because it rules out a natural effector candidate and redirects attention to other bacterial pathways that may process edited RNAs. Our work, therefore, sharpens mechanistic models for bacterial RNA editing and helps focus future searches for its regulators and physiological roles.

Escherichia coli↗

Base changes at positions 1014 and 578 of delta virus RNA in Greek isolates maintain base pair in rod conformation with efficient RNA editing.

Analysis of delta hepatitis virus (HDV) genomic RNA, derived from Greek patients from an area where HDV infection is associated with low pathogenicity, is described. In all isolates sequenced, which included 18/18 HDV cDNA clones derived from 6 different patients, irrespective of pathogenicity, a base change (T-->C) was found in position 1014. No significant differences in editing efficiency were found between isolates from inactive and active forms of the disease, although L-antigen was present in low to undetectable levels in the serum of 5/6 patients. An additional mutation was identified at position 578 (A-->G), which reestablishes the canonical base pair G/C with the mutated 1014 when the genome adopts the "rod-like" conformation. This finding supports the presence of this genome conformation in vivo and the requirement for the Watson-Crick base pair 1014/578. A mutation, found at amino acid position 170 (serine-->asparagine), appears to segregate with patients with inactive disease.

Amino Acid Sequence↗

Paramyxovirus RNA editing and the requirement for hexamer genome length.

Paramyxoviruses cotranscriptionally edit their P gene mRNA by the programmed insertion of G residues into a short G run contained within a larger purine run, via pseudo-templated transcription. The templates for paramyxovirus transcription are genome nucleocapsids in which each nucleoprotein subunit is associated with 6 nt, and only genomes whose lengths are multiples of 6 are found naturally or are replicated efficiently in transfected cell systems. We have examined the effect of varying total genome length on the frequency and number of insertions into the mRNA editing site in a transfected cell system, using constructs that generate mini-genome analogues. We found that, as long as the purine run sequence and the region immediately upstream were unaltered, editing occurred during mRNA synthesis independent of the precise length of the minigenome. However, when mini-genome constructs whose lengths were not multiples of 6 were used, insertions (or deletions) occurred during antigenome synthesis within the purine run, which strikingly restored the hexamer length. Genome length correction due to changes in the antigenome purine run length occurred only when the mini-genome was not a multiple of 6, and these changes were only poorly affected by mutations in the mRNA editing site and the region immediately upstream. Our results suggest that the mRNA editing site is a natural hotspot for viral polymerase slippage during genome replication, and that this site serves the dual and complementary function of maintaining hexamer genome length. The unusual requirement of paramyxoviruses for genomes of precise hexamer length may have evolved to maintain genome stability against insertions in the mRNA editing site during replication.

Base Composition↗

The apolipoprotein B messenger RNA editing enzyme.

The editing of apolipoprotein (apo)B messenger RNA (mRNA) involves a novel C to U modification, which creates an in-frame stop-translation codon, thereby generating the carboxyl-terminal of apoB48. The 27 kDa catalytic subunit of the editing enzyme has been cloned and established to be a zinc-containing cytidine deaminase. The catalytic subunit is guided to the editing site by a second targeting subunit or subunits. A candidate for the targeting subunit is a 60 kDa protein that can be UV crosslinked to the sequence UGAU, which is part of a motif downstream of the editing site that is essential for editing.

Amino Acid Sequence↗

Guide RNA molecules not engaged in RNA editing form ribonucleoprotein complexes free of mRNA.

Mitochondrial pre-mRNAs in kinetoplastid organisms undergo uridine additions and deletions after transcription, a phenomenon termed kRNA editing. The reaction involves small, mitochondrial DNA transcripts, so called guide RNAs which provide the editing information via base pairing to the pre-mRNAs and furthermore may act as the U-nucleotide donors. Guide RNAs are not maintained as free molecules within the mitochondrial organelle, instead form several high molecular weight ribonucleoprotein complexes. Here we report the identification of two new gRNA containing RNP complexes, 8S and 15S in size, that only assemble with upstream gRNA molecules which require editing of their cognate pre-mRNA before they can base pair. The two complexes do not contain pre-mRNA molecules and the 8S RNP can be assembled in vitro. It contains two polypeptides under these conditions with apparent molecular weights of 90 and 21 kDa that can be cross-linked to the gRNA molecule. Our observation suggests the existence of structurally simple gRNA/protein complexes that might function as building blocks for the assembly of a high molecular weight editing machinery.

Animals↗