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Probing the function of conserved RNA structures in the 30S subunit of Escherichia coli ribosomes.

Ribosomes play an active role in protein biosynthesis. Ribosomal RNA conformation in ribosomal subunits, intramolecular interactions between different rRNA sequences within the confinement of the particles, and intermolecular interactions are presumed necessary to support efficient and accurate protein synthesis. Here we report an analysis of the disposition of 16S rRNA conserved zones centered about positions 525, 1400, and 1500 in 30S subunits. Complementary oligodeoxyribonucleotides in conjunction with nuclease S1 digestion were used to do this. All of the sequences examined in 30S subunits are accessible to DNA probes of 9 to 12 nucleotide residues in length. However, the kinetic characteristics of the respective DNA interactions with 30S particles vary significantly. In addition to the investigation of normal 30S particles, a four base deletion within the 1400 region of 16S rRNA was analyzed. The deletion was made by using synthetic DNAs to target the deletion site for RNase H digestion. The direct in vitro procedure for manipulating rRNA conserves nucleotide modifications. The alteration causes a significant change in the disposition of 16S rRNA in 30S subunits, suggesting a reduction in the freedom of movement of the altered zone in the particle. In a factor-dependent in vitro protein synthesis system primed with MS2 mRNA and altered 30S subunits, there was a 50% decrease in phage coat protein synthesis. The reduction could be due to a decrease in the rate of translation or premature termination of translation. We present evidence here, based on isotopic studies, which supports the latter possibility.

Base Sequence↗

A role for upstream RNA structure in facilitating the catalytic fold of the genomic hepatitis delta virus ribozyme.

Hepatitis delta virus (HDV) has a circular RNA genome that replicates by a double rolling-circle mechanism. The genomic and antigenomic versions of HDV contain a ribozyme that undergoes cis-cleavage, thereby processing the transcript into unit-length monomers. A genomic HDV transcript containing 30 nucleotides immediately upstream of the cleavage site was found to have attenuated self-cleavage. Structure mapping and site-directed mutagenesis revealed an inhibitory stretch consisting of upstream nucleotides -24 to -15 that forms a long-range pairing, termed Alt 1, with the 3' strand of P2 (P2(3')) located at the very 3'-end of the ribozyme. Two other alternative pairings were found, Alt 2, which involves upstream nucleotide-ribozyme interactions, and Alt 3, which involves ribozyme-ribozyme interactions. Self-cleavage was rescued 2700 to 20,000-fold by adding DNA oligomers, which sequester the -24/-15 inhibitory stretch in trans. Surprisingly, co-transcriptional self-cleavage occurs when the number of upstream nucleotides is increased to 54. Computer prediction and structure mapping support the existence of an unusually stable upstream hairpin involving nucleotides -54 to -18, termed P(-1)/L(-1), which sequesters the majority of the -24/-15 inhibitory stretch in cis. This hairpin is followed by a stretch of single-stranded pyrimidine-rich nucleotides, termed J(-1/1). Sequence comparison suggests that the P(-1)/L(-1)/J(-1/1) motif is conserved among known genomic HDV isolates, and that the J(-1/1) stretch is conserved among antigenomic HDV isolates. Lastly, the secondary structure of the Alt 1-containing ribozyme provides insight into possible folding intermediates of the ribozyme.

Algorithms↗

Mutant U2 snRNAs of Xenopus which can form an altered higher order RNA structure are unable to enter the nucleus.

We studied the nuclear targeting of U snRNAs by microinjection of wild-type and mutant U2 small nuclear RNA transcripts into the cytoplasm of Xenopus oocytes. It has previously been shown that a mutant U2 RNA (delta C) which does not bind certain common U snRNP proteins, some of which carry epitopes recognized by anti-Sm antisera, does not enter the nucleus. We show here that several mutant U2 RNAs which bind to Sm antigens do not enter the nucleus, demonstrating that this RNA-protein interaction is insufficient to produce a nuclear targeting signal. Computer predictions of the secondary structures of the RNAs, derived from minimal energy calculations, show that those which are unable to enter the nucleus have the potential to form an additional secondary structure interaction due to base complementarity between sequences near to their 5' and 3' ends. The data suggest that this structural feature inhibits nuclear targeting.

Animals↗

RNA structure and function in C/D and H/ACA s(no)RNPs.

From archaea to humans, C/D- and H/ACA-type small ribonucleoprotein particles play key roles in crucial RNA processing events. Various such particles are required for pre-rRNA cleavage steps and/or for chemical modification of rRNAs, spliceosomal small nuclear RNAs, tRNAs and perhaps even mRNAs. Each C/D-type particle contains a small RNA possessing conserved C and D, as well as related C' and D', sequence motifs, whereas each H/ACA-type particle contains a small RNA featuring conserved H and ACA sequence elements. Recently published studies highlight the importance of sequence and structural elements of these RNAs in the localization, activity and assembly of the ribonucleoprotein particles. A novel sequence element, the Cajal body box, found at the apex of stem structures within a subset of H/ACA small RNAs, mediates the specific retention of particles containing these elements inside nucleoplasmic Cajal bodies. Two highly conserved elements, the m1 and m2 boxes, have been identified in the 3' stem of the atypical H/ACA snR30/U17 RNAs. These conserved sequence elements are necessary for early pre-rRNA cleavage events and consequently for mature 18S rRNA production. Finally, convincing evidence has been provided that the conserved C and D sequence motifs of C/D-type small RNAs fold into a helix-bulge-helix structure, called a kink-turn, that provides a platform for assembly of C/D-type ribonucleoprotein particles.

Animals↗

RNA structural dynamics: pre-melting and melting transitions in E. coli 5S rRNA.

The temperature dependent transition from duplex to a single strand in E. coli 5S ribosomal RNA is a multistep process, and it involves intermediate states. We have analyzed these structural dynamics by chemical modification of cytidines and by single strand specific nuclease digestions. This combined approach led to the characterization of premelting and melting transitions within individual structural segments of the native macromolecule, which we feel may find general application to the structure of biological polyribonucleotides: 1) G-C base pairs at the termini of helices are relatively unstable and they readily undergo premelting transition. 2) Internal G-U/A-U rich stretches of helices exhibit dynamic premelting properties. 3) Hairpin loops have a relatively stronger destabilizing effect than internal loops. 4) Bulge loops destabilize the neighbouring base pairs. 5) Melting of helical segments occurs starting from the destabilizing structures listed above, preferentially from the helix termini. E. coli 5S rRNA has been shown to adopt different conformations. The presence of urea leads to induction of enhancement in the sensitivity for nuclease S1 at several nucleotide positions. The possibility of structural rearrangements will be discussed.

Base Sequence↗

Flexible regions of RNA structure facilitate co-operative Rev assembly on the Rev-response element.

The oligomerisation of Rev on the Rev-response element (RRE) was studied using a series of model substrates. Only a monomer of Rev is able to bind efficiently to a high affinity site that is flanked by perfect duplex RNA. Addition of a bulge or a second stem structure adjacent to the high affinity site permits the co-operative incorporation of a second Rev molecule to the RNA. Model RREs carrying bulges can bind Rev with a higher degree of co-operativity than the native structure. Oligomerisation was efficient when the bulge was moved to the opposite strand of the duplex, but was severely impaired when the distance between the bulge and the high affinity site was increased by more than 8 bp. Rev can oligomerise at either end of the RNA-protein complex formed at the high affinity site; when the duplex flanking a high affinity site is disrupted by a bulge or a stem, oligomerisation proceeds in the direction of the disruption regardless of the orientation of the high affinity site. The results are consistent with the "molecular rheostat" model for RRE function, which suggests that Rev binding to the RRE is highly distributive and provides a sensitive measurement of intracellular Rev concentrations.

Base Sequence↗

Crystal structure of Escherichia coli RNase D, an exoribonuclease involved in structured RNA processing.

RNase D (RND) is one of seven exoribonucleases identified in Escherichia coli. RNase D has homologs in many eubacteria and eukaryotes, and has been shown to contribute to the 3' maturation of several stable RNAs. Here, we report the 1.6 A resolution crystal structure of E. coli RNase D. The conserved DEDD residues of RNase D fold into an arrangement very similar to the Klenow fragment exonuclease domain. Besides the catalytic domain, RNase D also contains two structurally similar alpha-helical domains with no discernible sequence homology between them. These closely resemble the HRDC domain previously seen in RecQ-family helicases and several other proteins acting on nucleic acids. More interestingly, the DEDD catalytic domain and the two helical domains come together to form a ring-shaped structure. The ring-shaped architecture of E. coli RNase D and the HRDC domains likely play a major role in determining the substrate specificity of this exoribonuclease.

Amino Acid Motifs↗

Replication control of plasmid R1: disruption of an inhibitory RNA structure that sequesters the repA ribosome-binding site permits tap-independent RepA synthesis.

The replication frequency of plasmid R1 is controlled by an antisense RNA, CopA, that inhibits the synthesis of the replication initiator protein, RepA, at the post-transcriptional level. This inhibition is indirect and affects translation of a leader peptide reading frame (tap). Translation of tap is required for repA translation (Blomberg et al., 1992). Here we asked whether an RNA stem-loop sequestering the repA ribosome-binding site blocks tap translation-independent repA expression. Destabilization of this structure resulted in tap-independent RepA synthesis, concomitant with a loss of CopA-mediated inhibition; thus, CopA acts at the level of tap translation. Structure probing of RepA mRNAs confirmed that the introduced mutations induced a local destabilization in the repA ribosome-binding site stem-loop. An increased spacing between the repA Shine-Dalgarno region and the start codon permitted even higher repA expression. In Incl alpha/IncB plasmids, an RNA pseudoknot acts as an activator for rep translation. We suggest that the regulatory pathway in plasmid R1 does not involve an activator RNA pseudoknot.

Bacterial Proteins↗

Messenger RNA structure participating in the initiation of synthesis of cucumber mosaic virus coat protein.

The sequence of the 5'-terminal 106 nucleotides of cucumber mosaic virus (strain Y) RNA 4, the mRNA coding for viral coat protein, has been determined. The first AUG was located at 77 nucleotides from the 5'-terminus and was confirmed to be an initiation codon by analysis of the N-terminal amino acid sequence of the protein. The nucleotide sequence (positions 77-106) beyond the AUG codon predicted the sequence of ten amino acids corresponding to the N-terminal region of the protein, which exactly matched the determined amino acid sequence containing an acetyl methionine as the N-terminal amino acid. The distance of the initiation codon AUG from the cap structure was 76 nucleotides and the longest among the mRNAs for coat protein of plant viruses so far reported (9-36 nucleotides). This noncoding region is rich in U residues (40%) and the number of G residues (21 nucleotides) is the largest among these mRNAs (usually 1 or 2 residues). A possible secondary structure is postulated for the region, which might be implicated in efficient translation of the RNA 4 in vivo.

Amino Acid Sequence↗

Altered RNA structural constituents in aging and vitamin E deficiency.

Ribonucleoprotein (RNP) containing structural constituents in hepatocyte nuclei of adult, old and adult, vitamin E-deficient rats were investigated to assess the effect of aging and increased oxidative stress on nuclear functions. Fibrillar centres (FCs), dense fibrillar (DFC) and granular (GC) components of nucleoli as well as perichromatin granules (PGs) in the nucleoplasm were preferentially evidenced by the ethylenediaminetetracetic acid (EDTA) method and measured by computer-assisted morphometric procedures. FCs size and the percentage of nucleolar surface occupied by FCs significantly decreased during aging and vitamin E-deficiency. The percentage of nucleolar surface occupied by GC and DFC remained unchanged in adult and old rats, but in vitamin E-deficient animals GC increased and DFC decreased significantly. PG density significantly changed in aging and vitamin E-deficiency. Functionally, FCs, DFC and GC constitute sites of transcription and processing of ribosomal RNA while PGs are involved in intranuclear storage and transport of messenger RNA. Thus, the present structural changes during aging and vitamin E-deficiency correlate with a decay of nuclear responsiveness to cellular metabolic needs. Considering the antioxidant action of alpha-tocopherol, our data lend further support to the importance of free radical production and control in the aging process.

Aging↗

Recurrent structural RNA motifs, Isostericity Matrices and sequence alignments.

The occurrences of two recurrent motifs in ribosomal RNA sequences, the Kink-turn and the C-loop, are examined in crystal structures and systematically compared with sequence alignments of rRNAs from the three kingdoms of life in order to identify the range of the structural and sequence variations. Isostericity Matrices are used to analyze structurally the sequence variations of the characteristic non-Watson-Crick base pairs for each motif. We show that Isostericity Matrices for non-Watson-Crick base pairs provide important tools for deriving the sequence signatures of recurrent motifs, for scoring and refining sequence alignments, and for determining whether motifs are conserved throughout evolution. The systematic use of Isostericity Matrices identifies the positions of the insertion or deletion of one or more nucleotides relative to the structurally characterized examples of motifs and, most importantly, specifies whether these changes result in new motifs. Thus, comparative analysis coupled with Isostericity Matrices allows one to produce and refine structural sequence alignments. The analysis, based on both sequence and structure, permits therefore the evaluation of the conservation of motifs across phylogeny and the derivation of rules of equivalence between structural motifs. The conservations observed in Isostericity Matrices form a predictive basis for identifying motifs in sequences.

Base Pairing↗

Transfer RNA structure and coding specificity. I. Evidence that a D-arm mutation reduces tRNA dissociation from the ribosome.

The mutation G to A24 in the D-arm of Escherichia coli tRNA(Trp) or its UAG suppressor derivative Su7 has two known phenotypes: (1) an altered or relaxed coding specificity at the codon third position; and (2) partial rescue of an anticodon loop mutation. In order to study the mechanism responsible for these effects we constructed, by in vitro mutagenesis, a series of tRNAs with alterations in the anticodon loop or at the third position of the anticodon. Evaluation of the effects of the A24 mutation on the in vivo ribosomal activity of these tRNAs leads us to conclude that the mutation reduces the rate at which the ribosome is able to reject tRNAs that are structurally defective or non-cognate. The apparent interaction of the D-arm mutation with the anticodon and anticodon loop is thus primarily kinetic, rather than through the structure of the tRNA. The Appendix describes the calculation of tRNA ribosomal activity from in vivo measurement of suppression efficiency.

Codon↗

Transfer RNA structure and coding specificity. II. A D-arm tertiary interaction that restricts coding range.

We investigated the structural basis of the kinetic effect on coding specificity by the D-arm mutant (G24 to A) of Escherichia coli tRNATrp. A set of tRNA genes with structural alterations in the D-arm was constructed by site-directed mutagenesis in vitro, and we determined the in vivo translational activities of these tRNAs. Our results suggest that a hydrogen-bond donor in the major groove of the D-helix at position 24 is required for the expansion of tRNA wobble coding specificity. From inspection of tRNA crystal structure, we identified a potential new tertiary pairing of base 24 with the base at position 9 (this base links the acceptor and D-stems). We constructed tRNAs with mutations at position 9 and showed that the phenotypes of position 11-24 D-arm mutants are indeed dependent on the identity of base 9. Our analysis of the effects of these mutations on the interactions of tRNA with the ribosome and with aminoacyl-tRNA synthetase suggests that the conformation or conformational dynamics of the middle of the tRNA molecule alters the kinetics of the interaction with the ribosomal coding site. The 9-23 and putative 9-24 tertiaries, and perhaps other normal tertiary interactions in this region, modulate these kinetics to increase or decrease coding specificity.

Amino Acyl-tRNA Synthetases↗

Silkmoth chorion antisense RNA. Structural characterization, developmental regulation and evolutionary conservation.

Choriogenic follicular cells of the silkmoth Bombyx mori contain significant quantities of antisense RNA transcribed from chorion genes. Antisense RNA derived from a chorion gene with a high content of cysteine, HcB.12, was characterized in detail. The antisense transcripts are initiated downstream from the 3' end of HcB.12 mRNA and extend over 75% of the length of the gene, comprising its entire second exon and part of its intervening sequence. The antisense RNA is devoid of any significant open reading frames and is not polyadenylated. These features, combined with the presence of specific sequence motifs within its transcribed and upstream region, suggest that antisense RNA may be transcribed by RNA polymerase III. Chorion antisense RNA is detectable only in choriogenic follicular cells and appears to be co-ordinately regulated with chorion mRNA. Its cytoplasmic accumulation during choriogenesis parallels that of the corresponding mRNA. Although chorion mRNA is at least five times more abundant than antisense RNA, the latter is present as a single-stranded entity in follicular cytoplasm but can form perfect duplexes with its mRNA complement upon annealing in vitro. The possible involvement of antisense RNA transcription in the pathway that controls the programmed expression of chorion genes at the level of transcription initiation or post-transcriptional processing is discussed.

Animals↗

Dynamics of ribosomal RNA structure.

The structural dynamics of ribosomal 5S RNAs have been investigated by probing single strandedness through enzymatic cleavage and chemical modification. This comparative study includes 5S rRNAs from E. coli, B. stearothermophilus, T. thermophilus, H. cutirubrum, spinach chloroplast, spinach cytomplasm, and Artemia salina. The structural studies support a unique tertiary interaction in eubacterial 5S rRNAs, involving nucleotides around positions 43 and 75. In addition long range structural effects are demonstrated in E. coli 5S rRNA due to the conversion of C to U at position 92.

Base Sequence↗

Hydrolytic cleavage by a group I intron ribozyme is dependent on RNA structures not important for splicing.

DiGIR2 is the group I splicing-ribozyme of the mobile twin-ribozyme intron Dir.S956-1, present in Didymium nuclear ribosomal DNA. DiGIR2 is responsible for intron excision, exon ligation, 3'-splice site hydrolysis, and full-length intron RNA circle formation. We recently reported that DiGIR2 splicing (intron excision and exon ligation) competes with hydrolysis and subsequent full-length intron circularization. Here we present experimental evidence that hydrolysis at the 3'-splice site in DiGIR2 is dependent on structural elements within the P9 subdomain not involved in splicing. Whereas the GCGA tetra-loop in P9b was found to be important in hydrolytic cleavage, probably due to tertiary RNA-RNA interactions, the P9.2 hairpin structure was found to be essential for hydrolysis. The most important positions in P9.2 include three adenosines in the terminal loop (L9.2) and a consensus kink-turn motif in the proximal stem. We suggest that the L9.2 adenosines and the kink-motif represent key regulatory elements in the splicing and hydrolytic reaction pathways.

Hydrolysis↗