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A trans-spliced leader RNA sequence in plant parasitic nematodes.

A trans-spliced leader gene has been identified in the genomes of the potato cyst nematodes Globodera rostochiensis and G. pallida. The gene contains a 22-nt sequence identical to that of the leader sequence of Caenorhabditis elegans, a consensus splice donor site and a putative Sm antigen binding site. In common with other nematodes the spliced leader gene is present in tandem repeating units together with the 5S ribosomal RNA gene. Variation in the length of the intergenic spacer region has permitted the design of polymerase chain reaction primers which can be used to reveal repeat length variants diagnostic for G. rostochiensis and G. pallida and the Pa1 pathotype of G. pallida.

Animals↗

Spliced leader RNA gene promoter sequence heterogeneity in CL-Brener Trypanosoma cruzi reference strain.

Trypanosoma cruzi is divided into two phylogenetic lineages, T. cruzi I and T. cruzi II, which contain different spliced leader (SL) RNA gene promoter sequences: Class I SL gene promoter sequences are found in T. cruzi II, and Class II sequences in T. cruzi I. We analysed different SL RNA promoter sequences from CL-Brener reference strain, belonging to T. cruzi II lineage, and detected sequences that differed within the -80/+1 highly conserved region. Indeed, many of these divergent SL promoters present features of T. cruzi I promoters. Some of these sequences were grouped into the T. cruzi I sequences clade by Bayesian analysis. The results presented herein show that sequence heterogeneity in SL RNA gene promoter not only exists between T. cruzi strains but also within CL-Brener strain. These CL-Brener "T. cruzi I-like" sequences could be considered a molecular trace of a hybrid origin of the SL RNA gene and a new evidence for the presence of sequences of T. cruzi I origin into a T. cruzi II strain. The possible origins of these sequences are discussed.

Animals↗

Developmental regulation of spliced leader RNA gene in Leishmania donovani amastigotes is mediated by specific polyadenylation.

Leishmania cycles between the insect vector and its mammalian host undergoing several important changes mediated by the stage-specific expression of a number of genes. Using a genomic differential screening approach, we isolated differentially expressed cosmid clones carrying several copies of the mini-exon gene. We report that the spliced leader (SL) RNA, essential for the maturation of all pre-mRNAs by trans-splicing, is developmentally regulated in Leishmania donovani amastigotes and that this regulation is rapidly induced upon parasite growth under acidic conditions. Stage-specific regulation of the SL RNA is associated with the expression of a larger approximately 170-nucleotide transcript that bears an additional 15-nucleotide sequence at its 3'-end and is polyadenylated in contrast to the mature SL RNA. The poly(A)+ SL RNA represents 12-16% of the total SL transcript synthesized in amastigotes and is 2.5-3-fold more stable than the poly(A)- transcript. The poly(A)+ SL transcript is synthesized specifically from one class of the genomic mini-exon copies. Polyadenylation of the SL RNA may control the levels of the SL mature transcript under amastigote growth and may represent an additional step in the gene regulation process during parasite differentiation.

Animals↗

A new member of a family of site-specific retrotransposons is present in the spliced leader RNA genes of Trypanosoma cruzi.

A new member of a family of site-specific retrotransposons is described in the New World trypanosome Trypanosoma cruzi. This element, CZAR (cruzi-associated retrotransposon), resembles two previously described retrotransposons found in the African trypanosome T. brucei gambiense and the mosquito trypanosomatid Crithidia fasciculata in specifically inserting between nucleotides 11 and 12 of the highly conserved 39-mer of the spliced leader RNA (SL-RNA) gene. CZAR is similar in overall organization to the other two SL-RNA-associated elements. It possesses two potential long open reading frames which resemble the gag and pol genes of retroviruses. In the pol open reading frame, all three elements contain similarly arranged endonuclease domains and share extensive amino acid homology in the reverse transcriptase region. All are associated with the SL-RNA gene locus and are present in low copy numbers. They do not appear to have 5' truncated versions. All three retrotransposons are otherwise quite distinct from one another, with no significant overall amino acid homology. The presence of such retroelements inserted into the identical site within SL-RNA gene sequences in at least three evolutionarily distant trypanosomatid species argues for a functional role. Because these elements appear to have a precise target site requirement for integration, we refer to them as SL siteposons.

Amino Acid Sequence↗

A family of target site-specific retrotransposons interrupts spliced leader RNA genes in trypanosomatids.

Retrotransposons are mobile genetic elements that have been found in almost every genome. Because they do not code for any coat protein sequences, it is believed that they have lost the ability to maintain an extracellular life cycle yet they share many other gene homologies with retroviral genomes. Their replication involves an RNA intermediate and the activity of the reverse-transcriptase enzyme for which they code. Although the majority of these elements are promiscuous in their insertion, there are a few examples that integrate into specific target sites. One such integration site-specific element interrupts the spliced leader RNA genes of organisms of several genera within the family Trypanosomatidae. These elements constitute a highly related family of sequences that most likely have evolved through a common ancestor.

Amino Acid Sequence↗

Characterization of a multisubunit transcription factor complex essential for spliced-leader RNA gene transcription in Trypanosoma brucei.

In the unicellular human parasites Trypanosoma brucei, Trypanosoma cruzi, and Leishmania spp., the spliced-leader (SL) RNA is a key molecule in gene expression donating its 5'-terminal region in SL addition trans splicing of nuclear pre-mRNA. While there is no evidence that this process exists in mammals, it is obligatory in mRNA maturation of trypanosomatid parasites. Hence, throughout their life cycle, these organisms crucially depend on high levels of SL RNA synthesis. As putative SL RNA gene transcription factors, a partially characterized small nuclear RNA-activating protein complex (SNAP(c)) and the TATA-binding protein related factor 4 (TRF4) have been identified thus far. Here, by tagging TRF4 with a novel epitope combination termed PTP, we tandem affinity purified from crude T. brucei extracts a stable and transcriptionally active complex of six proteins. Besides TRF4 these were identified as extremely divergent subunits of SNAP(c) and of transcription factor IIA (TFIIA). The latter finding was unexpected since genome databases of trypanosomatid parasites appeared to lack general class II transcription factors. As we demonstrate, the TRF4/SNAP(c)/TFIIA complex binds specifically to the SL RNA gene promoter upstream sequence element and is absolutely essential for SL RNA gene transcription in vitro.

5' Untranslated Regions↗

Trypanosomatid biodiversity in Costa Rica: genotyping of parasites from Heteroptera using the spliced leader RNA gene.

The biodiversity of insect trypanosomes is largely unknown, resulting in significant gaps in the understanding of pathogen evolution. A culture-independent preliminary survey of trypanosomatid fauna was conducted for the parasites of Heteroptera (Hemiptera) from several localities in Costa Rica. Trypanosomatid infections were detected by light microscopy of smeared gut contents. Out of 257 insects representing 6 families, infections were found in 62 cases; cultures were obtained for 29 new isolates. Gut material from infected hosts was preserved in the field using an SDS-EDTA buffer solution for subsequent DNA extraction in the laboratory. PCR amplification of the trypanosomatid-specific spliced leader (SL) RNA gene repeats was successful for 60 field samples. Eighteen distinct SL RNA typing units were identified in a set of 28 samples analysed in detail. Cluster analysis indicated that these typing units were unique and thus could represent new species and, in some cases, new genera. This study reveals only a minor fraction of the trypanosomatid biodiversity, which is anticipated to be high.

Animals↗

In vitro capping in Trypanosoma cruzi identifies and shows specificity for the spliced leader RNA and U-RNAs.

Messenger RNA maturation in trypanosomes requires a trans-splicing event in which a capped 39 nucleotide leader sequence, the spliced leader (SL), from the 5' terminus of a small RNA (SL-RNA) is joined to the 5' termini of protein coding gene transcripts. We have developed nuclear extracts from Trypanosoma cruzi that label three small endogenous RNAs in the presence of [alpha-32P]GTP. Herein, we have characterized this labelling as 5' capping and shown that the capping activity exhibits an unusual ATP dependence. Moreover, partial sequence analysis identified the three cap-labelled RNAs as the T. cruzi SL-RNA, and two U-RNAs previously uncharacterized in T. cruzi, U2 and Ux. Finally, the capping reaction in the T. cruzi extracts showed apparent specificity for these RNAs--other endogenous or exogenous transcripts were not capped. The apparent specificity of this in vitro capping activity closely reflects the in vivo requirements; i.e., only the SL- and U-RNAs need to be capped since mature mRNAs are capped via trans-splicing. These observations are consistent with the hypothesis that one of the functions of trans-splicing is to supply 5' caps to mature trypanosome mRNAs.

Adenosine Triphosphate↗

Spliced leader RNA sequences can substitute for the essential 5' end of U1 RNA during splicing in a mammalian in vitro system.

L. collosoma or C. elegans SL RNA sequences joined to an adenovirus intron and 3' exon are spliced highly efficiently and accurately in HeLa nuclear extract. After inactivation of U1 snRNPs using RNAase H and a deoxyoligonucleotide complementary to the first 12 nucleotides of U1, splicing of SL RNA-containing constructs continues undiminished, whereas control substrates no longer splice. Since neither binding of U1 snRNPs nor inhibition of splicing is detected using anti-(U1)RNP antibodies, splicing of SL RNA-containing constructs may be entirely U1 snRNP independent. Analyses of altered L. collosoma constructs revealed that the sequence surrounding the 5' splice site is not sufficient to confer U1-independent splicing; the smallest U1-independent region identified so far retains only the first stem-loop of the SL RNA. That sequences responsible for recognition of the 5' splice site can be relocated within the splicing substrate itself reinforces the similarity between group II self-splicing and spliceosome-mediated pre-mRNA splicing.

Animals↗

Characterization and expression of a spliced leader RNA in the parasitic nematode Ascaris lumbricoides var. suum.

The parasitic nematode Ascaris spp. contains a 22-nucleotide spliced-leader (SL) sequence identical to the trans-SL previously described in Caenorhabditis elegans and other nematodes. The SL comprises the first 22 nucleotides of a approximately 110-base RNA and is transcribed by RNA polymerase II. The SL RNA contains a trimethylguanosine cap and a consensus Sm binding site. Furthermore, the Ascaris SL RNA has the potential to adopt a secondary structure which is nearly identical to potential secondary structures of similar SL RNAs in C. elegans and Brugia malayi.

Animals↗

Leishmania mexicana amazonensis: effect of heat shock on the spliced leader RNA and its ribonucleoprotein particle SL RNP.

Trypanosomatid parasites of the genus Leishmania experience a temperature shift from 22-38 degrees C to 33-37 degrees C while being transmitted from the invertebrate vector to the mammalian host. Expression of many protein-coding genes in protozoan parasites that cycle between two hosts have been shown to be thermosensitive, and temperature changes most probably serve as a major regulatory factor during stage differentiation. We present here our studies on effects of physiological temperature shift on the steady-state and nascent synthesis of the spliced leader SL RNA, as well as on its small RNP particle, SL RNP. Northern blot analysis showed no significant changes in the steady-state level of SL RNA at elevated temperatures. Neither were any alterations detected at the two different temperatures in nascent transcription of the SL RNA gene, examined in cells made permeable by treatment with lysolecithin. Fractionation of cell extracts on Cs2SO4 gradients indicated that temperature elevation led to changes in SL RNP particles. Alterations in these particles upon heat shock were also observed by separation on polyacrylamide gels, but only in the presence of urea, indicating that the differences caused by elevation of temperature were revealed exclusively under stringent fractionation conditions.

Animals↗

Trypanosoma cruzi strains partition into two groups based on the structure and function of the spliced leader RNA and rRNA gene promoters.

We have previously identified a major proximal sequence element (PSE) responsible for transcription of the spliced leader (SL) gene from Trypanosoma cruzi strain CL, and showed that the sequence encompassing this PSE exhibits approximately 30% divergence between two major groups of T. cruzi isolates, but strong conservation within the groups. In this report, we show that the SL RNA gene promoter from the CL strain (group I) is efficiently expressed only in T. cruzi isolates from group I. Similarly, the sequence of the approximately 643 bp promoter region of the T. cruzi rRNA is strongly conserved within, but diverged approximately 20% between, the two groups. Reporter constructs driven by the rRNA promoter sequences from group I strains are strongly expressed after electroporation into other group I strains, but not expressed in group II strains. In contrast, constructs bearing rRNA promoter sequences from group II strains are active in strains from both groups. Phylogenetic analyses performed with both the rRNA and the SL RNA gene promoter sequences yielded similar trees, and these trees strongly reinforce the partitioning of known T. cruzi into two major groups that parallel the observed functional specificity of the promoters. Given the well-documented species specific pattern of both rRNA promoters and PSEs in higher eukaryotes, these results suggest an ancient evolutionary divergence among organisms currently classified as T. cruzi.

Animals↗

In Euglena, spliced-leader RNA (SL-RNA) and 5S rRNA genes are tandemly repeated.

In Euglena gracilis, a 26 nucleotide leader sequence (spliced leader sequence = SL) is transferred by trans-splicing to the 5' end of a vast majority of cytoplasmic mRNAs (8). The SL originates from the 5' extremity of a family of closely related snRNAs (SL-RNAs) which are about 100 nucleotide long. In this paper we present the nucleotide sequences of two SL-RNA genes, confirming the sequences previously established by sequencing purified SL-RNAs. Although some SL-RNA genes are dispersed throughout the genome, we show that the majority of SL-RNA genes are located on 0.6 kb repeated units which also encode the cytoplasmic 5S rRNA. We estimate that the copy number of these repeated units is about 300 per haploid genome. The association of SL-RNA and 5S rRNA genes in tandemly repeated units is also found in nematodes but paradoxically does not exist in trypanosomes which are phylogenically much closer to Euglena. We also show that a high number of sequences analogous to the 26 nucleotide SL are dispersed throughout the genome and are not associated with SL-RNAs.

Animals↗

Cloning and characterization of a Leishmania gene encoding a RNA spliced leader sequence.

Recent studies on leishmania enriettii tubulin mRNAs revealed a 35 nucleotide addition to their 5' end. The gene that codes for this 35 nucleotide leader sequence has now been cloned and sequenced. In the Leishmania genome, the spliced leader gene exists as a tandem repeat of 438 bases. There are approximately 150 copies of this gene comprising 0.1% of the parasite genome. This gene codes for a 85 nucleotide transcript that contains the spliced leader at its 5' end. The 35 nucleotide sequence and the regions immediately 5' and 3' to it are highly conserved across trypanosomatids. We have detected a RNA molecule that is a putative by-product of the processing reaction in which the 35 nucleotide spliced leader has been transferred to mRNA. We suggest that this molecule is the remnant of the spliced leader transcript after removal of the 35 nucleotide spliced leader.

Animals↗

Structure and expression of novel spliced leader RNA genes in Caenorhabditis elegans.

Approximately 25% of Caenorhabditis elegans genes are organized as operons. Polycistronic transcripts are converted to monocistronic mRNAs by 3' cleavage/polyadenylation and 5' trans-splicing with untranslated, 5' termini of mRNAs encoded by downstream genes in operons are acceptors for > or = 7 recently discovered "novel" SLs and a classical SL (SL2). Diversity in SL exons is now partly explained by the discovery and characterization of five novel genes that encode C. elegans SL RNAs. These novel SL RNAs contain a 22- or 23-nucleotide SL followed by conserved splice donor and downstream sequences that are essential for catalysis of trans-splicing reactions. The SL3 alpha, SL4, and SL5 RNA genes are tightly clustered on chromosome III; their 114-nucleotide transcripts deliver three distinct SLs to mRNAs. The SL3 beta and SL3 gamma RNA genes are on chromosome I, but are not tightly linked. SL RNAs 3 alpha, 3 beta, and 3 gamma provide identical 5' leader exons, although their 3' sequences diverge. Transcription of SL 3-5 RNA genes appears to be driven by flanking DNA elements that are homologous with segments of promoters for the C. elegans SL2 RNA and small nuclear RNA genes. RNase protection assays demonstrated that novel SL RNAs are transcribed in vivo and accumulate in the poly(A-) RNA pool. SL3 exons are transferred to mRNAs as frequently as SL2 exons. In contrast, SL4 is appended to mRNAs 10% as frequently as SL3. The abundance of SL4 RNA increased 6-fold during postembryonic development, and the SL4 RNA gene promoter is active principally in hypodermal cells.

Animals↗