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E Pays

Publications and source records attributed to E Pays.

At least 127 records · Page 7Linked to original sources

Conservation of a variant-specific surface antigen gene in different trypanosome species and sub-species.

In Trypanosoma brucie brucie, T. b. rhodesiense, T. b. gambiense and T. evansi, the variant-specific antigen (VSA) genes are organized in families of related sequences, one of which is duplicated when expressed. Some of these VSA sequences appear to be conserved in the different species and sub-species: restriction mapping of isotypic genes of AnTat 1.8 VSA (from T. b. brucei) reveals extensive homology in T. b. rhodesiense, T. b. gambiense and T. evansi, although the genetic surrounding differs in each case. By contrast, the AnTat 1.1 sequence (also from T. b. brucei) appears to be absent from T. b. gambiense DNA.

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Analysis of the DNA and RNA changes associated with the expression of isotypic variant-specific antigens of trypanosomes.

Using specific (32P) labelled cDNA probes, we compared the mRNAs and the genomic DNA sequences coding for the synthesis of two pairs of serologically related variant-specific antigens (VSAs) of trypanosomes: AnTat 1.1 and AnTat 1.1b, both from the strain 1125 of T.b.brucei and AnTat 1.8 and LiTat 1.6 from T.b.brucei and T.b. gambiense, respectively. Within each pair, large similarities were observed in the coding sequence, except in the 3' region which appears to be highly variable. However, a low level of cross-hybridization can be detected between all sequences, in the 3' region only. The expression of these VSAs is linked to a similar duplication-transposition mechanism. The insertion locus of the transposition unit is the same both in AnTat 1.1 and AnTat 1.1b DNAs. In both pairs, the transposition unit seems to comprise at least about 200 bp upstream of the 5' extremity of the coding sequence. The significance of these results, regarding the structure and synthesis of the VSAs, is discussed.

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The expression-linked copy of a surface antigen gene in Trypanosoma is probably the one transcribed.

The antigenic specificity of the living trypanosome seems to be determined by the protein component of a unique glycoprotein species covering the whole surface of the parasite. During chronic infection, a single clone of trypanosomes may successively express a large repertoire of different variable antigen types (VATs). There are probably as many genes as variant-specific antigens (VSAs) (see refs 1-3 for reviews). The expression of the genes coding for the synthesis of these antigens is linked to genomic rearrangements involving duplication of the coding sequence and transposition of the additional copy. The regulation of the expression of the VSA genes is operated at the transcriptional level. It can thus be supposed that their transcription depends on the presence of the additional, transposed copy. We report here that this additional copy is in a chromatin configuration highly sensitive to pancreatic deoxyribonuclease, suggesting that it is the transcribed one.

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Specificity of chromatin transcription in vitro. Asymmetric transcription of the globin gene by Escherichia coli RNA polymerase.

The transcription of globin genes in mouse foetal liver chromatin and nuclei by exogenous Escherichia coli RNA polymerase is prone to artifacts due to RNA-dependent transcription of endogenous mRNA sequences. This is particularly evident when Mn2+ is used as divalent cation in the RNA transcription reaction. However, substitution or supplementation with Mg2+ eliminates this artifact and gives essentially asymmetric DNA-dependent transcription by the polymerase. In this paper we discuss a number of general criteria which can be applied to test the validity of specific gene transcription in vitro.

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Gene duplication and transposition linked to antigenic variation in Trypanosoma brucei.

DNA sequence complementary to Trypanosoma brucei mRNAs coding for the synthesis of the variant-specific antigens AnTat 1.1 and AnTat 1.8 have been cloned and characterized. These sequences have been used as probes to analyze the corresponding genes in the nuclear DNA. The two genes seem to be represented in several (three to six) copies, some of which are incomplete. Transcription of one or the other of these two genes is linked to a genetic rearrangement implying duplication and transposition of the "basic" coding sequence. There is probably one additional copy of each gene, and it seems to be complete. The 3' end of each cloned sequence contains, within a 300-base-pair fragment, a genetic element that seems to be repeated and widely distributed in the genome. This repetitive sequence is variant specific. The expression-linked copy of the gene is lost in the culture (procyclic) form of the trypanosome, where the synthesis of variant-specific antigens is shut down. Comparison of two different cloned populations expressing the same serotype (AnTat 1) showed that the recurrence of a given antigenic type may be accompanied by the production of the same additional copy.

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Cloning and characterization of DNA sequences complementary to messenger ribonucleic acids coding for the synthesis of two surface antigens of Trypanosoma brucei.

Full length double-stranded complementary DNAs (ds cDNAs) could be synthesized on mRNAs enriched in sequences coding for the synthesis of the variant specific antigens (VSAs) AnTat 1.1 and AnTat 1.8 from Trypanosoma brucei brucei. The size of these ds cDNAs is about 1700 and 1850 base pairs for AnTat 1.1 and AnTat 1.8 respectively. The ds cDNAs were cloned in the plasmid pBR322; two clones harboring a copy of each coding sequence were selected. Both the hybrid-arrested translation and the positive hybridization elution methods confirmed that these recombinants contain VSA-specific inserts. A restriction map was constructed in each case. The two sequences seem to be inserted in a reversed 3'--5' orientation, respective to the plasmid polarity. The AnTat 1.8 cloned sequence is a palindrome probably due to a cloning artefact. Hybridization of the cloned DNAs with "Northern" blots of total or poly(A)+ RNA revealed in each case a single, specific band. The expression of these VSA genes appears thus to be regulated at the transcriptional level.

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Molecular cloning of bovine thyroglobulin complementary DNA. Characterization of 2500-base-pair and 1900-base-pair fragments.

Double-stranded thyroglobulin complementary DNA (cDNA) was synthesized from purified 33-S bovine thyroglobulin mRNA. This synthetic structural gene has previously been shown to contain three sites for the restriction endonuclease HindIII, yielding two internal fragments of 1900 and 2500 base pairs respectively. Recombinant molecules were prepared by ligating the HindIII-restricted cDNA to the plasmid pBR322 which had been linearized by the same enzyme. When Escherichia coli was transformed with this mixture, it yielded two kinds of colonies each harboring recombinant plasmids containing one of the two cDNA fragments. Both recombinant molecules hybridized specifically to translatable thyroglobulin mRNA. Sequence homology between the two cloned DNAs could not be detected by cross-hybridization experiments; this argues against the existence of internal structural repetition in thyroglobulin subunits. Together, the two cloned DNA fragments represent 55% of the 8000-base-pair double-stranded thyroglobulin DNA.

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Specificity of chromatin transcription in vitro. Anomalies due to RNA-dependent RNA synthesis.

In the presence of Mn2+, globin mRNA can be transcribed into a partial RNA copy by Escherichia coli RNA polymerase. This process also occurs when the mRNA is transcribed together with chromatin. A fraction, at least, of the newly synthesized RNA copy (anti-globin RNA) can serve as a template for the synthesis of globin sequences of the same polarity as the original mRNA. This process is sufficient to explain the specific synthesis of a subset of the globin RNA on mouse foetal liver chromatin. It also accounts for the synthesis of double-stranded RNA sequence by E. coli RNA polymerase, on chromatin as well as on pure mRNA. Results are presented suggesting that the poly(A) tract of the mRNA could be preferentially transcribed. In the presence of Mg2+, the RNA-dependent transcription is strongly inhibited, as well as the synthesis of double-stranded RNA. Under these conditions, the transcription on chromatin appears to be largely DNA dependent, and the synthesis of globin sequences is completely asymmetric. Spermine (0.3 mM) seems to improve the specificity of transcription. The transcription of chromatin in vitro is thus largely dependent on the nature of the divalent cation present in the in the incubation mixture.

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Transcription of rat liver deoxyribonucleic acid in vitro at low ionic strength.

1. When RNA polymerase is in excess over DNA, the single-stranded breaks of DNA can be recognized as initiation sites for the ezyme. On the other hand stabel initiation complexes (resistant to inhibition by heparin) are the most abundant under these conditions. The formation of these complexes needs double-stranded DNA. It seems that RNA sequences rich in cytidine are preferentially synthesized; since rat liver DNA is A + T-rich, the transcription thus appears not to be random with respect to the base composition of DNA. 2. When the template is in excess over the polymerase, the single-stranded gaps of DNA are preferentially transcribed by rat liver RNA polymerase B and native DNA regions by Escherichia coli RNA polymerase. 3. With a large excess of DNA over the polymerase, the enzyme activity is markedly inhibited. This inhibition is proportional to the concentration of double-stranded DNA ends, but it also depends on the presence of a contaminant of DNA, removed when DNA is banded in a CsCl gradient. This contaminant could be polyphosphates. Low concentrations of spermine completely reverse this inhibition, by enhancing the rate of RNA chain elongation. 4. Double-stranded RNA is synthesized in great abundance when RNA polymerase is in excess over native DNA. Besides a majority of symmetrical sequences, stable 'hairpins' can be found. Whereas the synthesis of symmetrical sequences is more prevalent in polymerase excess, it seems that the proportion of stable 'hairpins' in RNA is independent of the polymerase/DNA ratio.

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Characterization of double-stranded ribonucleic acid sequences present in the initial transcription products of rat liver chromatin.

At low ionic strength and with a low exogenous RNA polymerase/DNA ratio, rat liver chromatin directs the synthesis in vitro of RNA sequences rich in double-stranded segments. All the transcripts contain at least one double-stranded sequence. Most of the double-stranded segments are formed by intramolecular base-pairing of inverted complementary sequences separated by a single-stranded loop. They are heterogeneous in size, 35-45% of them being more than 80 nucleotides long. They contain 61-64% G+C, whether synthesized by rat liver RNA polymerase (form B) or Escherichia coli RNA polymerase. The largest double-stranded sequences are found in the largest transcripts, and are the most thermostable. The fidelity of base-matching is better in double-stranded transcripts synthesized on rat liver chromatin by homologous polymerase than in those synthesized on it by a bacterial polymerase, or in those synthesized by either of the two polymerases on pure DNA.

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Double-stranded RNA in chromatin transcripts formed by exogenous RNA polymerase.

RNA transcribed in vitro at low ionic strength, from either rat liver chromatin or DNA, contains a significant amount of structure resistant to RNase in high salt buffer. This is observed with rat liver (form B polymerase) as well as with Escherichia coli RNA polymerase (RNA nucleotidyltransferase; nucleoside triphosphate: RNA nucleotidyltransferase; EC 2.7.7.6). Treatment with RNases specific for either double-stranded or hybrid RNA indicates that resistance to RNase is due to the presence of double-stranded RNA sequences. Denaturation kinetics in the presence or absence of RNase suggest that these sequences are formed by intramolecular base pairing. Their mean length is about 20 to 30 nucleotides, but 15-20% are more than 100 nucleotides long. They contain 60-65% G-C base pairs. The proportion of double-stranded segments is higher in chromatin transcripts than in DNA-templated RNA, and is higher with homologous RNA polymerase than with the bacterial enzyme. On the other hand, chromatin endogenous RNA polymerase, which is unable to initiate transcription, does not synthesize double-stranded RNA. The problem of the location of these sequences is discussed; preliminary results suggest that the 5' end of the RNA transcripts could be enriched in complementary sequences.

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