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C Saillard

Publications and source records attributed to C Saillard.

At least 37 records · Page 2Linked to original sources

DNA relatedness between field isolates of Mycoplasma F38 group, the agent of contagious caprine pleuropneumonia, and strains of Mycoplasma capricolum.

DNA-DNA hybridization experiments were carried out in order to clarify the taxonomic relationships between the F38 group of caprine mycoplasmas, the established etiologic agents of classical contagious caprine pleuropneumonia, and Mycoplasma capricolum, an organism associated with septicemia, arthritis, and mastitis in goats and sheep. The taxonomic status of the F38 group has been uncertain, principally because of the serological, genomic, and other properties which it shares with M. capricolum. Tritium-labeled DNAs from the M. capricolum type strain (California kid) and from prototype strain F38 were hybridized with unlabeled DNAs from these two strains and from four other isolates belonging to each group. The results showed consistent DNA relatedness values of about 70% between the F38 and M. capricolum groups, compared with levels of relatedness of about 90 and 85%, respectively, for the strains within each group. In addition, the results of comparisons of these 10 strains in which growth inhibition and immunofluorescence tests were used confirmed the previously reported serological relationships between the two groups and reinforced other observations concerning their shared genomic and cell membrane characteristics, indicating that there is a close taxonomic relationship. However, as the 70% DNA relatedness values between the M. capricolum and F38 groups also indicate a degree of genomic difference inconsistent with a relationship at the species level, we conclude that our findings support previous proposals for classification of the F38 group as a subspecies of M. capricolum.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

A specific DNA probe for detecting Mycoplasma hyopneumoniae in experimentally infected piglets.

Mycoplasma hyopneumoniae is the primary agent of swine enzootic pneumonia. Because of fastidious growth requirements and its serological cross-reactions with other porcine mycoplasmas, we developed a specific DNA probe for its detection. A partial genomic library of M. hyopneumoniae was constructed in plasmid pBR 322 using Hind III chromosomal fragments. The recombinant plasmids were screened by differential hybridization with M. flocculare and M. hyorhinis genomic DNA probes. One non-hybridizing recombinant plasmid was selected and its 1.65 kbp insert (designated I141) tested for specificity against genomic DNA from numerous mycoplasmas, other bacteria species and DNA from lung tissue of specific pathogen free (SPF) piglets. The 32P labelled I141 could detect specifically down to 400 pg of M. hyopneumoniae genomic DNA. To test the suitability of the I141 probe for the laboratory diagnosis of M. hyopneumoniae infections, we used clinical tracheobronchial specimens from piglets which were experimentally infected with M. hyopneumoniae. The results with hybridization on each specimen were compared to findings with an immunofluorescence test. Of the clinical specimen tested, there was agreement in the two tests of 63%.

Animals↗

Spiroplasma citri UGG and UGA tryptophan codons: sequence of the two tryptophanyl-tRNAs and organization of the corresponding genes.

From the total tRNAs of Spiroplasma citri, we isolated and purified two tRNA(Trp) species by using chromatography on an RPC-5 column followed by denaturing polyacrylamide gel electrophoresis. The sequence of the two tRNAs, as well as the sequences of the corresponding genes, were determined. One of the two tRNA(Trp) species has a CCA anticodon and is able to pair with the universal UGG tryptophan codon, while the second has a U*CA (U* is a modified uridine) anticodon and is able to pair with UGA but also with UGG in accordance with the "U:N wobble" rule. Thus, in S. citri, UGA is not a stop codon but codes for tryptophan. The two tRNA(Trp) genes, together with a third tRNA gene, tRNA(Ser) (CGA), belong to a single transcription unit. The nucleotide sequences of the two tRNA(Trp) species show 82.9% similarity. The two spiroplasmal tRNA(Trp) species can be aminoacylated by using an aminoacyl-tRNA synthetase fraction from S. citri. In contrast, the enzyme fraction from Escherichia coli aminoacylates tRNA(Trp) (CCA) but not tRNA(Trp) (U*CA).

Base Sequence↗

Spiralins of Spiroplasma citri and Spiroplasma melliferum: amino acid sequences and putative organization in the cell membrane.

Spiralin is the major membrane protein of the helical mollicute Spiroplasma citri. A similar protein occurs in the membrane of Spiroplasma melliferum, an organism related to S. citri. The gene encoding spiralin has been sequenced. A restriction fragment of the spiralin gene has been used as a probe to detect the gene encoding S. melliferum spiralin. A 4.6-kilobase-pair ClaI DNA fragment from S. melliferum strongly hybridized with the probe. This fragment was inserted in pBR322 and cloned in Escherichia coli. It was further subcloned in the replicative forms of M13mp18 and M13mp19, and its nucleotide sequence was determined (GenBank accession number M33991). An open reading frame showing 88.6% base sequence homology with the S. citri spiralin gene could be identified and was assumed to be the gene encoding S. melliferum spiralin. The deduced amino acid sequence of the protein had 75% homology with the spiralin sequence. In particular, the two proteins possess a stretch of 20 amino acids which can form an alpha-helix, in which all polar amino acids occupy approximately one-third of the axial projection down the helix. On the basis of these data and published data, we propose a topological model for the structural organization of the spiralin in the cell membrane of spiroplasmas.

Amino Acid Sequence↗

Organization and nucleotide sequences of the Spiroplasma citri genes for ribosomal protein S2, elongation factor Ts, spiralin, phosphofructokinase, pyruvate kinase, and an unidentified protein.

The gene for spiralin, the major membrane protein of the helical mollicute Spiroplasma citri, was cloned in Escherichia coli as a 5-kilobase-pair (kbp) DNA fragment. The complete nucleotide sequence of the 5.0-kbp spiroplasmal DNA fragment was determined (GenBank accession no. M31161). The spiralin gene was identified by the size and amino acid composition of its translational product. Besides the spiralin gene, the spiroplasmal DNA fragment was found to contain five additional open reading frames (ORFs). The translational products of four of these ORFs were identified by their amino acid sequence homologies with known proteins: ribosomal protein S2, elongation factor Ts, phosphofructokinase, and pyruvate kinase, respectively encoded by the genes rpsB, tsf, pfk, and pyk. The product of the fifth ORF remains to be identified and was named protein X (X gene). The order of the above genes was tsf--X--spiralin gene--pfk--pyk. These genes were transcribed in one direction, while the gene for ribosomal protein S2 (rpsB) was transcribed in the opposite direction.

Amino Acid Sequence↗

New spiroplasmas from insects and flowers: isolation, ecology, and host association.

Eight spiroplasma strains from insects and one from spring flowers failed to react with antisera specific for any of the 11 described spiroplasma groups, with sera directed against spiroplasma Group I subgroups, or with sera directed against two unnumbered groups previously reported to occur in tabanid flies. Strains, all from Maryland, were isolated from the hemolymph of the spotted cucumber beetle Diabrotica undecimpunctata and the lampyrid beetle Ellychnia corrusca, and the guts of the cantharid beetles Cantharis bilineatus and C. carolinus. Other strains were obtained from a tabanid fly, Tabanus gladiator and from the firefly Photuris pennsylvanica in Maryland and from the mosquito Culex tritaeniorhynchus in Taiwan. An isolate from pooled Cicadulina bipunctella leafhoppers in Syria apparently represented a unique group. A single isolate from spring flowers in Oklahoma also appeared to be unrelated to existing groups or subgroups. One-way deformation tests using sera prepared against known beetle and tabanid spiroplasmas showed each of the above strains to be unique. Although these results strongly indicate that the nine strains studied are representatives of unique new spiroplasma groups, the formal designation of new groups awaits fulfillment of recently proposed criteria.

Animals↗

Further characterization of an unusual plant Mollicutes species of uncertain taxonomic status.

PPAV is a type of Mollicutes that was isolated in SP4 medium from seeds of apples affected by proliferation, a disease in which mycoplasma-like organisms (MLOs) are involved. However, PPAV is probably not the etiological MLO agent for at least two reasons: 1) optimal temperature growth is 43 C, and 2) in spite of numerous isolation attempts over several years, no second PPAV culture could be obtained. PPAV is surrounded by a single cytoplasmic membrane and forms typical fried egg-shaped colonies on solid medium. The organism grows in simplified mycoplasma media, such as BSR. In growth inhibition, it shows no serological relationships with any other mycoplasmas or acholeplasmas, including those cultured from the surfaces of plants. The absence of relatedness of PPAV to other Mollicutes was confirmed by DNA hybridization studies. The genome of PPAV is close to 10(9) daltons and contains 25.2 mol % G + C. Its genome size is similar to that of Acholeplasma spp. and Spiroplasma spp. It has, however, a clearcut sterol requirement and therefore cannot be an acholeplasma. Neither is it a spiroplasma since, though filamentous in BSR medium, it has never shown signs of helicity. Hence, PPAV is a taxonomical paradox.

Acholeplasma↗

Spiroplasmas: gene structure and expression.

Upon sequencing of the SpV4 genome, eight putative open reading frames (ORFs) including that for the 65-kilodalton (kDa) capsid protein were detected. They involve all three reading frames. Three promoter sequences were found, as well as a transcription terminator and the initiation site for complementary strand synthesis. Ribosome binding sites and regulatory sequences are closely related to those of Eubacteria. Codon usage analysis showed that A and T terminated codons are preferably used. UAA is the major termination codon. Upon cloning of the full-size SpV4 replicative form, the capsid protein gene could not be expressed in Escherichia coli, whereas the spiralin gene cloned in the same bacterium is expressed. These results suggest that in spiroplasmas, as in Mycoplasma capricolum, UGA is not a termination codon, but very probably codes for tryptophan. Spiralin contains no tryptophan. Hence, its gene contains no UGA codons and can thus be expressed in E. coli. On the other hand, the gene for capsid protein has nine UGA codons and cannot be fully expressed in the bacterium. Our results fully support the bacterial origin of spiroplasmas.

Bacteria↗

Spiroplasma citri detection by enzyme-linked immunosorbent assay (ELISA), culture and dot hybridization.

We have used ELISA and culture of spiroplasmas in SP4 or M1A medium to detect Spiroplasma citri in citrus trees, periwinkles (Catharantus roseus) and leafhoppers in Iraq and Syria. On the basis of hundreds of analyses, we have found that the sensitivity of ELISA and culture are of the same order of magnitude. With citrus, both tests are able to detect S. citri in 95% of symptomatic nursery or field trees. The tests are not sensitive enough to reliably detect S. citri in symptomless trees. Therefore, a DNA hybridization technique was developed. The radioactive DNA probe was prepared either with total S. citri DNA or with the cloned DNA fragment carrying the spiralin gene of S. citri. Used in dot hybridization, the probe was able to detect concentrations of S. citri one 100th the size of those revealed by ELISA.

Animals↗

Gene for spiralin, the major membrane protein of the helical mollicute Spiroplasma citri: cloning and expression in Escherichia coli.

A library of cloned Spiroplasma citri genomic sequences was constructed by incorporating HindIII digestion fragments into the plasmid vector pBR328. Immunological screening allowed the identification of a recombinant plasmid containing the gene for spiralin, the major membrane protein of S. citri. The spiralin produced by the Escherichia coli transformant was characterized by immunological detection with monoclonal antibody after Western blotting of two-dimensional (isoelectric focusing and sodium dodecyl sulfate-polyacrylamide) electrophoresis gels and by partial proteolytic mapping. The gene for spiralin occurred within a 6.5-kilobase-pair cloned DNA fragment. Spiralin in E. coli was produced regardless of the orientation of the insert within the pBR328 vector. A spiroplasmal DNA sequence which acted as a promoter in E. coli was cloned along with the structural spiralin gene which is expressed in E. coli from that sequence.

Bacterial Outer Membrane Proteins↗

Expression of the Spiroplasma citri spiralin gene in Escherichia coli. Use of the recombinant plasmid carrying this gene as a molecular probe.

Expression in Escherichia coli of the cloned Spiroplasma citri spiralin gene results in the expression of a 30.5-kDa protein serologically related to spiralin. A protein with the same properties is also present in minor amounts in S. citri cells, suggesting that spiralin is first produced as a preprotein containing a signal polypeptide, which is removed during further processing. Hybridization experiments have demonstrated that pES1, the recombinant plasmid carrying the spiralin gene, can be used as a molecular probe, allowing the detection of S. citri DNA in infected plants and in insect cell cultures.

Bacterial Outer Membrane Proteins↗

Spiroplasmas and the transfer of genetic material by transformation and transfection.

Two plasmids, pMH1 with 7 kbp and pM41 with 8 kbp were purified from Spiroplasma citri strains MH and M4 respectively. On the basis of guanine + cytosine content and restriction enzyme mapping, the two plasmids are different. The linearized pMH1 plasmid was introduced into Escherichia coli plasmid vector pBR328 and could be cloned in E. coli. Using radioactive probes specific for each plasmid, we found that pM41 was present in three additional S. citri strains and in three other spiroplasmas not belonging to the S. citri species. pMH1 was found as a free 7-kbp plasmid only in the S. citri strain MH. However, the pMH1 probe hybridized strongly with high molecular weight DNA of several S. citri strains and strains of spiroplasmas other than S. citri. The major membrane protein of S. citri, spiralin, is strongly antigenic and rabbit antibodies against whole S. citri cells strongly react with spiralin. Thus, the enzyme-linked immunosorbent assay (ELISA) has been used to screen E. coli clones that were transformed with HindIII-generated S. citri DNA fragments inserted into the HindIII site of pBR328. One E. coli transformant strongly reacted in ELISA with S. citri polyclonal antiserum. The same transformant also gave a positive reaction with monospecific antiserum against spiralin. These results demonstrate that a gene from S. citri, the spiralin gene, could be expressed in a bacterium. The isometric virus SV4, infecting honeybee spiroplasmas of Group I-2, was shown to possess circular single-stranded DNA of molecular weight 1.7 X 10(6) Da. Transfection of spiroplasma G1 with purified DNA of SV4 was achieved. These experiments open the way to the introduction of foreign genes into spiroplasmas.

Bacterial Outer Membrane Proteins↗

Discovery of a new plant-pathogenic spiroplasma.

To study natural transmission of Spiroplasma citri in the Mediterranean area, periwinkles (Vinca rosea L.) were exposed to natural infection in several locations during the summer of 1983. Detection of S. citri in the periwinkles was assayed by ELISA and culture of the organisms. Some of the periwinkles developed yellows disease symptoms; they contained helical organisms in their sieve tubes, as determined by electron microscopy. A spiroplasma could be cultured from them, but their ELISA reaction for S. citri detection was negative. These results suggested that a spiroplasma different from S. citri had been discovered. The apparently new spiroplasma (P40) was examined for serological relationships with other spiroplasmas by metabolism inhibition and deformation tests. Spiroplasma P40 was found to have relatedness only to Group I spiroplasmas. Healthy periwinkles graft inoculated with shoots of the initial symptomatic periwinkle showed yellows symptoms 3 months after inoculation. Extracts of the initial and the graft-inoculated periwinkles gave positive ELISA reactions with anti-P40 IgG.

Base Composition↗

Genetic and serologic relatedness between Mycoplasma fermentans strains and a mycoplasma recently identified in tissues of AIDS and non-AIDS patients.

A mycoplasma previously identified in the tissues of both AIDS and non-AIDS patients dying of an acute fatal disease was earlier shown to share some biologic and genetic properties with a strain of Mycoplasma fermentans, an organism occurring infrequently in the human lower urogenital tract. More extensive genetic and serologic comparisons using DNA/DNA hybridization, DNA base composition (guanine + cytosine), restriction endonuclease DNA analysis, cellular protein patterns and metabolism inhibition serologic procedures confirm that the organism previously designated as "Mycoplasma incognitus" (Mi) is indeed very closely related to strains of M. fermentans. While the genetic and serologic features observed among the newly isolated mycoplasma and two M. fermentans strains suggest a species relationship, it now seems useful to re-examine the biological activities of other freshly isolated M. fermentans strains from man.

Acquired Immunodeficiency Syndrome↗

Spiroplasma citri-induced lethal wilting of periwinkles is prevented by prior or simultaneous infection of the periwinkle by an MLO.

S. citri can be cultured from periwinkles naturally infected in the field and showing typical mycoplasma-like organism (MLO) symptoms such as flower virescence. Such plants are undoubtedly infected with both S. citri and with one MLO, the latter being responsible for the symptoms. To verify this hypothesis, the following experiments were carried out. Periwinkles were infected with both S. citri and one of three different MLO by graft inoculations. The three MLO were those of phyllody virescence, flower dwarfing and chloranty virescence. Periwinkles singly infected with S. citri showed lethal wilting 6 weeks after inoculation. Plants first inoculated with S. citri and four weeks later with an MLO developed wilting twelve weeks after the inoculation with S. citri. Plants first inoculated with an MLO and later with S. citri did not develop wilting and were protected. The presence of S. citri in these plants was demonstrated by the ELISA test and by culture of the spiroplasma. Similar results were obtained when S. citri and the MLO were inoculated at the same time.

Enzyme-Linked Immunosorbent Assay↗

[The Leafhopper Neoaliturus haematoceps (Mulsant & Rey) is a vector of Spiroplasma citri in the Mediterranean].

Among the many leafhoppers which we have collected and identified in Morocco, Turkey, Syria and France (Corsica), only the species Neoaliturus haematoceps was found to be infected with Spiroplasma citri. In Syria, this leafhopper was encountered on ornamental stock plants (Matthiola incana L.) in the Oronte valley, and on Salsola kali L., a wild Chenopodiacae of the semi-arid regions of the coastal area. In Corsica, we found it on wild stock plants (Matthiola sinuata R.Br.) of the oriental coast and on bush plants. A breeding of this leafhopper was initiated, and we demonstrated that it was able to acquire S. citri from infected periwinkles, multiply the organisms in its body and transmit them to healthy plants. This leafhopper can also be infected after injection of S. citri. The leafhoppers thus inoculated can transmit the spiroplasma very efficiently to healthy plants. This is the first report of the transmission of S. citri by Neoaliturus haematoceps both after acquisition on a diseased plant and after injection.

Animals↗

Guanine-plus-cytosine content, hybridization percentages, and EcoRI restriction enzyme profiles of spiroplasmal DNA.

The guanine-plus-cytosine (G + C) content of spiroplasmal DNA was calculated from the melting temperature determined spectrophotometrically and the buoyant density determined by equilibrium density gradient centrifugation in CsCl. Only two ranges of G + C values were found: 25-27 mol% and 29-32 mol%. The DNA of the following spiroplasmas has 25-27 mol% G + C: Spiroplasma citri (serogroup I-1); the spiroplasmas pathogenic to the honeybee (KC3, BC3, and B63; serogroup I-2); the corn stunt strain (E275; serogroup I-3); the tick strain 277F (serogroup I-4); the drosophila strain (serogroup II); and one group of flower spiroplasmas (serogroup III). The DNA of a second group of flower spiroplasmas (serogroup IV) and the SMCA strain (serogroup V) has a G + C content of 29-31 mol/. The classification of flower spiroplasmas into two groups on the basis of G + C content agrees well with the groupings based on serologic and protein analysis. Spiroplasmas isolated from honeybees in Morocco (B13) or froghoppers in Corsica (L89) have 29-31 mol% G + C, a value that corroborates the relatedness of these strains and the flower spiroplasmas of serogroup IV found by serologic analysis. Reannealing experiments between the vivo-labeled DNA of S. citri and unlabeled DNA of other spiroplasmas gave the following percentages of hybridization: 64% with honeybee spiroplasma DNA, 49% with corn stunt spiroplasma DNA, and 19% with tick spiroplasma 277F DNA; no significant hybridization was observed with DNA of any other spiroplasma. The taxonomic position of the tick spiroplasma 277F within serogroup I was confirmed by hybridization experiments involving [3H]DNA of this strain. The value of polyacrylamide gel analysis of DNA fragments produced by the action of EcoRI restriction enzyme on DNAs from various spiroplasmas is also discussed.

Animals↗