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T Baltz

Publications and source records attributed to T Baltz.

At least 73 records · Page 4Linked to original sources

Immunological evidence of a common structure between Paramecium surface antigens and Trypanosoma variant surface glycoproteins.

The surface antigens (SAgs) of Paramecium and the variant surface antigens (VSGs) of Trypanosoma can be purified in two distinct molecular forms: a soluble form (solubilized in dilute ethanolic solution in the case of Paramecium, or in water for Trypanosoma) and a membranal form, amphiphile (solubilized in SDS). In trypanosomes, the enzymatic conversion of the membrane form into the soluble form is accompanied by the unmasking of a particular immunological determinant, called cross-reacting determinant (CRD), which is located in the COOH-terminal phospho-ethanolamine glycopeptide. We demonstrate immunological homologies between Paramecium SAgs and Trypanosoma VSGs. A determinant corresponding to the CRD of VSGs is borne by the ethanol-soluble form of the SAgs and by two cross-reacting light chains also present in ethanolic cellular extracts (together with the soluble form), and not by the membranal form of SAgs. Furthermore, we show that the membranal form of Paramecium SAgs can be converted into soluble form and that this enzymatic conversion also yields cross-reacting light chains. We also demonstrate that the membranal form is the physiological form in paramecia stably expressing a given SAg.

Animals↗

Cloning and characterization of a variant surface glycoprotein expression site from Trypanosoma equiperdum.

Variant surface glycoprotein (VSG) genes of African trypanosomes are expressed when they are inserted into one of several telomere-linked expression sites. We cloned and characterized an 11-kilobase (kb) DNA fragment located upstream of an expressed VSG gene. A DNA sequence of 1.8 kb that is located immediately upstream of the inserted VSG gene contains sequences homologous to the 76-base-pair repeats described as being upstream of VSG genes in Trypanosoma brucei (D. A. Campbell, M. P. Van Bree, and J. C. Boothroyd, Nucleic Acids Res. 12:2759-2774). There are no such sequences elsewhere in the 11-kb cloned region. Southern blot analysis using probes from the cloned region revealed multiple unlinked copies of the same or very similar regions. At least three of these are located near telomeres, and two have been shown to be used for the expression of known Trypanosoma equiperdum VSG genes. Like VSG genes, the upstream sequences themselves can be duplicated and deleted. The choice of expression site to be used by a duplicated VSG gene is nonrandom; the site used for expression of the parental VSG gene is strongly favored for use in the daughter variant. Furthermore, even when the parental expression site is not used, the VSG gene occupying it is replaced. Thus, an active expression site is a preferential target for gene conversion in the next variation event.

Animals↗

Differentiation of Trypanosoma cruzi, T. cruzi marinkellei, T. dionisii and T. vespertilionis by monoclonal antibodies.

Anti-T. dionisii and anti-T. vespertilionis monoclonal antibodies secreted by 17 hybridoma clones were tested against various strains of T. dionisii, T. vespertilionis, T. cruzi and T. cruzi marinkellei. Strain and species specific antigens were detected for the homologous immunizing strains. The common antigenic determinants of the tested trypanosome species include a component of the flagellum and different cell structures. Seventeen T. cruzi strains could be classified into two groups when tested with anti-T. dionisii monoclonal antibodies. The cross reactions between T. dionisii and T. cruzi demonstrate a strong correlation between T. dionisii and T. cruzi group 2. On the other hand T. cruzi group 1 and T. cruzi marinkellei show very similar antigenic character.

Animals↗

Cultivation in a semi-defined medium of animal infective forms of Trypanosoma brucei, T. equiperdum, T. evansi, T. rhodesiense and T. gambiense.

A semi-defined medium for the cultivation of bloodstream forms of the African trypanosome brucei subgroup was developed. Out of 14 different strains tested, 10 could be cultured including Trypanosoma brucei, T. equiperdum, T. evansi, T. rhodesiense and T. gambiense. The presence of a reducing agent (2-mercaptoethanol or thioglycerol) was found to be essential for growth. The standard medium consisted of Hepes buffered minimum essential medium with Earle's salts supplemented with 0.2 mM 2-mercaptoethanol, 2 mM pyruvate and 10% inactivated serum either from rabbit (T. brucei, T. equiperdum, T. evansi and T. rhodesiense) or human (T. gambiense). Although a general medium could be defined for the long-term maintenance of trypanosome cultures, the initiation to culture nevertheless required particular conditions for the different strains. The cultured trypanosomes had all the characteristics of the in vivo bloodstream forms including: morphology, infectivity, antigenic variation and glucose metabolism.

Adaptation, Physiological↗

Re-expression of an inactivated variable surface glycoprotein gene in Trypanosoma equiperdum.

Variable surface glycoprotein (VSG) genes in African trypanosomes are often activated by the duplicative transposition of a silent basic copy (BC) gene into an unlinked telomerically located expression site, producing an active expression-linked copy (ELC) of that gene. However, some BC genes that are already linked to a telomere are activated without apparent duplication or transposition. We have recently shown that an active VSG ELC can be inactivated in situ, apparently without rearrangement. To explain these observations it has been suggested that VSG genes that are associated with chromosome telomeres are activated by chromosome end exchanges that occur at a considerable distance upstream from the genes themselves and place them cis to a unique VSG expression element. In an attempt to test this model we derived five VSG-1 expressing variants from BoTat-2, a VSG-2 expressing variant of Trypanosoma equiperdum which carries an inactive residual VSG-1 ELC (R-ELC) as well as the active VSG-2 ELC near unlinked chromosome telomeres. We examined the fates of the VSG-2 ELC and the VSG-1 R-ELC in these variants. All five had maintained the VSG-1 R-ELC; three in a reactivated form and two in an inactive state. The latter two variants carried new, active VSG-1 ELCs: one in the site that had previously contained the VSG-2 ELC and one in a previously unidentified site. The VSG-2 ELC was lost in all five of the variants. The results are not consistent with the simple chromosome end exchange model, which predicts that the VSG-2 ELC would be inactivated but not deleted when the VSG-1 R-ELC was reactivated.

Animals↗

Probing eukaryotic RNA polymerases B with monoclonal antibodies.

Monoclonal antibodies directed against RNA polymerase B of the fungus Podospora comata were selected on the basis of different subunits recognition and inhibitory effect on enzyme activity. A library of 10 antibodies biased toward B180, B145, B39, B23,5 and B11 subunits was constructed. Most of these antibodies also recognize yeast, wheat germ and calf thymus RNA polymerase B. Subunits bearing antigenic determinants are not always homologous in Podospora and yeast enzyme. As some of these antibodies strongly inhibit enzyme activity they constitute potent probes for functional studies of corresponding subunits.

Animals↗

Presence of glycerol and fatty acids in the C-terminal end of a variant surface glycoprotein from Trypanosoma equiperdum.

The composition of the C-terminal end of a variant surface glycoprotein from Trypanosoma equiperdum (BoTat-1 VSG) has been examined. It has been reported for two Trypanosoma brucei VSGs (Holder, A.A., Biochem. J. (1983), 209, 261-262) that ethanolamine was involved in binding the C-terminal amino acid to an oligosaccharide side chain. Tryptic glycopeptides were prepared from BoTat-1 VSG and analyzed. One of them was found to contain ethanolamine and consequently was assumed to be C-terminal. It was shown that the glycopeptide also included phosphate, glycerol and fatty acids. The fatty acid composition was representative of that of glycerolipids. All the results suggest that the end of the molecule is a core of phosphatidylethanolamine.

Amino Acids↗

The variant surface glycoproteins of Trypanosoma equiperdum. Identification of a phosphorylated glycopeptide as the cross-reacting antigenic determinant.

The cross-reacting antigenic determinant in the variant surface glycoproteins (VSGs) of Trypanosoma equiperdum was studied by testing the ability of VSG glycopeptides to bind heterologous anti-VSG sera. VSG glycopeptide purification revealed the presence of 3 oligosaccharide sidechains on the mature VSG. These consist of two sidechains containing only mannose and glucosamine and a third containing galactose and mannose (in a 5:1 ratio) as well as phosphorous and ethanolamine. This phosphorylated fragment completely blocked the binding of VSG to heterologous anti-VSG and therefore contained the cross-reacting determinants.

Animals↗

Variant specific surface antigens from Trypanosoma equiperdum: chemical and physical studies.

Nine variant specific surface antigens were purified from clones of Trypanosoma equiperdum and characterized by amino acid analysis, isoelectric focusing and circular dichroism. The molecules showed extensive differences in their isoelectric points, and by comparison with the corresponding amino acid compositions, this variation seemed to be due to different amide contents. Circular dichroism data allowed one to divide the molecules into 4 groups according to their respective percentages in alpha-helical and beta-sheet structure.

Amino Acids↗

Partial determination of the primary structure of a variant surface glycoprotein from Trypanosoma equiperdum. Composition and location of a carbohydrate moiety.

Salivarian trypanosomes have the ability to evade the immune response of their hosts by the sequential expression of different cell surface glycoproteins. Among the isolated specific antigens from cloned variants of Trypanosoma equiperdum, a structural study was undertaken on two immunologically cross-reacting variant surface glycoproteins, and results concerning the basic antigenic type are reported. The glycoprotein was cleaved by cyanogen bromide, and amino acids of several purified fractions obtained by gel filtration chromatography of this cleavage mixture were sequenced by automated Edman degradation. Sequencing in particular allowed the identification of the N-terminal portion of the molecule (residues 1-74). Sugar compositions of the fractions have demonstrated the presence of at least two carbohydrate moieties in the glycoprotein. Using a subsequent enzymatic subcleavage we were able to locate the first glycosylation site in position 57. An important observation was that the first oligosaccharide identified was rich in mannose and devoid of galactose.

Amino Acid Sequence↗

DNA rearrangements and antigenic variation in Trypanosoma equiperdum: multiple expression-linked sites in independent isolates of trypanosomes expressing the same antigen.

African trypanosomes resist the immune response of their mammalian hosts by varying the surface glycoprotein which constitutes their antigenic identity. The molecular mechanism of this antigenic variation involves the successive activation of a series of genes which code for different variant surface glycoproteins (VSGs). We have studied the expression of two VSG genes (those of VSG-1 and VSG-28) in Trypanosoma equiperdum, and we report the following findings. (i) The expression of both VSG genes is associated with the duplication and transposition of corresponding basic copy genes. (ii) The duplicated transposed copy appears to be the expressed copy. (iii) Although there are multiple genes which cross-hybridize with the VSG-1 cDNA probe, only one of these appears to be used as a template for the expression-linked copy in four independent BoTat-1 clones. (iv) Analysis of the genomic environments of the expressed VSG-1 genes from each of four independently derived BoTat-1 trypanosome clones revealed that there are at least three different sites into which the expression-linked copy can be inserted.

Animals↗

DNA rearrangements and antigenic variation in Trypanosoma equiperdum: expression-independent DNA rearrangements in the basic copy of a variant surface glycoprotein gene.

Antigenic variation in Trypanosoma equiperdum is associated with the sequential expression of variant surface glycoprotein (VSG) genes in a process which involves gene duplication and transposition events. In this paper we present evidence that the genomic environment of the VSG-1 basic copy gene, the template for duplicated, expression-linked VSG-1 genes, differs in every trypanosome clone examined. This variation is thus independent of the expression of the VSG-1 gene, and it also appears to be restricted to the 3' genomic environment. It is also demonstrated that the DNA located 3' to the VSG-1 basic copy gene is moderately sensitive to digestion when the nuclei of either expressor or non-expressor trypanosomes are treated with DNase I.

Animals↗

The variable surface glycoproteins of Trypanosoma equiperdum are phosphorylated.

The phosphoproteins from three Trypanosoma equiperdum variants were studied by labelling the parasites in vivo with 32P. Phosphoprotein analysis reveals the presence of a 58 000 mol. wt. phosphoprotein ( pp58 ) which is absent when live trypanosomes are pre-treated with proteinase K under conditions where only the surface coat containing the variable surface glycoprotein (VSG) is removed. Immunological and fingerprint analysis on labelled pp58 , purified from these variants by affinity chromatography on Concanavalin A-Sepharose, clearly identify this component as the VSG. Furthermore, the VSGs seem to be phosphorylated to the extent of 1 mol phosphate per mol glycoprotein. The phosphorylated region is located in the extreme C-terminal region representing approximately 10% of the total molecule. The phosphorylated residue is not an aliphatic or aromatic ester of serine, threonine, or tyrosine, nor an acyl phosphate involving an aspartyl or glutamyl residue, nor phosphohistidine. The evidence that VSGs are phosphorylated could have considerable implications for the transfer and function of these structures.

Animals↗

Immune depression and macroglobulinemia in experimental subchronic trypanosomiasis.

The effects of subchronic trypanosomiasis upon immune responses were examined in Trypanosoma gambiense infection and in subcurative treatment of T. brucei- and T- equiperdum-infected mice. About 60% of the mice infected with T. gambiense developed a subchronic infection similar to human trypanosomiasis, characterized by the absence of circulating trypanosomes. The animals died between 1 and 12 months after infection with elevated serum immunoglobulin M (IgM) levels (16 times the normal level). After 1 month of infection, the mice showed a normal primary antibody response against sheep erythrocytes, as tested by hemagglutination, despite their high serum IgM levels. After more than 1 month of infection, about 20% of the mice showed depressed hemagglutination titers (25% of control), whereas all relapsed mice that contained circulating parasites showed a pronounced suppression. Elimination of the blood parasites with Berenil treatment restored immune competence, which persisted until the relapse of the animals. Identical results were obtained in T. brucei-infected mice. Berenil treatment abolished the immune depression against sheep erythrocytes, but did not cure the animals, which relapsed with the development of a new state of immune depression. T. gambiense and T. brucei infections were always followed by a marked increase of serum IgM levels. Hypergammaglobulinemia was also induced in relapsing T. equiperdum-infected mice treated with Berenil. No immune depression against sheep erythrocytes could be detected. It appeared that immune depression was not the result of clonal exhaustion (measured by the serum IgM level) but seemed to be closely associated with the presence of living trypanosomes.

Animals↗

Absence of kinetoplast DNA in a late antigenic variant of Trypanosoma equiperdum.

We have analysed by several biochemical techniques the DNA components of two antigenic variants isolated from Trypanosoma equiperdum. We did not observe any kinetoplast DNA (kDNA) structures or networks in the late antigen variant BoTat 28. Furthermore, the results of reassociation kinetics of in vitro labelled kDNA show that neither kDNA minicircle sequences nor kDNA maxicircle sequences of BoTat 1, the basic antigen type, can be detected in the total DNA of BoTat 28.

Animals↗