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P A D'Alesandro

Publications and source records attributed to P A D'Alesandro.

17 recordsLinked to original sources

Identification of membrane-associated proteins in Trypanosoma brucei encoding an internal, EARLRAEE amino acid repeat.

Differential screening of expression libraries with nonimmune and day 4-6 immune serum from naive rats infected with the protozoan Trypanosoma lewisi was used to identify potential cell surface protein coding genes. Several T. lewisi cDNAs that resulted were partially characterized and used to clone the homologues from Trypanosoma brucei. The nucleotide sequence of the cDNAs encoding the Tb-29 genes of the parasitic protozoan T. brucei obtained by this method (3557 nucleotides for Tb-291 and 8729 nucleotides for Tb-292) encoded predicted open reading frames of 1070 and 2550 amino acids, respectively. The Tb-29 proteins encoded a large domain with an octapeptide (EARLRAEE) repeat (79 repeats in Tb-291 and 60 in Tb-292), which shared significant similarity with the octapeptide repeat of the S-antigen of isolate NF7 of Plasmodium falciparum. The predicted amino acid sequence of the Tb-292 protein encoded potential transmembrane domains (eight in total). Indirect immunofluorescence using confocal image analysis and immunoelectron microscopy located the EARLRAEE proteins to a membranous network. The Tb-29 proteins were most abundantly distributed to the area surrounding the nucleus, the region between the nucleus and the flagellar pocket, and the region immediately underneath the flagellar pocket membrane. The subcellular distribution of Tb-29 proteins suggests that these proteins may provide a constituent associated with the cell's vesicular transport system.

Amino Acid Sequence↗

A medium for the continuous cultivation of bloodstream forms of Trypanosoma lewisi at 37 C.

Trypanosoma lewisi has been maintained continuously at 37 C for more than 2 yr in Iscove's modified Dulbecco's medium with 10% fetal calf serum and a feeder layer of rat fibroblasts. In this medium the continuously reproducing hematozoic culture forms resemble bloodstream forms of T. lewisi in that they appear morphologically similar in Giemsa-stained preparations examined by light microscopy and have a surface coat that is absent in culture forms grown at ambient temperatures, when examined by electron microscopy. To determine whether these hematozoic culture forms also are similar functionally to bloodstream forms, comparative tests of the 2 forms were made of infectivity for the natural rat host, growth in vitro in the described culture medium, sensitivity to inhibition of reproduction by the rat antibody ablastin, and agglutinability by the 2 trypanocidal antibodies produced during a natural course of infection in the rat. Initially, differences between the 2 forms were minor, but after 16 mo in vitro greater differences began to emerge. Most marked was a reduction in infectivity by 22 mo, although sensitivity to ablastin, the single most important characteristic of bloodstream forms of T. lewisi, was still appreciable at this time. Nevertheless, despite this limitation, the culture system described supports hematozoic culture forms of T. lewisi for a considerably longer time than has been reported thus far.

Agglutination Tests↗

Elicitation of the reproduction-inhibiting antibody ablastin by serum exoantigens of Trypanosoma lewisi.

Serum exoantigens of Trypanosoma lewisi were collected 5 days after infection from immunocompetent (untreated) rats and rats immunosuppressed by treatment with either hydrocortisone acetate or dexamethasone. Normal rats were then immunized with pooled, whole exoantigen-containing serum from 1 of these 3 sources plus alum as an adjuvant, and the immune sera produced were tested individually. All contained agglutinating (trypanocidal) antibodies to both antigenic variants of T. lewisi, but only about two-thirds showed precipitating activity with exoantigens in gels. More importantly, however, when these antisera were thoroughly adsorbed with living trypanosomes (from immunocompetent hosts) to remove agglutinating antibody only and then tested for ablastic activity in vitro, all showed significant (P less than 0.01) reproduction-inhibiting activity, comparable to that shown by ablastic serum collected from rats that experienced a natural infection. Antisera from control rats similarly immunized with normal rat serum were negative in all antibody tests. The exoantigens of T. lewisi are, therefore, a complex mixture of immunogens that are related to the known immune responses to the parasite and can elicit the formation of ablastic antibody with the same biological properties as that produced during a natural infection.

Agglutinins↗

Isolation of protective antigens from Trypanosoma lewisi by using trypanostatic (ablastic) immunoglobulin G from the surface coat.

Antigens were purified from extracts of Trypanosoma lewisi on immunoadsorbent columns of trypanostatic immunoglobulin G eluted from parasite surface coats at 8 days postinfection. Eight absorbed proteins, with molecular weights between 15,000 and 70,000, were identified. These surface coat antigens (SCAgs) were then used to immunize rats. After immunization, sera were assayed in vitro for levels of circulating trypanostatic and trypanocidal antibodies. Approximately half of the immune sera had higher levels of trypanostatic antibody, compared with control sera; no trypanocidal antibodies (agglutinins) were detected in any of the sera. The rats were then challenged intraperitonally, and the parasitemias and division rates of the parasites were monitored. Parasitemias of all immunized rats were significantly (P less than 0.01) lower and of shorter duration than those of the controls. Division rates of trypanosomes were also significantly (P less than 0.01) lower in all immunized rats at all times before total cessation of division compared with control rats. A clear dose-response effect was observed, with greater amounts of SCAg eliciting higher levels of protection. Purified SCAgs were also more effective immunogens than were the crude trypanosome extracts from which they had been purified, and in which other proteins in addition to the SCAgs were present. These data provide conclusive evidence that the immunoglobulin G in the surface coats of T. lewisi, adsorbed during the course of infection, is specific antibody, in that it can be used to isolate parasite antigens that elicit a trypanostatic response in rats immunized with them.

Animals↗

Trypanostatic activity of rat IgG purified from the surface coat of Trypanosoma lewisi.

Host IgG is a component of the surface coat of Trypanosoma lewisi; it is specifically acquired during infection in the rat, concomitant with a rise in titer of trypanostatic (ablastic) activity of host serum. Host IgG was eluted from trypomastigotes at 7 to 9 days postinfection with a high salt-low pH buffer. Surface coats and trypanosome ultrastructure were not notably altered by the elution procedure, as determined by electron microscopy. Rat IgG was removed and purified from the trypanosome eluates on an immunoadsorbent column made with the IgG fraction of anti-rat IgG serum coupled to Sepharose beads. Concentrated column eluates, by comparison with a standard, were shown to be rat IgG by immunoelectrophoresis and SDS polyacrylamide gel electrophoresis. As a control, IgG from normal rat serum was purified by the same technique. IgG-negative trypanosomes harvested from immunosuppressed rats bound IgG purified from surface coats of trypanosomes, but not IgG purified from normal rat serum, as demonstrated by subsequent labelling with FITC-conjugated, rabbit anti-rat IgG. The IgG purified from surface coats inhibited the reproduction of T. lewisi in an in vitro assay, but purified, normal IgG did not. These data show that antigen-specific host IgG, adsorbed to the surface of T. lewisi, is ablastic antibody.

Adsorption↗

Failure of hamster macrophages to discriminate between infective and noninfective promastigotes of Leishmania donovani during attachment in vitro.

The attachment of infective and noninfective promastigotes of Leishmania donovani to hamster macrophages derived from spleen, lymph nodes, and peritoneal exudate was studied in vitro. Regardless of macrophage origin, no significant differences were observed between attachment of promastigotes that were infective and those that were noninfective for hamsters.

Animals↗

Unusual antibody-induced modulation of surface antigens in the cell coat of a bloodstream trypanosome.

Unlike other eukaryotic cells, Trypanosoma lewisi forms caps at 0 degrees C when incubated with rabbit immunoglobulin G(IgG) directed against surface IgG from the rat host. The host IgG, which is specific for parasite antigens, probably does not cause capping of these antigens in vivo, since trypanosomes treated with Fab fragments directed against rat IgG are uniformly labeled and do not cap at 0 degrees C or 37 degrees C.

Animals↗

The relation of agglutinins to antigenic variation of Trypanosoma lewisi.

During the course of infection in the rat, Trypanosoma lewisi produces 2 antigenic variants: the 1st represents the initial, reproducing population of cells; and the 2nd the nonreproducing, ablastin-inhibited adult population. The specificities of the agglutinins elicited by the variants were studied by adsorption and agglutination methods and the newer immunoelectroadsorption technic. It was found that the reproducing variant has a surface antigen that reacts with the agglutinin specific for the adult variant, but this antigen does not become immunogenic until transformation to the adult variant occurs. It was also found, with fractions of immune sera obtained by gel filtration, that the agglutinin specific for the reproducing variant is IgG and that specific for the adult variant, IgM. The antigenic variants of pathogenic and nonpathogenic trypanosomes are compared, and the roles of trypanocidal and ablastic antibodies in the induction of antigenic variation are discussed.

Adsorption↗

The cell surface of Trypanosoma musculi bloodstream forms. II. Lectin and immunologic studies.

Living Trypanosoma musculi bloodstream trypomastigotes were agglutinated specifically with concanavalin A (ConA), wheat germ agglutinin (WGA), soybean agglutinin (SBA), and fucose-binding protein (FBP). The agglutination with these lectins of living cells from which the coat was removed by trypsinization was the same as with intact trypanosomes. Glutaraldehyde or formalin fixation did not affect the results with regard to agglutination with WGA, SBA, and FBP, but lower agglutination with ConA was observed upon fixation. By using a dense iron-dextran marker many fewer ConA marker particles were localized at the fine structural level in the intact than in trypsin-treated trypanosomes. On the basis of the results obtained by agglutination and electron microscopy, it is likely that fixation cross-links intact surface-coat components associated with the ConA binding sites. It is evident from the studies in which lectins were employed that ligands containing alpha-D-mannose, N-acetylglucosamine, N-acetylgalactosamine, and alpha-L-fucose are randomly distributed in the outer surface of the pellicular and flagellar membranes of T. musculi trypomastigotes. Results obtained with alpha-amylase- and dextranase-treated trypanosomes suggested that lectin-binding sugar ligands in the cell surface were not directly associated with alpha-1,4 or repetitive alpha-1,6 glucan-bonded polysaccharide moieties. Similar conclusions can be drawn on the basis of neuraminidase treatment with regard to N-acetylated neuraminic acids. After thorough washing, intact, but not trypsin-treated trypomastigotes were agglutinated specifically with antisera against whole mouse serum and against mouse IgG. Evidently, adsorbed constituents of mouse serum are regular components of the T. musculi surface coat. After incubation in dilute whole mouse serum or in mouse IgG solutions, also the trypsinized cells were agglutinated by the 2 antisera. No such results were obtained with trypsinized cells incubated in serum-free buffers. It was concluded that mouse serum proteins were readily readsorbed on, and firmly bound to the trypsinized cells' surfaces. Specific agglutinations were obtained with trypsinized cells after incubation in dilute rat, rabbit, bovine, and human sera and in solutions of rat and rabbit IgG in reactions with the corresponding antisera. It seems, therefore, that the host serum proteins are adsorbed nonspecifically to the cell surface of trypsinized T. musculi bloodstream forms. When examined by electron microscopy, the intact trypomastigotes were covered by an ununiform, slightly granular, fibrillar extracellular coat, applied to the entire outer lamina of the pellicular and flagellar membranes. No indication of such a coat was noted in the trypsinized organisms. Flocculent surface coat-like matrix could, however, be discerned in cells which, after trypsinization, were incubated in various sera.

Agglutination↗

Trypanosoma lewisi infection in the rat: effect of adenine.

The reproductive activity of Trypanosoma lewisi was strikingly enhanced and sometimes prolonged for 2 days when sublethal doses of adenine were given to rats. The drug was effective when given for 5 or 7 days in the diet and/or intraperitoneally, starting one or two days before infection through two days after infection. Peak parasitemia was also enhanced. In terms of host immunity, daily sublethal doses of adenine given to rats within two days before or after infection with T. lewisi significantly depressed a hitherto unrevealed natural immunity to reproduction of the trypanosomes, but only slightly modified the development of acquired immunity.

Adenine↗