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I T Ling

Publications and source records attributed to I T Ling.

10 recordsLinked to original sources

A malaria merozoite surface protein (MSP1)-structure, processing and function.

Merozoite surface protein-1 (MSP-1, also referred to as P195, PMMSA or MSA 1) is one of the most studied of all malaria proteins. The protein is found in all malaria species investigated and structural studies on the gene indicate that parts of the molecule are well-conserved. Studies on Plasmodium falciparum have shown that the protein is in a processed form on the merozoite surface, a result of proteolytic cleavage of the large precursor molecule. Recent studies have identified some of these cleavage sites. During invasion of the new red cell most of the MSP1 molecule is shed from the parasite surface except for a small C-terminal fragment which can be detected in ring stages. Analysis of the structure of this fragment suggests that it contains two growth factor-like domains that may have a functional role.

Amino Acid Sequence

Proteolytic processing of the Plasmodium falciparum merozoite surface protein-1 produces a membrane-bound fragment containing two epidermal growth factor-like domains.

The amino-terminal sequence has been obtained for 2 fragments of the Plasmodium falciparum T9/94 merozoite surface protein precursor (PfMSP1) and these have been compared with the sequence predicted from the gene. These data define the position of these fragments in the precursor and indicate that the C-terminal sequence which is carried into the red cell during invasion consists of 2 epidermal growth factor (EGF)-like domains. A homologous cleavage sequence and domain structure can be identified in the MSP1 molecules of other malarial species. In addition the results suggest that the smaller fragment is not N-glycosylated.

Amino Acid Sequence

Mitochondrial DNA of the human malarial parasite Plasmodium falciparum.

Covalently closed circular DNA molecules were isolated from Plasmodium falciparum total DNA by isopycnic centrifugation in CsCl gradients containing either ethidium bromide or 2',6-diamidino-2-phenylindole. The circular molecules had an average contour length of 11.1 +/- 0.5 micron, similar to the analogous molecules previously isolated from the simian malaria parasite P. knowlesi. Both circular molecules shared considerable sequence homology and conserved restriction sites. The nucleotide sequence of one 936 bp fragment of the P. falciparum molecule was determined and identified, by a data base homology search, as part of a mitochondrial small rRNA subunit, thus confirming the mitochondrial origin of the circular DNAs of both malarial species.

Animals

Glucose-6-phosphate dehydrogenase activity of the malaria parasite Plasmodium falciparum.

Schizonts of Plasmodium falciparum, grown either in normal or glucose-6-phosphate dehydrogenase (G6PDH) deficient human red cells, contain an electrophoretically slow-moving form of G6PDH. The slow mobility of the G6PDH in non-dissociating polyacrylamide gels is due to its large size (Mr ca. 450,000) rather than to its charge. The activity of this enzyme was less than 10% of normal red cell G6PDH. These characteristics of the parasite-associated G6PDH were unaltered when parasites were grown in red cells from a G6PDH A+B+ heterozygote or following the introduction of a heterologous G6PDH into resealed ghosts. Differential absorption of the parasite-associated and red cell G6PDHs was demonstrated with antisera containing antibodies to red cell G6PDH. These studies show that a novel form of G6PDH is associated with P. falciparum in normal red cells without the requirements for induction by one or several cycles of multiplication in G6PDH deficient red cells.

Animals

Antibodies to the glutamate dehydrogenase of Plasmodium falciparum.

Polyclonal antisera raised against Plasmodium knowlesi reacted with NADP-specific glutamate dehydrogenase (GLDH) of P. knowlesi, GLDH of P. falciparum and GLDH of Proteus spp. The antisera did not react with NAD(P) GLDH from bovine liver. Polyclonal antisera raised against the GLDH of Proteus spp. cross-reacted with GLDH from P. falciparum. Monoclonal antibodies (McAbs) obtained from mice immunized with Proteus GLDH were either specific for the bacterial enzyme or cross-reacted with P. falciparum GLDH. The selected McAbs did not react with GLDH from P. knowlesi, P. chabaudi or P. berghei. The GLDH of P. falciparum was shown to be a cytosolic protein (by FAT) with a subunit molecular weight of approximately 49 000 Da (by immunoprecipitation) having a predominantly hexameric form (by sucrose density gradient). Implications of the conserved sequences of GLDHs and other enzymes are discussed.

Animals

Antigenic diversity and size diversity of Plasmodium falciparum antigens in isolates from Gambian patients. I. S-antigens.

Ring-stage asexual parasites of P. falciparum were collected from six Gambian children and the S-antigens radiolabelled by 3H-glycine uptake during in vitro culture up to rupture of infected cells and merozoite release. Ouchterlony double diffusion of boiled culture supernatants against a panel of adult Gambian sera identified one S-antigen precipitin arc for five isolates and two precipitin arcs for one isolate. Five of the six isolates were serologically distinct. Analysis of S-antigens by comparison of SDS-polyacrylamide gel electrophoresis patterns of heat-treated soluble proteins revealed a more complex pattern of 3H-labelled S-antigens that was different for each isolate. There were between two and six different 3H-labelled bands for each isolate in the size range of molecular weight 137 000 to 285 000. This result confirms the large size range of S-antigens identified with culture adapted P. falciparum. Several bands were relatively weakly labelled with 3H-glycine, suggesting that natural isolates contain one or two predominant S-antigen phenotypes and several other S-antigen phenotypes expressed by minor parasite subpopulations. Immunoprecipitation was performed using a panel of sera from Gambian adults, or, acute and 3 week convalescent sera from the same patients used for S-antigen radiolabelling. Adult sera generally immunoprecipitated some of the S-antigens in each isolate, including antigens that must represent extremely minor parasite subpopulations since they could not be seen in the patterns of non-immunoprecipitated heat-stable proteins. Sera from convalescent children were generally negative on immunoprecipitation, even with the homologous isolate. In one case we observed the acquisition of specific immunoprecipitating antibody to one of the homologous S-antigens during the convalescent period. The antigenic and structural complexity of S-antigens in natural isolates that have not been submitted to the selection pressure of adaptation for in vitro culture is clearly greater than for culture adapted P. falciparum.

Adult

Stage-specific production of S-antigens of Plasmodium falciparum in vitro.

Stage-specific synthesis and release of the S-antigen of Plasmodium falciparum was demonstrated using 3H-glycine-labelled, synchronous, cloned parasite populations. The release of S-antigens into culture supernatants was first evident 25 to 30 hours after initiation of the parasite cycle and correlated with the rupture of the most mature schizonts. S-antigen release reached a peak at 37 to 43 hours at the height of the reinvasion cycle. Intracellular production of S-antigens was evident slightly earlier (19 to 24 hours) and correlated with the initial appearance of schizonts.

Animals

A simple method for isolating viable mature parasites of Plasmodium falciparum from cultures.

Mature asexual parasites from cultures of knobby or knobless clones of P. falciparum containing 5 to 10% late forms were harvested by layering up to 10(9) erythrocytes on 3 ml Percoll. The density of the Percoll was adjusted to between 1.081 and 1.091 g cm-3, depending on the maturity of the parasites. Centrifugation at 1500 g for 10 min produced a sharp band at the interface containing mature parasites with a purity averaging 86%. Washed parasites derived from the layer or pellet showed good viability in vitro.

Animals

Metabolic labelling and characterisation of S-antigens, the heat-stable, strain-specific antigens of Plasmodium falciparum.

The C-10 clone of Plasmodium falciparum was metabolically labelled with [3H]glycine. Analysis by sodium dodecylsulphate/polyacrylamide gel electrophoresis (SDS/PAGE) revealed that S-antigens were the only significantly labelled products released into culture supernatants by the end of the asexual cycle. This result indicates conclusively that heat-stable, strain-specific antigens (the 'S-antigens') emanate from the parasite and not the host. The S-antigen of clone C-10 was resolved on SDS/PAGE as two labelled products with molecular weights of 156000 +/- 5000 and 130000 +/- 2000. The two components were differentially susceptible to proteolysis with trypsin. In other experiments, boiled plasma from Aotus monkeys infected with a different isolate of P. falciparum was partially purified by isoelectric focusing and the fraction containing S-antigen was iodinated by the Iodogen procedure. Analysis by SDS/PAGE of immunoprecipitated material revealed an iodinated component corresponding to the lower molecular weight band of the metabolically labelled S-antigen.

Animals