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Biomedical subjects

M J Blackman

Publications and source records attributed to M J Blackman.

18 recordsLinked to original sources

Epitopes in the 19kDa fragment of the Plasmodium falciparum major merozoite surface protein-1 (PfMSP-1(19)) recognized by human antibodies.

The antibody response to two different epitopes located in the C-terminal 19kDa fragment of the Plasmodium falciparum merozoite surface protein-1 (MSP-1(19)) has been studied using a competitive ELISA based on the inhibition of monoclonal antibody (MoAb) binding by serum samples. Sera from children aged three to eight years who suffered clinical symptoms of malaria, or were partially immune with an asymptomatic infection, and from adults all living in The Gambia, West Africa were tested. The results suggest that the antibody response to MSP-1(19) has a role in naturally-acquired immunity in Gambian individuals.

Adult

Antibodies inhibit the protease-mediated processing of a malaria merozoite surface protein.

When merozoites of the malaria parasite Plasmodium falciparum are released from infected erythrocytes and invade new red cells, a component of a protein complex derived from the merozoite surface protein 1 (MSP-1) precursor undergoes a single proteolytic cleavage known as secondary processing. This releases the complex from the parasite surface, except for a small membrane-bound fragment consisting of two epidermal growth factor (EGF)-like domains, which is the only part of MSP-1 to be carried into invaded erythrocytes. We report that, a group of monoclonal antibodies specific for epitopes within the EGF-like domains, some interfere with secondary processing whereas others do not. Those that most effectively inhibit processing have previously been shown to prevent invasion. Other antibodies, some of which can block this inhibition, not only do not prevent invasion but are carried into the host cell bound to the merozoite surface. These observations unequivocally demonstrate that the binding of antibody to the COOH-terminal region of MSP-1 on the merozoite surface may not be sufficient to prevent erythrocyte invasion, and show that the interaction of different antibodies with adjacent epitopes within the EGF-like domains of MSP-1 can have distinct biochemical effects on the molecule. Inhibition of MSP-1 processing on merozoites may be a mechanism by which protective antibodies interrupt the asexual cycle of the malaria parasite.

Animals

A conserved parasite serine protease processes the Plasmodium falciparum merozoite surface protein-1.

The merozoite surface protein-1 of the human malaria parasite Plasmodium falciparum undergoes an extracellular proteolytic cleavage (secondary processing) intrinsic to successful erythrocyte invasion. In the T9/96 clone of P. falciparum the protease responsible has been characterised as a membrane-associated, calcium-dependent activity, sensitive to irreversible inhibitors of serine proteases. Here we extend these studies and show that secondary processing activity in intact merozoites of P. falciparum strains expressing the alternative dimorphic type of merozoite surface protein-1 has identical characteristics, and that the cleavage site is close to or identical to that in the protein from T9/96. The protease responsible is shown to be parasite-derived, and able to catalyse processing of native substrate only when present in the same membrane. Cleavage of the substrate follows apparent first order kinetics for at least 2 half-lives. It is concluded that secondary processing of both dimorphic forms of the P. falciparum merozoite surface protein-1 is a conserved event, mediated by a mechanistically conserved protease located on the merozoite surface. These observations provide clues to the identity of the protease and show that, irrespective of the dimorphic type, secondary processing results in the same, highly conserved region of the merozoite surface protein-1 remaining on the surface of the invading merozoite.

Animals

A longitudinal study of naturally acquired cellular and humoral immune responses to a merozoite surface protein (MSP1) of Plasmodium falciparum in an area of seasonal malaria transmission.

A longitudinal study of cellular and serological responses to the major merozoite surface protein of Plasmodium falciparum (PfMSP1) has been conducted in a malaria immune population living in The Gambia, where malaria transmission is seasonally endemic. Recombinant or native proteins representing the sequence of PfMSP1 from the Wellcome strain of P. falciparum were used in in vitro lymphocyte proliferation, cytokine and antibody assays. Cellular responses of individual donors fluctuated over time, independent of seasonal changes in malaria transmission whereas anti-PfMSP1 antibody levels were remarkably stable. At a population level, IFN gamma responses were both more prevalent and of greater magnitude at the end of the rainy (malaria transmission) season than during the dry season. Responses of individuals living in a rural village were compared with those of individuals living in an urban area with much lower levels of malaria transmission. Malaria infections were more likely to be symptomatic in urban dwellers than in inhabitants of rural villages but no significant differences in the level or prevalence of cellular or serological responses were seen between the two groups. However, urban dwellers with current symptomatic malaria infections had somewhat lower anti-PfMSP1 antibody levels than their healthy, non-parasitaemic neighbours.

Adolescent

Use of a recombinant baculovirus product to measure naturally-acquired human antibodies to disulphide-constrained epitopes on the P. falciparum merozoite surface protein-1 (MSP1).

An enzyme-linked immunosorbent assay (ELISA) has been developed to measure antibody levels in human sera to a candidate vaccine antigen, merozoite surface protein-1 (MSP1), of the malaria parasite Plasmodium falciparum. To ensure the detection of antibodies reactive with important conformational epitopes, antigens used in the ELISA were obtained from either in vitro parasite cultures, or from a baculovirus expression system in which correct folding of recombinant MSP1-derived polypeptides has been previously demonstrated. The specificity of the ELISA was confirmed using a novel antibody affinity select method. The assay was used to investigate the pattern of acquisition of anti-MSP1 antibodies in a cross-sectional survey of 387 3-8 year old residents of a malaria endemic area of The Gambia. A significant positive correlation between anti-MSP1 antibody levels and age was evident, though individual responses to two antigens corresponding to two distinct domains of the MSP1 varied widely.

Age Factors

Secondary processing of the Plasmodium falciparum merozoite surface protein-1 (MSP1) by a calcium-dependent membrane-bound serine protease: shedding of MSP133 as a noncovalently associated complex with other fragments of the MSP1.

Merozoites of the malaria parasite Plasmodium falciparum possess on their surface proteolytically processed fragments of the merozoite surface protein-1 (MSP1). Secondary processing of one of these fragments, MSP1(42), always occurs prior to, or at the point of successful erythrocyte reinvasion. It is shown that a product of this secondary processing, MSP1(33), is shed in the form of a noncovalently-associated complex with a number of other proteins, including the MSP1-derived species MSP1(38) and MSP1(83). Secondary processing of MSP1(42) is inhibited by the chelating agents ethylenediaminetetraacetic acid (EDTA) and ethyleneglycol-bis-(beta-aminoethyl ether)-tetraacetic acid (EGTA), and this inhibition is reversible by addition of excess calcium. Secondary processing occurs in preparations of washed, disrupted merozoites, and is inhibited by the protease inhibitors phenylmethylsulphonyl fluoride (PMSF) and diisopropyl fluorophosphate (DFP), indicating that the protease responsible is a membrane-associated serine protease.

Animals

MHC and malaria: the relationship between HLA class II alleles and immune responses to Plasmodium falciparum.

In mice, immune responses to subunits of defined malaria antigens are regulated by genes mapping within the MHC and it has been suggested that such genetic restriction will be a major obstacle in the development of a human malaria vaccine. The relationship between class II human leukocyte antigen (HLA) genes and immune recognition of three candidate antigens for a vaccine against Plasmodium falciparum malaria has been investigated in a human population living in a malaria endemic area of West Africa. The study population was shown to be extremely heterogeneous for HLA class II alleles and marked differences in allelic frequency were detected between members of different ethnic groups. One class II DQA-DQB combination (serological specificity DQw2) was particularly common among members of the Fula ethnic group. This haplotype was significantly associated with higher than average levels of antibody to a peptide epitope, (EENV)6, of the malaria antigen Pf155/RESA. There was little evidence of association between HLA class II genotype and cellular proliferative or interferon gamma responses to the antigens tested. Overall, the number of significant associations between immune responses and specific HLA class II haplotypes was greater than would be expected by chance but less than would be expected if class II-dependent genetic restriction were a major factor governing human immune responses to malaria antigens. Thus, although some qualitative variation in the immune response to vaccine antigens may occur in ethnically different target populations, widespread HLA-associated nonresponsiveness to a multivalent subunit malaria vaccine is unlikely.

Adolescent

Naturally acquired cellular and humoral immune responses to the major merozoite surface antigen (PfMSP1) of Plasmodium falciparum are associated with reduced malaria morbidity.

We have investigated the pattern of acquired immune responses to the major surface protein of Plasmodium falciparum merozoites (gp 190, PfMSP1) in a malaria endemic population in West Africa. A prospective longitudinal study in 3- to 8-year-old children was conducted to examine the relationship between naturally acquired immune responses to PfMSP1 and subsequent susceptibility to malaria infection and clinical disease. A population cross-sectional survey was performed to investigate changes in immune response with age. The prevalence and concentration of antibodies to all regions of the molecule increased with age with the highest prevalence of antibodies being detected against regions of the molecule which are highly conserved between parasite isolates. In vitro lympho-proliferation and interferon-gamma production in response to recombinant proteins representing polymorphic regions of the molecule also increased with age. Interestingly, proliferative responses to some regions of the molecule, including some highly conserved sequences, were highest in young children and decreased markedly with increasing age. Significant associations were observed between antibody and lymphoproliferative responses to proteins from the C terminus of the molecule and resistance to episodes of fever associated with high parasitaemia in partially immune children. In addition, high concentrations of antibodies to a conserved region close to the N terminus of PfMSP1 were also significantly associated with protection.

Africa, Western

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

Processing of the Plasmodium falciparum major merozoite surface protein-1: identification of a 33-kilodalton secondary processing product which is shed prior to erythrocyte invasion.

We have previously shown that only a single 19-kDa fragment of the Plasmodium falciparum major merozoite surface protein (MSP1) is carried with an invading merozoite into the infected red cell. This fragment (MSP1(19] is derived from the C-terminal membrane-bound end of a major product, MSP1(42), of the primary stage of MSP1 proteolytic processing. Using a monoclonal antibody mapped to an epitope within the N-terminal region of MSP1(42), we have shown that a soluble 33-kDa polypeptide (MSP1(33) corresponding to the N-terminal region of MSP1(42) is shed into culture supernatants during merozoite release and erythrocyte invasion. These observations provide further evidence that the secondary processing of MSP1(42) involves a highly site-specific proteolytic activity.

Animals

The effect of interferon treatment of targets on susceptibility to cytotoxic T-lymphocyte killing: augmentation of allogeneic killing and virus-specific killing relative to viral antigen expression.

The effect on CTL lysis of treatment of CTL targets with IFNs has been investigated. Treatment of targets for alloreactive CTL with either IFN-alpha beta or IFN-gamma markedly augmented cytotoxicity. Cold competition experiments implied that CTL recognized the same target structure on both untreated and IFN-treated cells. This augmented lysis is presumably caused by IFN increasing expression of target MHC antigens. In the case of SFV-specific lysis of SFV-infected fibroblasts, IFN-alpha beta or IFN-gamma treatment somewhat reduced CTL lysis, but less so than Ab + C lysis which was abolished at moderate IFN concentrations; in the case of SFV-infected lymphoblastoid cells, CTL lysis remained the same or was slightly increased, whilst Ab + C lysis was reduced at moderate IFN concentrations and abolished at high IFN concentration; in the case of MSV/MLV-infected fibroblasts, CTL lysis was moderately increased whilst Ab + C lysis was decreased. IFN therefore increases virus-specific CTL cytotoxicity relative to viral antigen expression.

Animals

Production of type I (alpha/beta) interferon after virus infection of cloned, alloantigen-sensitized mouse T lymphocytes.

Mouse T lymphocytes sensitized to alloantigens were cloned by limiting dilution in the presence of interleukin 2. Clones were tested for surface markers Thy-1, Lyt-1 and Lyt-2, and for cytotoxic function. Production of interferon (IFN) by clones either (a) stimulated with allogeneic cells; (b) activated with concanavalin A (Con A); or (c) infected with Semliki Forest virus or Newcastle disease virus were assayed. All clones produced IFN upon Con A stimulation and most after virus infection. Analysis of the IFN produced by a single clone, using anti-IFN antisera, showed that while Con A stimulation induced production of type II IFN (IFN-gamma), the IFN produced after virus infection was type I IFN (IFN-alpha/beta).

Animals

Gamma interferon production and cytotoxicity of spleen cells from mice infected with Semliki Forest virus.

Interferon (IFN) production by spleen cells from normal mice, mice acutely infected with Semliki Forest virus (SFV) or mice immune to SFV was measured after stimulation in vitro with either infectious or inactivated SFV. All three classes of spleen cells made IFN-alpha beta in response to infectious SFV. Spleen cells taken from mice late, but not early, after infection, or from immune mice, made IFN-gamma in response to inactivated SFV. Amounts of INF-gamma and IFN-alpha beta were similar. Normal spleen cells made no IFN (of any type) in response to inactivated SFV. The cell type producing IFN-alpha beta appeared to be the macrophage, whilst both T-lymphocytes and macrophages were necessary for IFN-gamma production. During the acute infection, the ability of spleen cells to lyse both virus-infected and uninfected target cells arose earlier than the ability to produce IFN-gamma. However, cytotoxicity towards uninfected cells fell to near background levels by day 7, whilst cytotoxicity towards infected targets remained high at that time, when IFN-gamma production was at its peak. IFN-gamma production is therefore temporally associated with cytotoxicity specifically directed against virus-infected targets, and the ability to produce IFN-gamma is a late response to SFV infection.

Animals