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Biomedical subjects

M F Good

Publications and source records attributed to M F Good.

At least 19 recordsLinked to original sources

Genetic regulation of protective immune response in congenic strains of mice vaccinated with a subunit malaria vaccine.

The C-terminal 19-kDa, epidermal growth factor-like region of the merozoite surface protein 1 (MSP1) has been used as a vaccine to induce protective immunity to Plasmodium yoelii in mice and to Plasmodium falciparum in monkeys. To analyze the mechanisms and genetic regulation of this MSP1 vaccine-induced protection, we studied the immunologic correlates of protection in H-2 recombinant and congenic mouse strains on the B10 background. Multiple H-2-linked loci were found to contribute, each with a different mechanism. One locus mapped to the I-A region based on the strong protection in C57BL/10 mice compared with intermediate protection in B10.A(4R) mice and the lack of a difference between B10.AKM and B10.MBR mice. Differences in efficacy of passively transferred antisera from vaccinated C57BL/10 vs B10.A(4R) mice indicated that the protection regulated by the I-A locus was at least in part Ab dependent. Two loci mapped to the right of I-A (FE, H-2S, or H-2D) based on a correlation with the number of H-2k loci to the right of I-A in mice that were I-Ak. One effect was Ab independent and may correspond to a possible negative effect of the I-Ek locus. T cells from protected and nonprotected strains differed in their production of IFN-gamma and TNF-alpha following immunization with MSP1(19), but it was unclear how the differential patterns of cytokine expression related to the level of protection. Thus, MSP1(19) vaccine-induced protection is regulated by H-2-linked loci corresponding to two different immune mechanisms. These findings may indicate the need for more than one Ag in a vaccine to protect an HLA-diverse population.

Animals

A study of human T-cell lines generated from multiple sclerosis patients and controls by stimulation with peptides of myelin basic protein.

We generated T-cell lines from the peripheral blood of controls and of patients with multiple sclerosis (MS) by stimulation with overlapping synthetic peptides representing the entire sequences of all four isoforms of human myelin basic protein (MBP). The T-cell lines reacted to a wide range of epitopes in the major isoforms of MBP and to epitopes that were present only in the minor isoforms. Many MS patients and controls had T-cells responding to one or more cryptic MBP epitopes, as indicated by the generation of a peptide-specific T-cell line(s) by stimulation with synthetic peptides but not by stimulation with whole MBP. About one-third of the peptide-generated lines were cytotoxic. Although we have shown that this technique of peptide stimulation is effective in generating human antiviral cytotoxic CD8+ T-cell lines, all the cytotoxic MBP-specific lines generated by this method were predominantly CD4+. Our study did not reveal any significant differences, between MS patients and controls, in reactivity to epitopes within any of the isoforms of MBP.

Adolescent

Towards understanding the pathogenesis of rheumatic fever.

Acute rheumatic fever results from an immunological response to group A streptococcal infection, but the exact nature of this response, and of the underlying host and organism characteristics, continues to evade researchers. Earlier models of rheumatic fever pathogenesis emphasised the importance of humoral immunity, but more recent work suggests that cellular immunity may play a primary role. Greater understanding of these disease mechanisms is allowing researchers to move towards the development of a vaccine for rheumatic fever.

Humans

Antigens released at schizont burst stimulate Plasmodium falciparum-specific CD4+ T cells from non-exposed donors: potential for cross-reactive memory T cells to cause disease.

In an individual experiencing the first attack of malaria, symptoms of disease can occur at very low parasitemia. T cells and cytokines have been implicated in the etiology of disease symptoms, and others and ourselves have shown that T cells from non-exposed individuals can be stimulated by malaria parasites. Here, we show that nine from 11 blood samples, naturally infected with malaria parasites, could stimulate proliferation of a malaria-specific T cell clone derived from a non-exposed donor. T cells were able to respond to infected blood at a parasitaemia as low as 0.000003% (comparable to the level at which individuals can first experience symptoms of malaria) and secrete cytokines implicated in pathology. Antigens capable of stimulating T cells are expressed throughout the blood stage, but are specifically released at the time of schizont rupture. While most TCR V beta genes are expressed during the T cell response of naive donors to malaria parasites, processing of parasite antigens is blocked by chloroquine and monensin, and activation of 36 of 41 malaria-specific clones tested was restricted by defined MHC class II allelic antigens, strongly suggesting that parasites do not act as mitogens nor as superantigens. The clones react to various commonly encountered pathogenic and non-pathogenic microbes. These data support the concept that activation of cross-reactive memory T cells by malaria parasites contributes to disease symptoms in individuals experiencing their first attack of malaria.

Adolescent

Development of immunity to malaria may not be an entirely active process.

It has never been explained why it takes so long for humans to develop immunity to malaria, although factors such as antigenic variation, antigenic polymorphism, and poor immunological responses to critical antigens are thought to be important. Models of malaria, particularly in rodents, have not been helpful. The course of malaria infection differs considerably between humans and rodents. Mice rapidly develop immunity whereas for most humans it takes several years of exposure for this to occur. Mice typically exhibit high parasitaemias whereas humans typically do not. A significant difference in the immune response of humans and mice to malaria parasites might, in part, explain these differences. Most humans have a preexisting population of activated malaria parasite-specific T cells (cross-reactive T cells) which we have referred to as 'natural' T cells, but such cells have not been observed in mice. These cells, many of which secrete interferon-gamma, might control parasitaemia early in the infection, but a by-product of their further activation by malaria parasites might be disease symptoms. Development of immunity has been thought of as an active process--acquisition of specific antibody and effector T cell responses. However, it might in part reflect induction of tolerance of this preexisting population of disease-inducing T cells as a result of chronic parasitaemia. The initial presence of these Th1-like cells may also impede the development of a Th2-like response necessary for the production of protective antibodies. Persistent cross-reactive stimulation may significantly impede this process.

Animals

Towards a vaccine for rheumatic fever: identification of a conserved target epitope on M protein of group A streptococci.

Rheumatic fever and rheumatic heart disease remain very common in developing countries, and a vaccine to protect against these disorders would have a great impact on public health. A vaccine must target the M protein of group A streptococci (Streptococcus pyogenes), but until lately immunity was thought to be strain-specific and dependent on antibodies to the variable serotype-specific regions of the protein. Experiments in animals have suggested the conserved region of the M protein as a possible alternative target for protective antibodies. We constructed a 20-aminoacid peptide (peptide 145) within the conserved region of the carboxyl terminus of the protein. In mice the peptide induced serum antibodies that could opsonise reference type 5 streptococci. By enzyme-linked immunosorbent assay, positive responses to peptide 145 were obtained with serum from 77 (90%) of 86 Aboriginal subjects and 135 (81%) of 167 Thai subjects living in areas with high exposure to streptococci. Only 10 (14%) of 71 Caucasian subjects with low exposure to streptococci showed positive responses. There was no difference in the proportion positive between subjects with rheumatic heart disease and control groups (other or no heart disease). Antibodies to peptide 145 were able to opsonise isolates of streptococci from Aboriginal and Thai subjects with acute rheumatic fever as well as reference strains. This highly conserved part of the M protein may be a suitable target for vaccines to prevent streptococcal infections and their sequelae.

Amino Acid Sequence

Analysis of human T cell clones specific for conserved peptide sequences within malaria proteins. Paucity of clones responsive to intact parasites.

T cells are thought to be of central importance in malaria immunity. Peptides copying malaria protein sequences often stimulate human CD4+ T cells and it was thought that they represented T cell epitopes present in the parasite and may thus have particular relevance to malaria vaccine development. To verify whether synthetic peptides representing highly conserved regions of parasite Ags may contribute to a malaria vaccine, we searched the data bank for conserved regions of Plasmodium falciparum malaria proteins that were not homologous to known self (human) proteins. We synthesized 24 such peptides representing 11 of the cloned and sequenced malaria asexual stage Ags, which were predicted by algorithms to represent T cell epitopes, and 6 peptides not predicted to be T cell epitopes and used these to generate T cell clones from individuals with an extensive previous history of malaria exposure. The T cell clones responded vigorously to many peptides but only a single clone, specific for a peptide within merozoite surface protein-1, 20-39, VTHESYQELVKKLEALEDAV, and not previously defined to be a T cell epitope responded to malaria parasites by proliferation and secretion of IFN-gamma. This epitope was not revealed by studying parasite-induced T cell lines and is thus subdominant. The clone was able to significantly inhibit parasite growth in vitro. The final step in the inhibition of parasite growth appears to be nonspecific because other activated clones (not specific for malaria sequences) can inhibit parasite growth. Our data suggest that few conserved peptides within malaria parasites can be processed from the intact parasite. However, such peptides that can be processed from malaria parasites may be expected to stimulate parasite-specific T cells that could inhibit parasite growth and as such may be lead candidates for a vaccine aimed at inducing cellular immunity to malaria.

Adult

Malaria pathogenesis.

Malaria is a disease caused by repeated cycles of growth of the parasite Plasmodium in the erythrocyte. Various cellular and molecular strategies allow the parasite to evade the human immune response for many cycles of parasite multiplication. Under certain circumstances Plasmodium infection causes severe anemia or cerebral malaria; the expression of disease is influenced by both parasite and host factors, as exemplified by the exacerbation of disease during pregnancy. This article provides an overview of malaria pathogenesis, synthesizing the recent field, laboratory, and epidemiological data that will lead to the development of strategies to reduce mortality and morbidity.

Anemia

Life-spans of human T-cell responses to determinants from the circumsporozoite proteins of Plasmodium falciparum and Plasmodium vivax.

The longevity of specific human memory T-cell responses is largely unknown. However, a knowledge of the duration of memory is important for understanding immunity to an organism and for planning vaccine intervention. To address this, we have examined T-cell memory to malaria by determining T-cell responses by subjects recently exposed to peptides spanning the circumsporozoite (CS) proteins of two species of malaria-causing organisms, Plasmodium falciparum and Plasmodium vivax. Responses to vivax CS peptides by exposed Thai subjects were more frequent than responses by nonexposed individuals, permitting identification of determinants seen by vivax-induced responses. At the population level, there appears to be life-long memory, as the time since individuals were exposed did not diminish responsiveness to these determinants. In contrast, falciparum-exposed subjects were largely indistinguishable from nonexposed controls in responsiveness to falciparum CS determinants. However, a single peptide (F16: DNEKLRKPKHKKLKQPGDGN) was recognized significantly more frequently by P. falciparum-exposed than nonexposed Thai subjects. T cells responsive to this peptide were CD450+ and produced gamma-interferon. In contrast to the response to the vivax determinants and the other falciparum determinants, responsiveness to F16 was undetectable or minimal 2 years after exposure. Our data provide the average life-spans of certain malaria-specific T cells and are consistent with, but do not prove, the hypothesis that antigenic persistence (in the form of P. vivax hypnozoites) correlates with persistence of human T-cell memory.

Adult

Natural amino acid polymorphisms of the circumsporozoite protein of Plasmodium falciparum abrogate specific human CD4+ T cell responsiveness.

Sequence polymorphism has been reported for virtually all malaria antigens and, in the case of the circumsporozoite (CS) protein, this variation is in the form of point mutations concentrated primarily in several regions recognized by T cells. The factors responsible for the variation are unknown. We studied the T cell responses to all known variants in malaria-exposed Thais. Memory CD4+ T cells responded to variants of a polymorphic immunodominant region (denoted Th2R), and CD4+ T cell clones specific for one Thai Th2R variant were generated. There was minimal cross-reactivity to any of the naturally occurring variants, including the other Thai variant, and competition studies performed with the clones using analog peptides demonstrated that all the substitutions of the polymorphic residues modulate either the binding of the peptide to major histocompatibility complex (MHC) molecules or the recognition by the T cell receptor of the peptide-MHC complex. Our data suggest that CD4+ T cells may be able to select parasites expressing variant sequences and have implications for development of a CS-based vaccine.

Adult

Antigenic diversity and MHC genetics in sporozoite immunity.

A great deal of effort is directed towards developing a sporozoite vaccine. In the last decade, target antigens have been identified and cloned, and a number of vaccine trials undertaken in both humans and laboratory animals. One of the problems facing us is the lack of widespread immunogenicity of vaccine candidates. This relates, at least in part, to genetic factors in the vaccinee. Genes within the major histocompatibility complex (MHC) which restrict some sporozoite-specific responses have been identified. Antigenic diversity also contributes to the difficulty of developing a successful vaccine. This brief report provides some background information for these topics.

Amino Acid Sequence

Immunological responses from non-exposed donors to malaria antigens: implications for immunity and pathology.

An approach to identification of epitopes suitable for vaccine development has been to locate regions of malaria target antigens that are recognized by individuals with clinical immunity. This has applied to identification of T- and B-cell epitopes. It is now realized, however, that T cells from individuals without prior exposure to malaria can respond to malaria parasites, malaria proteins, and peptides copying protein sequences. Such observations raise questions about which epitopes we should be targeting for vaccine development, but also challenge our understanding of immunological memory. Such responses from non-exposed individuals may also be important in expression of disease symptoms.

Antigens, Protozoan

Identification of T cell autoepitopes that cross-react with the C-terminal segment of the M protein of group A streptococci.

Rheumatic fever (RF) follows a throat infection with different M-serotypes of beta-hemolytic group A streptococci (GAS) and can affect different tissues, predominantly the heart. It is thought to be an autoimmune illness. Although histological examination of affected heart shows an infiltrate consisting mainly of T cells, antigens or epitopes that could be putative targets of autoimmune T cells have not been identified. We have examined the T cell response to the conserved C-terminal region of the M protein--a streptococcal surface coiled-coil protein which is the target of opsonic antibodies and antibodies which cross-react with human heart tissue. Australian Aborigine, Caucasian and Thai patients, controls and mice were studied to define regions of the protein immunogenic for T cells, and T cell lines and clones were tested for cross-reactivity to myosin as well as an extract of RF-diseased mitral heart valve. Murine (B10, B10.D2, B10.BR) M peptide-specific T cells were often cross-reactive for other M peptides but did not cross-react with human heart antigens. Patients with RF or other heart diseases, or control subjects exposed more commonly to GAS were more likely to have T cell responses to the M protein, with many regions of the C-terminus being recognized. T cell lines and a clone specific for different M peptides were generated from five donors. Cross-reactivity could be shown between different M peptides, but unlike murine M peptide-specific T cells three of the human T cell lines reacted strongly to peptides representing homologous regions of cardiac and skeletal muscle myosins, and two of these lines also responded to porcine myosin and an extract of human rheumatic mitral valve. However, these last two lines were derived from a normal donor without history of RF or other heart disease. Our data demonstrate that regions of the M protein, including regions that are being considered as subunit vaccines, have the potential to stimulate pre-existing heart cross-reactive T cells, but that the ability of such T cells to cross-react (as measured in vitro) is not in itself sufficient to lead to disease.

Adolescent

Inhibition of Plasmodium falciparum growth in vitro by CD4+ and CD8+ T cells from non-exposed donors.

T cells from most adult non-exposed donors, which express a memory phenotype (CD45RO+), can respond by proliferation to P. falciparum asexual stages in vitro. Such cells may have arisen from exposure to environmental organisms. To address the efficacy of such cells in eliminating parasites and investigate the mechanisms involved, we have used an in vitro assay where parasite growth can be precisely monitored in the presence of different cell preparations. Unfractionated peripheral blood mononuclear cells (PBMC) from both malaria-exposed and non-exposed donors inhibited parasite growth by up to 62% in a two day assay. Purified T cells in the presence of adherent cells had a similar effect, but purified T cells alone or adherent cells alone had minimal effect. Antigens released at the time of schizont rupture were maximally effective in stimulating interferon-gamma (IFN gamma) production. Neutralizing antibodies to IFN gamma showed a partial reduction of growth inhibition in some individuals tested suggesting that different mechanisms may be operative. Neutralizing antibody to TNF alpha had a partial effect in combination with anti-IFN gamma. Antibodies to IL-1 and IL-4 had no effect. T cell fractionation experiments showed that while purified CD4+ T cells from some donors produced IFN gamma and inhibited parasite growth, purified CD8+ T cells could inhibit parasite growth to a greater extent without production of detectable IFN gamma.(ABSTRACT TRUNCATED AT 250 WORDS)

Adolescent

Evidence for limited activation of distinct CD4+ T cell subsets in response to the Plasmodium falciparum circumsporozoite protein in Papua New Guinea.

Both CD4+ and CD8+ T cells, as well as antibody, are known to be important in sporozoite immunity. Data from animal studies suggest that cytokines, in particular gamma-interferon and interleukin-6, are involved. The interplay of these various factors and their importance in vaccine development has, however, not yet been elucidated. In this study, we have studied cellular and humoral responses of individuals naturally exposed to malaria in a highly endemic region of Papua New Guinea to the circumsporozoite protein of Plasmodium falciparum, a prime vaccine candidate antigen. A paucity of any CD4+ lymphoproliferative response to this protein by Papua New Guineans was notable which parallels our recent observation of a paucity of CD8+ T cell response and contrasts markedly with the responses of other endemic populations. There was nevertheless a significant antibody response to the central conserved B cell epitope, (NANP)n, as well as to other critical epitopes. An inverse relationship between gamma-interferon production and interleukin-6 production and a positive correlation between gamma-interferon production and CS peptide-specific lymphoproliferation was observed. High levels of peptide-specific IL-6 production were associated with high levels of peptide-specific serum antibodies. Our data provide evidence for the limited activation of distinct CD4+ T cell subsets and for the existence of functionally distinct subpopulations of human CD4+ T cells with respect to cytokines known to be important in sporozoite immunity.

Adult

Identification of Caucasian CD4 T cell epitopes on the circumsporozoite protein of Plasmodium vivax. T cell memory.

We have identified a population of Caucasians with a defined past history of infection with Plasmodium vivax malaria. Using purified synthetic peptides overlapping the sequence of the circumsporozoite protein, we determined the percentage of individuals whose T cells proliferated or secreted IFN-gamma in response to peptide stimulation, for both this population and a population of nonmalaria-exposed control individuals. A number of peptides were recognized by both groups, but 11 peptides were uniquely recognized by the exposed population, and thus represented malaria-specific T cell epitopes. CD4 T cells were found to be responsible for the proliferative response. Humans last exposed to vivax sporozoites as long ago as 49 yr responded as well or better to these malaria-specific epitopes as individuals exposed within the previous month. Since such malaria-induced memory response may not be a feature of Plasmodium falciparum infections, and since P. falciparum does not have a persisting hypnozoite stage, our data argue that the persistence of T cell memory to vivax epitopes may result from antigenic persistence in the liver.

Adult