Search PubMedSearch

SEARCH · Search PubMed

Results for “parasite genetic background”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 73 records · Page 4Linked to original sources

Naturally occurring variation in a cytochrome P450 modifies thiabendazole responses independently of beta-tubulin.

Widespread anthelmintic resistance has complicated the management of parasitic nematodes. Resistance to the benzimidazole (BZ) drug class is nearly ubiquitous in many species and is associated with mutations in beta-tubulin genes. However, mutations in beta-tubulin alone do not fully explain all BZ resistance. We performed a genome-wide association study using a genetically diverse panel of Caenorhabditis elegans strains to identify loci that contribute to resistance to the BZ drug thiabendazole (TBZ). We identified a quantitative trait locus (QTL) on chromosome V independent of all beta-tubulin genes and overlapping with two promising candidate genes, the cytochrome P450 gene cyp-35D1 and the nuclear hormone receptor nhr-176. Both genes were previously demonstrated to play a role in TBZ metabolism. NHR-176 binds TBZ and induces the expression of CYP-35D1, which metabolizes TBZ. We generated single gene deletions of cyp-35D1 and nhr-176 and found that both genes play a role in TBZ response. A predicted high-impact lysine-to-glutamate substitution at position 267 (K267E) in CYP-35D1 was identified in a sensitive strain, and reciprocal allele replacement strains in different genetic backgrounds were used to show that the lysine allele conferred increased TBZ resistance. Using competitive fitness assays, we found that neither allele was deleterious, but the lysine allele was selected in the presence of TBZ. Additionally, we found that the lysine allele significantly increased the rate of TBZ metabolism compared to the glutamate allele. Moreover, yeast expression assays showed that the lysine version of CYP-35D1 had twice the enzymatic activity of the glutamate allele. To connect our results to parasitic nematodes, we analyzed four Haemonchus contortus cytochrome P450 orthologs but did not find variation at the 267 position in fenbendazole-resistant populations. Overall, we confirmed that variation in this cytochrome P450 gene is the first locus independent of beta-tubulin to play a role in BZ resistance.

Animals

Disentangling host genetic variation for avoidance and resistance to pathogens.

BACKGROUND: Hosts can use avoidance (e.g., behavior) to reduce their contact rates with pathogens; after contact, they can use resistance (e.g., immunity) to reduce the establishment and proliferation of an infection. Because both defenses preserve host fitness and reduce pathogen fitness, we expect that their epidemiological and evolutionary effects will be interdependent. This study used a two-locus model to understand the evolution of allelic associations (i.e., linkage disequilibrium or LD) between genes determining levels of avoidance and resistance in the presence of an infectious disease or a parasite. RESULTS: We found that polymorphism in both avoidance and resistance was possible, but only for a limited range of parameter values. At equilibrium within these polymorphic populations, avoidance and resistance alleles were negatively associated (i.e., in negative LD). However, most commonly, polymorphism was only stably maintained at one defense locus, and the other locus became fixed for one allele. CONCLUSIONS: The model shows that avoidance and resistance are likely to influence each other's evolution because of their joint effects on infection and their costs; however, predictions about their relationship are not necessarily straightforward or intuitive. For example, avoidance and resistance may be more likely to covary across than within populations.

Animals

MHC restriction of the antibody repertoire to secretory antigens, and a major allergen, of the nematode parasite Ascaris.

Humans vary considerably in the antigen specificity of their immune responses to parasitic nematodes, and in the infection loads of individuals living in the same environment. The possibility that the former has a genetic basis operating through repertoire control of the immune system was investigated using infection of mice with the nematode Ascaris. The specificity of the antibody response was examined using excretory/secretory (ES) materials of the parasite as target Ag. No strain of mouse was found to recognize all of the potentially antigenic components of ES, and the Ag recognition patterns varied considerably from strain to strain. Using H-2 congenic mice on both the BALB and B10 backgrounds, it was established that the antigen recognition patterns were MHC-determined. Focusing on one particular component of ES, of Mr 14,000, only H-2s strains responded in IgG. This MHC restriction of the repertoire was confined to infection, and broke down under adjuvant-assisted immunization with the purified protein. The Mr 14,000 molecule was also found to be a potent allergen in a passive cutaneous anaphylaxis assay, and the IgE response to it was also restricted to H-2s. This haplotype was, however, a low IgE responder on the SJL background. There is, therefore, MHC control of the specificity of the immune response to this molecule, but non-MHC control of the amplitude of the IgE antibody response to it. Hybrids between responder and nonresponder strains (BALB/c x SJL)F1, responded to the Mr 14,000, but their responses to other ES components could not be predicted from the response patterns of parental strains. For example, the BALB/c parent responded to a 118-kDa component, but the SJL parent and the F1 progeny did not. Moreover, the response to a 41-kDa Ag was substantially down-regulated in the F1, whereas both parental strains responded vigorously. This new model system, therefore, has implications for MHC control of responses to the allergens of pathogens, and for the complex immunoregulation in heterozygotes in the context of infection.

Allergens

Tetracycline-controlled gene expression in Entamoeba histolytica.

To provide further tools for functional genetics of the protozoan parasite Entamoeba histolytica, we have tested the suitability of the bacterial TN10-encoded tet-repressor/tet-operator system for gene regulation in ameba trophozoites. Expression of the tet-repressor within the ameba was driven by the wild-type endogenous lectin gene promoter from episomal transfected plasmids. Tetracycline-inducible expression of a reporter gene driven by a modified tet-operator-bearing lectin gene promotor was monitored by transient and episomal transfection. Promotor activity was dependent on the position of the tet-operator insertion. Under appropriate conditions, expression of the reporter gene in tet-repressor expressing cells revealed only background levels but was inducible up to 240-fold by the addition of non-toxic amounts of tetracycline reaching full activity within 36 to 48 h. Because of the tight and rapid control by tetracycline, the tet-repressor controlled lectin gene promotor should be a usefull tool for reverse genetic approaches in E. histolytica as well as for recombinant protein expression within this anaerobic organism.

Animals

Helminth infections affect host immune responses to viral infections and vaccines.

Helminths are highly prevalent in many regions of the world. Due to the chronic nature of most helminth infections, these parasites are proficient immunomodulators of their hosts. This modulation often leads to skewed or even impaired immune responses against unrelated antigens, such as viruses and vaccines, which can be both beneficial and detrimental for the host. The extent of these effects and the impact on the outcomes of viral infection depends on a variety of factors including timing and tropism of both infections, pathological mechanisms, genetic background, and environmental factors. In this review, we dissect these complex interactions between virus and helminths in the context of coinfection and the impact of helminth infection on antiviral vaccine efficacy. We characterize the key contributing mechanisms that have been defined in preclinical models and human trials and describe the immune actors involved in the modulation of the antiviral and vaccine immune response by helminths. Finally, we address the limitations of our current understanding of helminth-virus interactions.

Helminthiasis

Candidate vaccine antigens identified by antibodies from mice vaccinated with 15- or 50-kilorad-irradiated cercariae of Schistosoma mansoni.

In murine schistosomiasis, the highest levels of resistance to cercarial challenge are obtained by vaccination with radiation-attenuated cercariae. To identify candidate vaccine antigens relevant to the vaccine model, we examined parasite antigens recognized by antibodies from mice vaccinated with irradiated cercariae of Schistosoma mansoni. To optimize recognition of a wide spectrum of antigens, several factors that influence the level of protection in this model were varied; specifically, we examined the effect of (i) single versus multiple vaccinations with irradiated cercariae, (ii) the dose of irradiation (15 or 50 kilorads) administered to the cercariae, and (iii) the genetic background of mouse strains, high-responder (C57BL/6J) versus moderate-responder (CBA/J) mice. We found that the number of vaccinations did not alter antibody specificity but modified the relative antibody titers against particular antigens. The dose of irradiation used to attenuate the immunizing cercariae had a similar effect on antibody titers but in addition influenced antibody specificity. Only mice that had been vaccinated with moderately irradiated cercariae recognized cathepsin B (Sm31) and Sm32. Interestingly, when vaccinated mice of the two strains, C57BL/6J and CBA/J, were compared, differences in antibody responses to particular antigens were observed. Both strains recognized the integral membrane protein Sm23, glutathione S-transferase, and cathepsin B, whereas Sm32 and paramyosin were recognized only by CBA/J mice, and heat shock protein 70 was recognized exclusively by C57BL/6J mice. In this study, we conclusively identified six distinct antigens that are specifically recognized by the humoral immune response of vaccinated mice.

Animals

The impact of new technologies on vaccine development.

The ability to move genetic determinants between species using in vitro gene-manipulation techniques has opened up new approaches to vaccine development. This has rapidly grown into an exciting area of research in both academic and industrial laboratories. There are numerous scientific challenges which require multidisciplinary teams to solve problems in creating new immunogens. This has challenged our existing knowledge about protein structure and conformation, microbial pathogenicity and the immune system. Recombinant-DNA techniques are invaluable as tools of analysis and antigen production. The surface of micro-organisms can also be minutely explored with the use of synthetic peptides and monoclonal antibodies. Nevertheless, these new technologies do not allow us to circumvent the need for detailed understanding of pathogens and the disease process. What is apparent from the work carried out so far is that there are few easy answers to vaccine development and it is not realistic to expect rapid solutions to these problems. As there are many potential targets for constructing novel vaccines for both human and animal diseases, it is helpful to establish some priorities. There is a tendency to look at the existing effective vaccines and simply direct research at producing them more economically or with enhanced safety and stability. The advantage of this approach is that considerable background work will have already been carried out establishing the basis for the application of recombinant DNA techniques. However, this can also lead to conflicts (often within the same institute or company) between the new and old technologies. This could be to the detriment of the new technologies which are still only partly developed and may not be good enough yet to compete with existing vaccines in cost or efficacy. The more ambitious, and eventually more rewarding, approach is to attempt to develop new vaccines where none had existed before. There is a vast untapped market, especially in the parasitic diseases, but the scientific problems may be considerable and much more background work is likely to be necessary. Indeed, most of the work in this area is more accurately referred to as basic research rather than vaccine development as totally new, effective vaccines are still some way off. Having directed research towards a specific organism or disease there are still many options available as to the scientific strategy to adopt. As discussed in this review it may be possible to consider subunits, synthetic antigens and live (attenuated or heterologous) organisms as possible vaccines.(ABSTRACT TRUNCATED AT 400 WORDS)

Adjuvants, Immunologic

Fertility and malaria in Sardinia.

Using data from the 1961 Italian census, the study of fertility in Sardinia when malaria was endemic shows differential fertility between women living in areas with differing degrees of malaria. Cultural factors measured by women's level of education are negatively correlated with fertility, just as the 'urban' character of the area in which the women lived has a lowering effect on the fertility rate. The hypothesis of differential mortality according to social class, affecting lower-class women and in particular the more prolific among them, seems to be supported by data analysed through time. The subdivision of Sardinian towns and villages into those with a 'low' and a 'high' malaria rate was made on the basis of the classification given by Fermi in a period corresponding to the overall period of fertility of the women considered. Hypotheses about a greater acquired immunity and a higher frequency of heterozygotes for malarial genes, like thalassaemia and G-6-PD deficiency, in the area where malaria was more intense, are proposed to explain the higher fitness of women living in this area. The comparison between frequencies of heterozygotes for thalassaemia and G-6-PD deficiency, obtained by Siniscalco et al. for Sardinian villages in the two different malaria-infested areas, shows a significant difference when the areas are examined as a whole, but a great variability (principally for G-6-PD deficiency) between villages. Changes in ecological factors could have modified the geographical distribution of malaria today, compared with the distribution that may have determined the frequencies of heterozygotes many years ago.

Adult

MHC and non-MHC-restricted recognition of filarial surface antigens in mice transplanted with adult Brugia malayi parasites.

We describe here the genetic control of humoral responses to filarial nematode Ag elicited by live adult Brugia malayi parasites in mice. Inbred and congenic mice of two different MHC haplotypes, H-2k and H-2d, were examined. Serologic analysis showed that the humoral responses to the major surface 29-kDa glycoprotein of adult parasites and a 40-kDa Ag from the surface of the microfilarial stage were restricted to mice with H-2k alleles (B10.BR, CBA/Ca, and CBA/N), whereas mice of the H-2d haplotype (B10.D2/n and BALB/c) were nonresponsive to these Ag. Conversely, internal adult Ag of molecular mass of 24 and 66 kDa were recognized only by animals with the H-2d haplotype. Apart from MHC-restricted recognition, the level of responses to phosphorylcholine and to a 15-kDa adult surface molecule were found to be influenced by non-MHC genes. A sharp restriction was also observed to an adult surface Ag complex of 17 to 200 kDa, which was recognized only by BALB/c mice. Thus, multiple examples of both H-2 and background genetic effects on the immune response to distinct filarial Ag can be found.

Animals

Mice from a genetically resistant background lacking the interferon gamma receptor are susceptible to infection with Leishmania major but mount a polarized T helper cell 1-type CD4+ T cell response.

Mice with homologous disruption of the gene coding for the ligand-binding chain of the interferon (IFN) gamma receptor and derived from a strain genetically resistant to infection with Leishmania major have been used to study further the role of this cytokine in the differentiation of functional CD4+ T cell subsets in vivo and resistance to infection. Wild-type 129/Sv/Ev mice are resistant to infection with this parasite, developing only small lesions, which resolve spontaneously within 6 wk. In contrast, mice lacking the IFN-gamma receptor develop large, progressing lesions. After infection, lymph nodes (LN) and spleens from both wild-type and knockout mice showed an expansion of CD4+ cells producing IFN-gamma as revealed by measuring IFN-gamma in supernatants of specifically stimulated CD4+ T cells, by enumerating IFN-gamma-producing T cells, and by Northern blot analysis of IFN-gamma transcripts. No biologically active interleukin (IL) 4 was detected in supernatants of in vitro-stimulated LN or spleen cells from infected wild-type or deficient mice. Reverse transcription polymerase chain reaction analysis with primers specific for IL-4 showed similar IL-4 message levels in LN from both types of mice. The IL-4 message levels observed were comparable to those found in similarly infected C57BL/6 mice and significantly lower than the levels found in BALB/c mice. Anti-IFN-gamma treatment of both types of mice failed to alter the pattern of cytokines produced after infection. These data show that even in the absence of IFN-gamma receptors, T helper cell (Th) 1-type responses still develop in genetically resistant mice with no evidence for the expansion of Th2 cells.

Animals

Chromosomal mapping of two loci affecting filarial worm susceptibility in Aedes aegypti.

Two quantitative trait loci (QTL) affecting susceptibility of the mosquito Aedes aegypti to the filarial worm parasite Brugia malayi were identified using restriction fragment length polymorphism (RFLP) markers. The first locus, fsb[1,LF178], resides within a 10 cM interval on chromosome 1 and exhibits a recessive effect with respect to susceptibility. The second locus, fsb[2,LF98], resides within a 9 cM interval on chromosome 2 and exhibits an additive effect on susceptibility. Significant epistasis was detected between these loci, although the effect of fsb[2,LF98] was dependent on the genetic background of the mosquito strains. Suggestions for a standard QTL nomenclature are included.

Aedes

The Bcg/Ity/Lsh locus: genetic transfer of resistance to infections in C57BL/6J mice transgenic for the Nramp1 Gly169 allele.

The murine Bcg/Ity/Lsh locus determines the susceptibilities of inbred strains to infection with unrelated intracellular parasites, such as Mycobacterium bovis, Salmonella typhimurium, and Leishmania donovani. A candidate for Bcg/Ity/Lsh, designated Nramp1, has been recently identified and shown to encode a novel integral membrane protein that is expressed exclusively in professional phagocytes but whose function remains unknown. In inbred strains, the susceptibility to infection is associated with a single glycine-to-aspartic acid substitution at position 169 (G169D) in the predicted TM4 of the protein. To confirm the candidacy of Nramp1 as Bcg/Ity/Lsh and to determine the importance of the G169D mutation on Nramp1 function, we constructed transgenic mice in which the G169 allele of Nramp1 was transferred onto the background of a homozygous D169 allele. These transgenic mice were analyzed for their sensitivity to infections under the control of Bcg/Ity/Lsh. The transgene constructed for these studies contained the entire Nramp1G169 gene together with approximately 5 kb of sequences upstream of the transcription initiation site of this gene. We observed that these sequences were sufficient to direct Nramp1G169 expression in transgenic macrophages, resulting in the appearance of a mature protein of 90 to 100 kDa over a background of Nramp1G169 characterized by the complete absence of the mature Nramp1 polypeptide. The appearance of the Nramp1G169-encoded protein in transgenic macrophages was concomitant with the emergence of resistance to infection by M. bovis BCG, as measured by the extent of bacteria] replication in the spleen, and by S. typhimurium, as measured by survival after an intravenous challenge. The gain of function detected in transgenic Nramp1G169 animals establishes unambiguously that Nramp1 and Bcg/Ity/Lsh are allelic.

Alleles

Genetic control of immunity to Plasmodium yoelii sporozoites.

Using a rodent malaria system, we have shown that protective immunity to the preerythrocytic stages of malaria is genetically controlled by MHC and non-MHC genes. Ten congenic strains of mice were immunized with irradiated sporozoites of Plasmodium yoelii. When challenged with viable sporozoites, only two strains had a high proportion of animals that did not develop blood stage infections. Immunity did not correlate with antisporozoite antibody levels. Two protective mechanisms exist determined by non-H-2 genes, and each mechanism is further controlled by H-2-linked Ir genes. On the BALB background only H-2d mice are protected, and protection is abolished by depleting CD8+ T cells. In contrast, on the B10 background only H-2q mice are strongly protected, and protection is not affected by CD8+ T cell depletion. If similar complex genetic regulation of immunity occurs in the human malarias, it will be a major hurdle for vaccine development.

Animals

The specificity of the antibody response to internal antigens of Ascaris: heterogeneity in infected humans, and MHC (H-2) control of the repertoire in mice.

Children from an area of Africa endemic for the large roundworm of humans, Ascaris lumbricoides, were found to vary considerably in the specificity of their serum IgG response to the internal antigens of the parasite. This was particularly noticeable for responses to a 14-kD protein (ABA-1) of the parasite that has previously been shown to be the subject of a strong IgE antibody response in infected animals. The possibility that this heterogeneity in immune repertoire has a genetic basis was explored in inbred mice infected with Ascaris suum. This showed that no strain responded to all the potential antigens, that the recognition profiles of strains bearing independent haplotypes were unique, and only H-2-identical strains had responses of similar specificities. Major histocompatability complex (MHC) restriction was confirmed using H-2-congenic animals on BALB and B10 backgrounds, which responded according to their H-2 haplotype. It is likely, therefore, that it is the MHC which controls the repertoire to Ascaris antigens in infected people. If this is so, then there will be implications for immunopathology associated with ascariasis, and possibly also for resistance and susceptibility to infection.

Animals

Immunogenetic influences on skin granuloma formation in mice.

Genetic influence on the development of granulomatous tissue reaction was investigated in C57BL/6 mice. Granulomas developed in the skin of euthymic C57BL/6 mice by transplantation of lyophilized hepatic granulomas were excised and lyophilized. The tissue mass free of parasite egg antigen and living cells was grafted into the skin of euthymic, athymic (nu/nu), and beige (bg/bg) C57BL/6 mice. Histological changes at the skin sites were studied weekly by light microscopy, and cells in newly developed granulomas at 6 weeks after grafting were examined by electron microscopy. Granulomatous inflammation occurred in all the variants but morphometric analysis showed that granulomatous inflammation was the most extensive in beige mice and least in athymic mice. The differences in the degree of tissue reaction were also quantified by measuring angiotensin converting enzyme and prolyl endopeptidase. Statistically significant differences among the animals with varying genetic background were confirmed by the marker enzyme activity. The findings confirm that initiation of a granulomatous response does not require T cells but T cell function is important for full expression of the reaction, while NK cell activity seems to suppress granuloma formation.

Animals

Genetic control of eosinophilia. Analysis of production and response to eosinophil-differentiating factor in strains of mice infected with Trichinella spiralis.

Bone marrow cultures were established from mice undergoing parasitic eosinophilia after infection with Trichinella spiralis. In the presence of eosinophil-differentiation factor (EDF/IL-5) eosinophil precursor cells differentiated and could be identified and counted after a 7-day in vitro culture period. The EDF-bone marrow assay system was used to determine differences in bone marrow eosinophil precursor capacity between a number of inbred strains of mice. Bone marrow cultures from high peripheral eosinophil-response phenotype strains of mice (NIH, SWR & SJL) contained significantly greater numbers of eosinophil precursor cells than the low response strain C57BL/10. All congenic strains of mice with the B10 background, i.e. C57BL/10, B10.S, B10.BR and B10.G were found to have low eosinophil precursor capacity. Bone marrow cultures obtained from F1 hybrids (NIH x C57/BL10, SJL x C57/BL10 and SWR x C57BL/10) demonstrated high precursor numbers, indicating that low responsiveness is inherited as a recessive characteristic. When spleen cells from T. spiralis-infected, high and low responder strains of mice were stimulated in vitro with concanavalin A (Con A) or with parasite antigen, it was found that low responder phenotype strains produced quantities of two eosinophilopoietic lymphokines EDF and IL3, which were similar to, if not greater than high responder strains. This suggests that bone marrow precursor capacity and not T cell lymphokine release is an important limiting factor in determining strain-dependent eosinophilia.

Animals

Interleukin-4 transgenic mice of resistant background are susceptible to Leishmania major infection.

The outcome of cutaneous leishmaniasis is dependent on the balance of Th1 and Th2 cells. In the murine model, Th1 cells are host-protective whereas the Th2 cells are disease-promoting. However, the in vivo role of interleukin-4 (IL-4), a signature product of Th2 cells, is uncertain. We compared the course of Leishmania major infection in the genetically resistant 129/Sv mice and the mutant 129/Sv mice transgenic for the murine IL-4 gene under the control of the immunoglobulin heavy chain enhancer and promoter. We report here that in contrast to their wild-type parents, the IL-4 transgenic mice are susceptible to L. major infection. This is associated with the development of inexorably progressive lesions and parasite loads. Spleen cells from infected transgenic mice produced significantly higher levels of IL-4 but lower amounts of interferon-gamma when stimulated in vitro with leishmanial antigens compared to those from infected normal 129/Sv mice. Furthermore, sera from the infected transgenic mice contained higher levels of IL-4 and IgE than the sera of infected normal 129/Sv mice. These results, therefore, establish in a new animal model that IL-4 promotes disease development in murine cutaneous leishmaniasis.

Animals

Proteins with glycosylphosphatidylinositol (GPI) signal sequences have divergent fates during a GPI deficiency. GPIs are essential for nuclear division in Trypanosoma cruzi.

Glycosylphosphatidylinositols (GPIs) are membrane anchors for cell surface proteins of several major protozoan parasites of humans, including Trypanosoma cruzi, the causative agent of Chagas' disease. To investigate the general role of GPIs in T. cruzi, we generated GPI-deficient parasites by heterologous expression of T. brucei GPI-phospholipase C. Putative protein-GPI intermediates were depleted, causing the biochemical equivalent of a dominant-negative loss of function mutation in the GPI pathway. Cell surface expression of major GPI-anchored proteins was diminished in GPI-deficient T. cruzi. Four proteins that are normally GPI-anchored in T. cruzi exhibited different fates during the GPI shortage; Ssp-4 and p75 were secreted prematurely, while protease gp50/55 and p60 were degraded intracellularly. These observations demonstrate that secretion and intracellular degradation of GPI-anchored proteins may occur in the same genetic background during a GPI deficiency. We postulate that the interaction between a protein-GPI transamidase and the COOH-terminal GPI signal sequence plays a pivotal role in determining the fate of these proteins. At a nonpermissive GPI deficiency, T. cruzi amastigotes inside mammalian cells replicated their single kinetoplast but failed at mitosis. Hence, in these protozoans, GPIs appear to be essential for nuclear division, but not for mitochondrial duplication.

Animals