RESUMEN
The Plasmodium falciparum reticulocyte-binding protein homolog 5 (PfRH5) is the leading target for next-generation vaccines against the disease-causing blood-stage of malaria. However, little is known about how human antibodies confer functional immunity against this antigen. We isolated a panel of human monoclonal antibodies (mAbs) against PfRH5 from peripheral blood B cells from vaccinees in the first clinical trial of a PfRH5-based vaccine. We identified a subset of mAbs with neutralizing activity that bind to three distinct sites and another subset of mAbs that are non-functional, or even antagonistic to neutralizing antibodies. We also identify the epitope of a novel group of non-neutralizing antibodies that significantly reduce the speed of red blood cell invasion by the merozoite, thereby potentiating the effect of all neutralizing PfRH5 antibodies as well as synergizing with antibodies targeting other malaria invasion proteins. Our results provide a roadmap for structure-guided vaccine development to maximize antibody efficacy against blood-stage malaria.
Asunto(s)
Anticuerpos Monoclonales/inmunología , Anticuerpos Neutralizantes/inmunología , Anticuerpos Antiprotozoarios/inmunología , Eritrocitos/parasitología , Vacunas contra la Malaria/inmunología , Malaria Falciparum/inmunología , Plasmodium falciparum/inmunología , Adolescente , Adulto , Animales , Sitios de Unión , Proteínas Portadoras/inmunología , Reacciones Cruzadas/inmunología , Epítopos/inmunología , Femenino , Células HEK293 , Voluntarios Sanos , Humanos , Malaria Falciparum/parasitología , Masculino , Merozoítos/fisiología , Persona de Mediana Edad , Plasmodium falciparum/metabolismo , Proteínas Protozoarias/inmunología , Conejos , Ratas , Ratas Sprague-Dawley , Adulto JovenRESUMEN
Plasmodium parasites, the eukaryotic pathogens that cause malaria, feature three distinct invasive forms tailored to the host environment they must navigate and invade for life cycle progression. One conserved feature of these invasive forms is the micronemes, apically oriented secretory organelles involved in egress, motility, adhesion, and invasion. Here we investigate the role of GPI-anchored micronemal antigen (GAMA), which shows a micronemal localization in all zoite forms of the rodent-infecting species Plasmodium berghei. ∆GAMA parasites are severely defective for invasion of the mosquito midgut. Once formed, oocysts develop normally, however, sporozoites are unable to egress and exhibit defective motility. Epitope-tagging of GAMA revealed tight temporal expression late during sporogony and showed that GAMA is shed during sporozoite gliding motility in a similar manner to circumsporozoite protein. Complementation of P. berghei knockout parasites with full-length P. falciparum GAMA partially restored infectivity to mosquitoes, indicating conservation of function across Plasmodium species. A suite of parasites with GAMA expressed under the promoters of CTRP, CAP380, and TRAP, further confirmed the involvement of GAMA in midgut infection, motility, and vertebrate infection. These data show GAMA's involvement in sporozoite motility, egress, and invasion, implicating GAMA as a regulator of microneme function.
Asunto(s)
Culicidae , Parásitos , Animales , Culicidae/metabolismo , Culicidae/parasitología , Parásitos/metabolismo , Proteínas Protozoarias/genética , Proteínas Protozoarias/metabolismo , Oocistos , Plasmodium berghei/genética , Plasmodium berghei/metabolismo , Esporozoítos/metabolismoRESUMEN
A highly efficacious malaria vaccine that prevents disease and breaks the cycle of infection remains an aspirational goal of medicine. Whole parasite vaccines based on the sporozoite forms of the parasite that target the clinically silent pre-erythrocytic stages of infection have emerged as one of the leading candidates. In animal models of malaria, these vaccines elicit potent neutralizing Ab responses against the sporozoite stage and cytotoxic T cells that eliminate parasite-infected hepatocytes. Among whole-sporozoite vaccines, immunization with live, replication-competent whole parasites engenders superior immunity and protection when compared with live replication-deficient sporozoites. As such, the genetic design of replication-competent vaccine strains holds the promise for a potent, broadly protective malaria vaccine. In this report, we will review the advances in whole-sporozoite vaccine development with a particular focus on genetically attenuated parasites both as malaria vaccine candidates and also as valuable tools to interrogate protective immunity against Plasmodium infection.
Asunto(s)
Hepatocitos/inmunología , Vacunas contra la Malaria/inmunología , Malaria/inmunología , Plasmodium/fisiología , Esporozoítos/inmunología , Linfocitos T Citotóxicos/inmunología , Animales , Anticuerpos Neutralizantes/metabolismo , Anticuerpos Antiprotozoarios/metabolismo , Antígenos de Protozoos/inmunología , Ingeniería Genética , Hepatocitos/parasitología , Humanos , Malaria/prevención & controlRESUMEN
Gammaherpesviruses encode proteins with homology to the cellular purine metabolic enzyme formyl-glycinamide-phosphoribosyl-amidotransferase (FGARAT), but the role of these viral FGARATs (vFGARATs) in the pathogenesis of a natural host has not been investigated. We report a novel role for the ORF75A vFGARAT of murine gammaherpesvirus 68 (MHV68) in infectious virion production and colonization of mice. MHV68 mutants with premature stop codons in orf75A exhibited a log reduction in acute replication in the lungs after intranasal infection, which preceded a defect in colonization of multiple host reservoirs including the mediastinal lymph nodes, peripheral blood mononuclear cells, and the spleen. Intraperitoneal infection rescued splenic latency, but not reactivation. The 75A.stop virus also exhibited defective replication in primary fibroblast and macrophage cells. Viruses produced in the absence of ORF75A were characterized by an increase in the ratio of particles to PFU. In the next round of infection this led to the alteration of early events in lytic replication including the deposition of the ORF75C tegument protein, the accelerated kinetics of viral gene expression, and induction of TNFα release and cell death. Infecting cells to deliver equivalent genomes revealed that ORF75A was required for initiating early events in infection. In contrast with the numerous phenotypes observed in the absence of ORF75A, ORF75B was dispensable for replication and pathogenesis. These studies reveal that murine rhadinovirus vFGARAT family members ORF75A and ORF75C have evolved to perform divergent functions that promote replication and colonization of the host.
Asunto(s)
Gammaherpesvirinae/fisiología , Infecciones por Herpesviridae/virología , Pulmón/virología , Macrófagos/virología , Sistemas de Lectura Abierta , Bazo/virología , Proteínas Virales/metabolismo , Animales , Células de la Médula Ósea/citología , Células Cultivadas , Codón sin Sentido , ADN Recombinante/metabolismo , ADN Viral/metabolismo , Embrión de Mamíferos/citología , Gammaherpesvirinae/crecimiento & desarrollo , Gammaherpesvirinae/patogenicidad , Infecciones por Herpesviridae/inmunología , Infecciones por Herpesviridae/patología , Pulmón/inmunología , Pulmón/patología , Macrófagos/inmunología , Macrófagos/patología , Ratones , Ratones Endogámicos C57BL , Células 3T3 NIH , Filogenia , Bazo/inmunología , Bazo/patología , Carga Viral , Proteínas Virales/genética , Latencia del Virus , Replicación ViralRESUMEN
[This corrects the article DOI: 10.1371/journal.ppat.1006843.].
RESUMEN
Malaria-causing Plasmodium parasites first replicate as liver stages (LS), which then seed symptomatic blood stage (BS) infection. Emerging evidence suggests that these stages impact each other via perturbation of host responses, and this influences the outcome of natural infection. We sought to understand whether the parasite stage interplay would affect live-attenuated whole parasite vaccination, since the efficacy of whole parasite vaccines strongly correlates with their extend of development in the liver. We thus investigated the impact of BS infection on LS development of genetically attenuated and wildtype parasites in female rodent malaria models and observed that for both, LS infection suffered severe suppression during concurrent BS infection. Strikingly and in contrast to previously published studies, we find that the BS-induced iron-regulating hormone hepcidin is not mediating suppression of LS development. Instead, we demonstrate that BS-induced host interferons are the main mediators of LS developmental suppression. The type of interferon involved depended on the BS-causing parasite species. Our study provides important mechanistic insights into the BS-mediated suppression of LS development. This has direct implications for understanding the outcomes of live-attenuated Plasmodium parasite vaccination in malaria-endemic areas and might impact the epidemiology of natural malaria infection.
Asunto(s)
Hepatopatías , Vacunas contra la Malaria , Malaria , Plasmodium , Femenino , Humanos , Hepcidinas , Malaria/parasitología , HígadoRESUMEN
In this issue of Cell Host & Microbe, Kurup et al. report that infection of the liver by Plasmodium parasites promotes the recruitment of dendritic cells that acquire and present parasite antigen from infected hepatocytes. These cells then prime parasite-specific CD8 T cells in liver-draining lymph nodes.
Asunto(s)
Malaria/parasitología , Plasmodium berghei/inmunología , Antígenos de Protozoos/inmunología , Linfocitos T CD8-positivos/inmunología , Hepatocitos/parasitología , Humanos , Hígado/parasitología , MonocitosRESUMEN
Immunization with attenuated whole Plasmodium sporozoites constitutes a promising vaccination strategy. Compared to replication-deficient parasites, immunization with replication-competent parasites confers better protection and also induces a type I IFN (IFN-1) response, but whether this IFN-1 response has beneficial or adverse effects on vaccine-induced adaptive immunity is not known. Here, we show that IFN-1 signaling-deficient mice immunized with replication-competent sporozoites exhibit superior protection against infection. This correlates with superior CD8 T cell memory including reduced expression of the exhaustion markers PD-1 and LAG-3 on these cells and increased numbers of memory CD8 T cells in the liver. Moreover, the adoptive transfer of memory CD8 T cells from the livers of previously immunized IFN-1 signaling-deficient mice confers greater protection against liver stage parasites. However, the detrimental role of IFN-1 signaling is not CD8 T cell intrinsic. Together, our data demonstrate that liver stage-engendered IFN-1 signaling impairs hepatic CD8 T cell memory via a CD8 T cell-extrinsic mechanism.
Asunto(s)
Inmunidad Adaptativa/inmunología , Eritrocitos/inmunología , Inmunidad Innata/inmunología , Malaria/inmunología , Plasmodium yoelii/inmunología , Esporozoítos/inmunología , Animales , Linfocitos T CD8-positivos/inmunología , Linfocitos T CD8-positivos/parasitología , Eritrocitos/parasitología , Femenino , Inmunización , Interferón Tipo I/inmunología , Interferón Tipo I/metabolismo , Hígado/inmunología , Hígado/metabolismo , Hígado/parasitología , Malaria/parasitología , Malaria/prevención & control , Vacunas contra la Malaria/administración & dosificación , Vacunas contra la Malaria/inmunología , Ratones Endogámicos C57BL , Ratones Noqueados , Plasmodium yoelii/fisiología , Vacunas Atenuadas/administración & dosificación , Vacunas Atenuadas/inmunologíaRESUMEN
Malaria parasite infection continues to inflict extensive morbidity and mortality in resource-poor countries. The insufficiently understood parasite biology, continuously evolving drug resistance and the lack of an effective vaccine necessitate intensive research on human malaria parasites that can inform the development of new intervention tools. Humanized mouse models have been greatly improved over the last decade and enable the direct study of human malaria parasites in vivo in the laboratory. Nevertheless, no small animal model developed so far is capable of maintaining the complete life cycle of Plasmodium parasites that infect humans. The ultimate goal is to develop humanized mouse systems in which a Plasmodium infection closely reproduces all stages of a parasite infection in humans, including pre-erythrocytic infection, blood stage infection and its associated pathology, transmission as well as the human immune response to infection. Here, we discuss current humanized mouse models and the future directions that should be taken to develop next-generation models for human malaria parasite research.
Asunto(s)
Modelos Animales de Enfermedad , Malaria/inmunología , Plasmodium/inmunología , Plasmodium/patogenicidad , Animales , Investigación Biomédica , Eritrocitos/inmunología , Eritrocitos/parasitología , Humanos , Estadios del Ciclo de Vida , Vacunas contra la Malaria/inmunología , Ratones , Ratones Transgénicos , Esporozoítos/inmunologíaRESUMEN
The invention of liver-humanized mouse models has made it possible to directly study the preerythrocytic stages of Plasmodium falciparum. In contrast, the current models to directly study blood stage infection in vivo are extremely limited. Humanization of the mouse blood stream is achievable by frequent injections of human red blood cells (hRBCs) and is currently the only system with which to study human malaria blood stage infections in a small animal model. Infections have been primarily achieved by direct injection of P. falciparum-infected RBCs but as such, this modality of infection does not model the natural route of infection by mosquito bite and lacks the transition of parasites from liver stage infection to blood stage infection. Including these life cycle transition points in a small animal model is of relevance for testing therapeutic interventions. To this end, we used FRGN KO mice that were engrafted with human hepatocytes and performed a blood exchange under immune modulation to engraft the animals with more than 50% hRBCs. These mice were infected by mosquito bite with sporozoite stages of a luciferase-expressing P. falciparum parasite, resulting in noninvasively measurable liver stage burden by in vivo bioluminescent imaging (IVIS) at days 5-7 postinfection. Transition to blood stage infection was observed by IVIS from day 8 onward and then blood stage parasitemia increased with a kinetic similar to that observed in controlled human malaria infection. To assess the utility of this model, we tested whether a monoclonal antibody targeting the erythrocyte invasion ligand reticulocyte-binding protein homolog 5 (with known growth inhibitory activity in vitro) was capable of blocking blood stage infection in vivo when parasites emerge from the liver and found it highly effective. Together, these results show that a combined liver-humanized and blood-humanized FRGN mouse model infected with luciferase-expressing P. falciparum will be a useful tool to study P. falciparum preerythrocytic and erythrocytic stages and enables the testing of interventions that target either one or both stages of parasite infection.