Search bioRxivSearch

Biology subjects

James, E. R.

Publications and source records attributed to James, E. R..

3 recordsLinked to original sources

Virulence shift in a sexual clade of Type X Toxoplasma infecting Southern Sea Otters

How virulent parasites are maintained in nature is an important paradigm of eukaryotic pathogenesis. Here we used population genetics and molecular methods to study the evolution and emergence of genetic variants of the protozoan parasite Toxoplasma gondii, referred collectively as Type X (HG12), recovered from a threatened marine mammal species. Specifically, 53 T. gondii strains were isolated from southern sea otters (SSO) that stranded between 1998-2004 with T. gondii infection (ranging from chronic incidental infections to fatal encephalitis). Over 74% of these SSO, collected throughout their geographic range, were infected with Type X, based on multi-locus PCR-DNA sequencing. Depending on the locus investigated, Type X strains possessed one of three allelic types that had independently assorted across the strains examined; either genetically distinct alleles, referred to as "{psi}" or "8", or a Type II allele. Phylogenetic incongruence among locus-specific trees, genome-wide CGH array and WGS analyses confirmed that Type X is a sexual clade of natural recombinants that resemble F1 progeny from a genetic cross between Type II and a mosaic of two distinct "{psi}" or "{delta}" ancestries. A single Type X genotype (19/53; 36%) that largely caused subclinical chronic infections in SSO, was highly pathogenic to mice (LD100= 1 parasite). To determine whether murine virulence genes could be mapped within this population of natural isolates, we performed a genome scan and identified four QTLs with LOD scores greater than 4.0. Targeted disruption of ROP33, the strongest candidate from among 16 genes within the highest QTL on Chromosome VIIa established ROP33 as a murine virulence locus. The ability of this highly pathogenic mouse-virulent T. gondii clone to expand its environmental niche and infect a majority of SSO supports a virulence shift model whereby generalist pathogens like T. gondii utilize their sexual cycles to produce new strains that possess an expanded biological potential. Such a trait enables pathogens to extend their host range or be naturally selected within their vast intermediate host range to maximize transmission. Our work establishes a rationale for how virulent strains can be maintained cryptically in nature across a pathogens broad host range, and act as potential reservoirs for epidemic disease. ImportanceWaterborne outbreaks of protozoal parasites are capable of causing fatal disease in a wide range of animals, including humans. Population expansion of felids in addition to anthropogenic changes near marine estuarine environments may facilitate marine wildlife exposure to highly infectious Toxoplasma gondii oocysts shed in felid feces. Infected cats shed millions of environmentally-resistant T. gondii oocysts that can be widely dispersed by storm events. In North America T. gondii is thought to possess a highly clonal population structure dominated by 4 clonal lineages (I, II, III, and X). Population genetic analysis of 53 T. gondii isolates collected longitudinally from SSO infected with T. gondii that stranded between 1998-2004 identified 74% of otters infected with Type X T. gondii, and that Type X is not a clonal lineage, but rather a recombinant clade of at least 12 distinct strains consistent with a recent genetic cross. Importantly, one Type X haplotype was isolated from 36% of southern sea otters (Enhydra lutris neries) across their geographic range in California. This haplotype was highly pathogenic to mice but caused relatively benign infections in SSO. A genome scan was performed to identify a virulence locus; a secreted serine threonine kinase (ROP33) that enhanced pathogenicity in laboratory mice, but not sea otters. Our data support a virulence shift model whereby generalist pathogens like T. gondii utilize their sexual cycles to produce virulent strains that can be maintained cryptically in nature, according to their differential capacity to cause disease within the pathogens broad intermediate host range. This type of "host selection" has important public health implications. Strains capable of causing fatal infections can persist in nature by circulating as chronic infections in resistant intermediate host species that act as reservoirs for epidemic disease.

molecular biology

Mapping of safe and early chemo-attenuated live Plasmodium falciparum immunization identifies immune signature of vaccine efficacy

Potent protection against malaria can be induced by attenuated live-immunization with Plasmodium falciparum (Pf) sporozoites (SPZ). However, a better understanding of the critical processes involved in the establishment of protective immunity is needed. We explored the safety and vaccine efficacy of early chemo-attenuation of PfSPZ under atovaquone-proguanil (AP). AP caused early arrest of P. berghei liver stages. Despite the absence of replication, robust protection in mice correlated with parasite-specific effector-memory CD8+ T-cell responses. In a phase I clinical trial a single dose of AP prevented Pf infections in the liver of adult, human subjects who received three doses of 5.12x104 or 1.5x105 PfSPZ by direct venous inoculation combined with oral AP. However, only 2 of 8 (25%) and 2 of 10 (20%), respectively, were protected against controlled human malaria infection (CHMI) 10 weeks after the last vaccine dose, despite levels of IgG antibodies to the Pf circumsporozoite protein (PfCSP) comparable to those achieved in fully protected volunteers after immunization with 5.12x104 PfSPZ with chloroquine chemoprophylaxis active only against subsequent blood stages. We identify lower IgG recognition of the secreted liver stage-specific antigens LISP2 and LSA1 and the multi-stage antigen MSP5 as immune signatures of inferior vaccine efficacy compared to PfSPZ with chloroquine chemoprophylaxis. In conclusion, we show that immune signatures of liver stage antigens, but neither an established rodent malaria model nor concentrations of antibodies against the major surface protein of sporozoites, permit prediction of vaccine efficacy. Thus, this study provides a clear rationale for the development of live sporozoite vaccination protocols that boost exposure to Pf liver stage antigens. Significance StatementOur research demonstrates that attenuation of liver infection of high doses of Plasmodium falciparum sporozoites by concomitant single-dose administration of atovaquone-proguanil is safe in humans. However, vaccine efficacy was modest when compared to an identical protocol using chloroquine that acts only on the subsequent blood infection. Immune signatures of secreted P. falciparum liver stage antigens, but neither an established rodent malaria model nor concentrations of sporozoite antibodies, permit prediction of vaccine efficacy.

immunology

Paternal cigarette smoke alters DNA methylation in sperm and gene expression in offspring brain

Paternal cigarette smoke (CS) exposure is associated with increased risk of behavioral disorders and cancer in offspring, but the mechanism has not been identified. This study used mouse models to evaluate: 1) what impact paternal CS exposure has on sperm DNA methylation (DNAme), 2) whether sperm DNAme changes persist after CS exposure ends, 3) the degree to which DNAme and gene expression changes occur in offspring and 4) the mechanism underlying impacts of CS exposure. We demonstrate that CS exposure induces sperm DNAme changes that are partially corrected within 28 days of removal from CS exposure. Additionally, paternal smoking causes changes in neural DNAme and gene expression in offspring. Remarkably, the effects of CS exposure are largely recapitulated in oxidative stress-compromised Nrf2-/- mice and their offspring, independent of paternal smoking. These results demonstrate that paternal CS exposure impacts offspring phenotype and that oxidative stress underlies CS induced heritable epigenetic changes.

genetics