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Stegman, N.

Publications and source records attributed to Stegman, N..

3 recordsLinked to original sources

Hepatic γδ NKT cells modulate liver-resident CD8+ T cells to attenuated malaria parasite vaccines

Plasmodium parasites develop in the liver and egress to infect red blood cells, causing malaria. Vaccines that generate hepatic CD8+ T cells eliminate liver-stage parasites and prevent disease, yet how these T cells are induced is incompletely understood. We report that in mice vaccinated with replication-competent genetically attenuated Plasmodium parasites, antagonism of {gamma}{delta} T cell function curtails protection. Vaccination expands hepatic IFN{gamma}+ {gamma}{delta} NKT cells, and depletion of these cells abrogates hepatic CD8+ T cell responses. IFN{gamma}+ {gamma}{delta} NKT cells are nearly undetectable in the blood at steady state but their frequencies in the periphery are significantly increased following vaccination, hinting at their utility as biomarkers of protection. To assess the relevance of these results in humans, we performed secondary analyses of peripheral blood samples from human clinical trial participants immunized with attenuated Plasmodium parasites (Trial registration: ClinicalTrials.gov NCT01994525). Flow cytometric and single cell transcriptomic characterization of {gamma}{delta} T cells in these samples unveil for the first time, increased frequency of activated V{delta}2- {gamma}{delta} T cells and gene expression in cytotoxic, tissue-homing V{delta}1+ {gamma}{delta} T cells as correlates of protection. Together, these data identify hepatic {gamma}{delta} T cells as targets for the improvement of tissue-resident CD8+ T cell responses against hepatotropic pathogens.

immunology↗

Plasmodium blood-stage induces trained immunity in hepatocytes

Plasmodium parasites, the causative agents of malaria, are transmitted at high levels in endemic areas and sequential infections are common. Using a mouse model of infection we discovered liver burden was suppressed in blood-stage experienced, compared to naive, animals, independently of adaptive responses and inflammation. We observed greater chromatin accessibility of a subset of interferon stimulated genes in blood-stage experienced animals, and a rapid increase in transcription of these genes upon sporozoite challenge. Ex vivo stimulation of hepatocytes from blood-stage experienced mice also led to a rapid and elevated response upon treatment with an unrelated antigen, ctDNA. Taken together, these data are consistent with a model in which hepatocytes are reprogramed by blood stage Plasmodium infection to exhibit trained memory akin to what has been described in innate immune cells. The consequences of training of hepatocytes could be wide-reaching and might alter responses to diverse pathogens and other stimuli.

immunology↗

A Tissue Microenvironment Analogous to Certain Tumor Microenvironments Facilitates HIV Persistence

The HIV reservoir that establishes early upon infection and persists in tissues remains the primary barrier to a functional cure. While progress has been made to study the reservoir in blood compartments and specific cell types, knowledge gaps remain on the tissue microenvironment that facilitates persistence. The development of a novel immunoPET/CT-guided spatial transcriptomics pipeline has enabled the localization of foci of viral infection in tissues, rare events that are challenging to sample. Prior studies leveraging the pipeline have characterized the viral microenvironment (VME) gene signatures, cell types and interactions, and host transcriptome gene drivers of viral persistence. Detailed characterization of the VME revealed multiple shared features with certain tumor microenvironments (TMEs), suggesting shared immunoregulatory and survival mechanisms. In this study, we apply the immunoPET/CT-guided spatial transcriptomics pipeline in the SIVmac239/rhesus macaque model to define immune mechanisms underlying persistent versus transient HIV/SIV reservoirs. We utilize a systematic approach to highlight correlates between the VME and TME transcriptional programs, gene pathways, local tissue neighborhoods, cell-cell interactions, and host transcriptomic drivers. Analysis of broad transcriptional programs revealed SIV-localized spatial enrichment of genes associated with multiple cancer subtypes. The persistent reservoir was characterized by gene pathways of "cold" TMEs (e.g., epithelial to mesenchymal transition, TGF{beta} activation) whereas the transient reservoir was comparable to "hot" TMEs with cytotoxic immune activation. Cell-cell interaction analysis identified regulatory T cells as a key mediator of interactions in both persistent and transient reservoirs. Machine learning identified KRT8, EPCAM, and RRM2, genes with known roles in mediating carcinogenesis, among the top host transcriptomic drivers of the TME phenotype of the persistent VME. Collectively, the findings of this study provide novel and transformative insights on key mechanisms of HIV/SIV persistence and reveal potential targets for immunotherapeutic strategies aimed at reservoir disruption or clearance towards a functional HIV cure.

microbiology↗