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Kublin, J. G.

Publications and source records attributed to Kublin, J. G..

2 recordsLinked to original sources

The Regulation of Nucleic Acid Vaccine Responses by the Microbiome

SummaryNucleic acid vaccines, including both RNA and DNA platforms, are key technologies that have considerable promise in combating both infectious disease and cancer. However, little is known about the extrinsic factors that regulate nucleic acid vaccine responses and which may determine their effectiveness. The microbiome is recognized as a significant regulator of immune development and response, whose role in regulating some traditional vaccine platforms has recently been discovered. Using germ-free and specific-pathogen-free mouse models in combination with different protein, DNA, and mRNA vaccine regimens, we demonstrate that the microbiome is a significant regulator of nucleic acid vaccine immunogenicity. While the presence of the microbiome enhances CD8+ T cell responses to mRNA lipid nanoparticle (LNP) immunization, the microbiome suppresses immunoglobulin and CD4+ T cell responses to DNA-prime, DNA-protein-boost immunization, indicating contrasting roles for the microbiome in the regulation of these different nucleic acid vaccine platforms. In the case of mRNA-LNP vaccination, germ-free mice display reduced dendritic cell/macrophage activation that may underlie the deficient vaccine response. Our study identifies the microbiome as a relevant determinant of nucleic acid vaccine response with implications for their continued therapeutic development and deployment.

immunology↗

High-risk microbial signatures are associated with severe parasitemia in controlled Plasmodium infections of both humans and rhesus macaques

While functions of the gastrointestinal (GI) microbiome include maintenance of immune homeostasis and protection against infectious disease, its role in determining disease severity during Plasmodium infection has been limited to mouse models and observational human cohorts. Here, we performed controlled Plasmodium infection in both humans and rhesus macaques (RMs) to experimentally determine the impact of GI microbiome composition on disease progression. Through analysis of serially collected microbiome samples, we identified a high-risk microbial signature that strongly associated with increased risk of developing severe parasitemia in human participants. Importantly, we identified a parallel phenomenon in RMs. The combined weight of this evidence demonstrates that pre-infection GI microbiome composition is highly indicative of P. falciparum disease risk. Moreover, our observation that P. fragile-microbiome dynamics in RMs closely mirrors P. falciparum-microbiome interactions in humans strongly supports the use of this model in pre-clinical investigations of novel microbiome-targeting approaches to reduce malaria burden.

microbiology↗