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Biology subjects

Sharvin, B. L.

Publications and source records attributed to Sharvin, B. L..

2 recordsLinked to original sources

CD11c+ microglia promote dysfunctional T cell activation in diffuse midline glioma

Paediatric diffuse midline glioma (DMG) remains refractory to immunotherapy despite T-cell infiltration, indicating that local mechanisms actively suppress anti-tumour immunity. Using complementary genetic and orthotopic mouse models, we performed lineage-resolved profiling of the DMG immune microenvironment, resolving myeloid ontogeny and microglial states by distinguishing resident microglia from infiltrating bone marrow-derived macrophages. We identified microglia as the predominant tumour-associated myeloid population and discovered selective expansion of CD11c positive; microglia exhibiting enriched antigen-presentation and immune-regulatory transcriptional programs. Tumour-infiltrating CD4+; and CD8+; T cells exhibited chronic activation and exhaustion, while ligand receptor analysis predicted inhibitory microglia T cell communication. Pharmacological CSF1R inhibition depleted CD11c positive; microglia, attenuated antigen-presentation and immune-regulatory programs, and shifted tumour-infiltrating T cells toward a less exhausted phenotype. Together, these findings identify a previously unrecognised CD11 positive; microglia T-cell axis that establishes immune dysfunction in DMG and provide a rationale for combining myeloid- and T cell-targeted immunotherapies.

cell biology↗

Gut Microbial Signals Influence Motivational Responses in the Male Mouse

Mammalian motivation to obtain natural rewards is regulated by internal biological and external environmental factors. Increasing evidence suggests the gut microbiota may represent one such factor. Here, we observed that antibiotic (ABX)-induced disruption of the gut microbiota increased the motivation to obtain palatable rewards, elevated inflammatory cytokine levels and elicited significant alterations in synaptic plasticity-related gene pathways in the mouse nucleus accumbens (NAc). We also observed that the dynamic state of the gut microbiota partially impacts motivational responses and identified several gut microbial metabolites that could be driving this phenotype. Finally, surgical ablation of vagal signalling via subdiaphragmatic vagotomy partially rescued transcriptomic signatures in the NAc and elevations in inflammatory markers but was not enough to prevent the increase in motivational responses. Overall, our results highlight an important new role for the gut microbiota in regulating the cascade of metabolic, neurochemical and immunological events necessary for reward processing and motivation.

neuroscience↗