Search bioRxiv⌕ Search

Biology subjects

Oliveira, F. M. S.

Publications and source records attributed to Oliveira, F. M. S..

2 recordsLinked to original sources

Intestinal Barrier Loss Enables Microbiota-Mediated Purinergic Suppression During Malaria

The gut microbiota shapes malaria immunity and disease severity, but the mechanisms underlying these effects remain unclear. In a murine model, susceptibility to Plasmodium yoelii hyperparasitemia was associated with elevated regulatory T cells and diminished IFN-{gamma}. We demonstrate that the IgA-coated fraction of the microbiota is sufficient to transfer this susceptibility. Plasmodium infection disrupts the intestinal barrier regardless of microbiota composition. Mechanistically, barrier loss was associated with systemic adenosine persistence and an expansion of CD39+ plasmablasts in susceptible mice. Ugandan children with severe malaria exhibited a distinct purinergic immune signature compared to asymptomatic community children. Therapeutic reinforcement of the gut barrier or blockade of the downstream adenosine A2A receptor improved germinal centers and reduced disease severity in mice, independent of parasite burden, revealing a purinergic-dependent immunosuppression pathway that drives pathogenesis. This work defines an axis in which malaria-induced gut leakiness enables microbial-derived signals to trigger purinergic immunosuppression and severe disease.

immunology↗

A PI3Kδ-Foxo1-FasL signaling amplification loop rewires CD4+ T helper cell signaling, differentiation and epigenetic remodeling

While inputs regulating CD4+ T helper cell (Th) differentiation are well-defined, the integration of downstream signaling with transcriptional and epigenetic programs that define Th-lineage identity remain unresolved. PI3K signaling is a critical regulator of T cell function; activating mutations affecting PI3K{delta} result in an immunodeficiency with multiple T cell defects. Using mice expressing activated-PI3K{delta}, we found aberrant expression of proinflammatory Th1-signature genes under Th2-inducing conditions, both in vivo and in vitro. This dysregulation was driven by a robust PI3K{delta}-IL-2-Foxo1 signaling loop, fueling Foxo1-inactivation, loss of Th2-lineage restriction, altered chromatin accessibility and global impairment of CTCF-DNA interactions. Surprisingly, ablation of Fasl, a Foxo1-repressed gene, restored normal Th2 differentiation, TCR signaling and CTCF expression. BioID revealed Fas interactions with TCR- signaling components, which were supported by Fas-mediated potentiation of TCR signaling. Our results highlight Fas-FasL signaling as a critical intermediate in phenotypes driven by activated-PI3K{delta}, thereby linking two key pathways of immune dysregulation.

immunology↗