bioRxiv Science⌕ Search

Biology subjects

Vilanova, M.

Publications and source records attributed to Vilanova, M..

2 recordsLinked to original sources

Meningeal γδ T cells facilitate bacterial entry into the brain in neonatal meningitis and trigger long-term behavioural sequelae

Neonatal bacterial meningitis is a life-threatening condition and a leading cause of neurodevelopmental impairment among survivors. Despite its prevalence, the role of meningeal immunity on disease pathology during early life remains largely unexplored. Using a clinically relevant mouse model of neonatal group B streptococcal meningitis and single-cell RNA sequencing, we observed that IL-17A (IL-17)-producing {gamma}{delta} T cells ({gamma}{delta}17 T cells) accumulate in the meninges during the acute phase of infection and persist throughout the lifespan. Importantly, mice deficient in {gamma}{delta} T cells or in IL-17 show a significantly lower bacterial colonisation in the brain parenchyma, and IL-17 neutralisation in the cerebrospinal fluid leads to a similar phenotype. Reduced blood-brain barrier permeability in the absence of {gamma}{delta} T cells results in decreased bacterial invasion and diminished microglia activation. Wild-type but not {gamma}{delta} T cell-deficient mice surviving infection exhibit increased hyperactivity and open space anxiety during early adulthood, a behavioural profile that may reflect attention deficit and hyperactivity (ADHD)-like tendencies. Altogether, these findings establish a pathogenic role for meningeal {gamma}{delta}17 T cells in early life, uncovering a key mechanism that drives long-term sequelae in GBS neonatal meningitis.

immunology↗

Modulation of functional phosphorylation sites by basic residues in the Unique domain of c-Src

In contrast to the well-studied canonical regulatory mechanisms, the way by which the recently discovered Src N-terminal regulatory element (SNRE) modulates Src activity is not yet well understood. Phosphorylation of serine and threonine residues modulate the charge distribution along the disordered region of the SNRE and may affect a fuzzy complex with the SH3 domain that is believed to act as an information transduction element. The preexisting positively charged sites can interact with the newly introduced phosphate groups by modulating their acidity, introducing local conformational restrictions, or coupling various phosphosites into a functional unit. In this paper we use pH dependent NMR measurements combined with single point mutations to identify the interactions of basic residues with physiologically important phosphorylated residues and to characterize the effect of these interactions in neighbor residues, thus providing insight on the electrostatic network in the isolated disordered regions and in the entire SNRE. From a methodological point of view, the linear relationship observed between the mutation induced pKa changes of the phosphate groups of phosphoserine and phosphothreonine and the pH induced chemical shifts of the NH groups of these residues provides a very convenient alternative to identify interacting phosphate groups without the need to introduce point mutations on specific basic residues.

biophysics↗