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Hamon, M. A.

Publications and source records attributed to Hamon, M. A..

2 recordsLinked to original sources

Pneumococcal carriage requires KDM6B, a histone demethylase, for its unique inflammatory signature

Streptococcus pneumoniae is a natural colonizer of the human upper respiratory tract and an opportunistic pathogen. After colonization, bacteria either remain in the human upper respiratory tract, or may progress to cause pneumococcal disease. Although epithelial cells are among the first to encounter pneumococci, the cellular processes and contribution of epithelial cells to the host response are poorly understood. Here, we show a S. pneumoniae serotype 6B ST90 strain, which does not cause disease in a murine infection model, induces a unique NF-{kappa}B signature response distinct from an invasive disease causing isolate of serotype 4 (TIGR4). This signature is characterized by activation of p65 (RelA) and requires a histone demethylase, KDM6B. At the molecular level, we show that interaction of the 6B strain with epithelial cells leads to chromatin remodeling within the IL-11 promoter in a KDM6B dependent manner, where KDM6B specifically demethylates histone H3 lysine 27 di-methyl. Chromatin remodeling of the IL-11 locus facilitates p65 access to three NF-{kappa}B sites, which are otherwise inaccessible when stimulated by IL-1{beta} or TIGR4. Finally, we demonstrate through chemical inhibition of KDM6B, with GSK-J4 inhibitor, and through exogenous addition of IL-11 that the host responses to 6B ST90 and TIGR4 strains can be interchanged both in vitro and in a murine model of infection in vivo. Our studies hereby reveal how a chromatin modifier governs cellular responses during infection.

microbiology

NK cells acquire epigenetic memory of LPS-induced systemic inflammation

Natural killer cells are unique mediators of innate immunity, and as such, an attractive target for immunotherapy. Following viral infection, NK cells display immune memory properties, defined by heightened responses to re-stimulation, an expansion of specific NK cell sup-populations and a protective role against re-infection. However, similar memory to bacterial infection or systemic inflammation, and the molecular mechanisms behind NK cell memory remain elusive. Here we show that following LPS-induced endotoxemia in mice, NK cells acquire cell-intrinsic memory properties as displayed by an amplified production of IFN{gamma} upon secondary stimulation. NK cell memory is acquired even under the post-endotoxemic suppressive environment and is detectable for at least 9 weeks. Furthermore, we define an epigenetic mechanism essential for NK cell memory, where an H3K4me1-marked latent enhancer is uncovered at the ifng locus. Chemical inhibition of histone methyltransferase activity erased the enhancer and prevented NK cells from acquiring memory. Thus, NK cells develop memory to LPS during endotoxemia, in a histone methylation-dependent manner, which ensures a heightened response to secondary stimulation and confers protection against bacterial infection.

immunology