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Battaglia, M. C.

Publications and source records attributed to Battaglia, M. C..

3 recordsLinked to original sources

Host aging induces a senescent-like phenotype in neutrophils and altered transcriptional responses to Streptococcus pneumoniae

Aging drives increased susceptibility to respiratory infections by Streptococcus pneumoniae (pneumococci). Polymorphonuclear leukocytes (PMNs) are among the first responders in the lung following pneumococcal infection and are required for bacterial clearance. However, PMN antimicrobial function declines with age. To identify mechanisms underlying this decline, we performed RNA sequencing on PMNs in the lungs of young and old mice following pulmonary infection with S. pneumoniae. We observed significant transcriptomic differences across host age. Transcriptional analysis followed by functional validation revealed that in infected mice, PMNs from aged hosts failed to upregulate several effector activities including glycolysis and subsequent mitochondrial reactive oxygen species (ROS) production, which are necessary for bacterial killing by PMNs. Analysis of potential transcription factors controlling these changes indicated differential regulation by E2f2 in aged mice, which was linked to lower PMN differentiation resulting in more immature PMNs in the lungs of aged mice compared to young controls. Conversely, PMNs in aged mice displayed a higher senescence-associated secretory phenotype (SASP) score and upregulated pathways involved in cellular senescence. Follow-up functional characterization found that in uninfected hosts, PMNs in aged mice expressed higher levels of SASP factors IL-10, TNF, and ROS, had lower incidence of apoptosis, and had a higher proportion of cells positive for senescence-associated {beta}-galactosidase, features of a senescent-like phenotype. In conclusion, host aging is associated with altered PMN phenotypes, including a shift toward senescent-like energy-deficient cells, which may contribute to impaired host defense and represent potential targets for improved interventions against infection in older adults.

immunology↗

Adenosine 2B receptor signaling impairs vaccine-mediated protection against pneumococcal infection in young hosts by blunting neutrophil killing of antibody opsonized bacteria

Background/ObjectiveNeutrophils are essential for vaccine-mediated protection against pneumococcal infection and impairment in their antibacterial function contributes to reduced vaccine efficacy during aging. However, the signaling pathways controlling neutrophil responses in vaccinated hosts are not fully understood. The extracellular adenosine pathway is a known regulator of neutrophils in naive hosts. The aim of this study was to test the role of this pathway in neutrophil function and protection against infection upon vaccination across host age. MethodsTo test the role of adenosine in the antimicrobial activity of neutrophils against antibody-opsonized pneumococci, we used bone marrow derived neutrophils isolated from wild type or specific adenosine receptors knock-out mice. To measure the effect of adenosine receptor signaling in vivo, we treated vaccinated mice with agonists or antagonists specific to the different adenosine receptors prior to pulmonary challenge with pneumococci and assessed bacterial burden and clinical score post infection. ResultsWe found that signaling via the adenosine 2B (A2BR) but not A2A or A1 receptor diminished intracellular pneumococcal killing following antibody-mediated uptake in young hosts. In vivo, agonism of A2BR significantly worsened pneumococcal infection outcome in young, vaccinated mice. In contrast, A2BR signaling had no effect on intracellular bacterial killing by neutrophils from aged mice. Further, in vivo A2BR inhibition had no effect on pneumococcal disease progression in aged, vaccinated mice. ConclusionsA2BR signaling reduced pneumococcal vaccine-mediated protection by impairing neutrophil antimicrobial activity against antibody-opsonized bacteria in young hosts. However, inhibiting this pathway was not sufficient to boost responses in aged hosts.

immunology↗

Ets1 and IL17RA cooperate to regulate autoimmune responses as well as skin immunity to Staphylococcus aureus

Ets1 is a lymphoid-enriched transcription factor that regulates B and T cell functions in development and disease. Mice that lack Ets1 (Ets1 KO) develop spontaneous autoimmune disease with high levels of autoantibodies. Naive CD4+ T cells isolated from Ets1 KO mice differentiate more readily to Th17 cells that secrete IL-17, a cytokine implicated in autoimmune disease pathogenesis. To determine if increased IL-17 production contributes to the development of autoimmunity in Ets1 KO mice, we crossed Ets1 KO mice to mice lacking the IL-17 receptor A subunit (IL17RA KO) to generate double knock out (DKO) mice. We found that the absence of IL17RA signaling did not prevent or ameliorate the autoimmune phenotype of Ets1 KO mice, but rather that DKO animals exhibited worse symptoms with striking increases in activated B cells and secreted autoantibodies. This was correlated with a prominent increase in the numbers of T follicular helper (Tfh) cells. In addition to the autoimmune phenotype, DKO mice also showed signs of immunodeficiency and developed spontaneous skin lesions colonized by Staphylococcus xylosus. When DKO mice were experimentally infected with S. aureus they were unable to clear the bacteria, suggesting a general immunodeficiency to Staphylococcal species. {gamma}{delta} T cells are important for control of skin Staphylococcal infections. We found that mice lacking Ets1 have a complete deficiency of the {gamma}{delta} T cell subset dendritic epidermal T cells (DETC), which are involved in skin wound healing responses. To determine if loss of DETC might promote susceptibility to Staph infection, we depleted DETC from IL17RA KO mice and found that the combined loss of DETC and IL-17 signaling leads to a failure to clear the infection. Our studies suggest that defects in wound healing, such as that caused by loss of DETC, can cooperate with impaired IL-17 responses to lead to increased susceptibility to skin Staph infections.

immunology↗