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McGinnis, F.

Publications and source records attributed to McGinnis, F..

2 recordsLinked to original sources

Familial Alzheimers disease mutations impair neutrophil phagocytosis and release of immune modulators

Recent reports show that neutrophil activity plays a role in the cognitive decline associated with Alzheimers Disease (AD). There is evidence of altered functions in neutrophils isolated from AD patients. Whether these altered functions are inherent to the AD disease state is unknown. The goal of this study was to determine if neutrophil functions are altered in AD mice and if these changes occur only after symptoms appear. To address this hypothesis, we used a primary neuronal culture model, generated from 3xTg perinatal mice, since AD is considered a CNS disease. The 3xTg primary neuronal culture gradually increase the release of A{beta} (40 and 42) as the culture ages. To assess neutrophil functions, neutrophils isolated from young male/female mice (3-6 months of age) or aged male/female mice (16-18 months of age) of WT or 3xTg mice were exposed to 3xTg primary neuronal cultures. To assess phagocytosis, we characterized the effect of neutrophils on pathogenic amyloid beta (A{beta}) 42 levels. To assess the levels of immune modulators (cytokines, chemokines, growth factors, NETosis, and neutrophil granular content), culture media were assessed using Luminex multiplex assay. Our results show that neutrophils from young AD mice have impaired phagocytosis, as observed in a decreased ability to remove A{beta} and cellular debris in vitro. Neutrophils from young AD mice also increased release of pro-inflammatory cytokines, granule content, and NETs in 3xTg primary neuronal cultures. Interestingly, neutrophils from aged 3xTg mice decreased A{beta} levels in culture and expression of proinflammatory cytokines when compared to neutrophils from aged WT mice. These neutrophils increased their release of granule content and NETs in 3xTg primary neuronal cultures. These data show that in AD neutrophil function is altered both prodromal (young mice) and diseased (old mice) stage.

immunology↗

Aging changes the underlying mechanism of JAK2 modulation in neutrophil function

Janus Kinase 2 (JAK2) has been linked to various neutrophil functions, but the intracellular mechanisms underlying its modulation are unknown. Neutrophils are essential cells for host defense. Neutrophil effector functions include migration, reactive oxygen species (ROS) production, degranulation, and neutrophil extracellular trap (NET) formation. The goal of this study was to elucidate the signaling mechanism through which JAK2 modulates neutrophil function and the effect of aging on this pathway. We hypothesized that JAK2-mediated modulation changes the molecular mechanisms associated with neutrophil function in an age- and sex-dependent manner. Neutrophils from young (3 months) and aged (22+ months), male and female C57BL/6J mice were isolated, treated with a JAK2 inhibitor (AZD1480) or a pan-JAK inhibitor (Baricitinib), and stimulated with Phorbol 12-myristate 13-acetate (PMA). Functional assays were conducted to assess migration, ROS production, degranulation, NETosis, and metabolism. Mass spectrometry and Luminex assays provided proteomic and cytokine profiles. Our data show that JAK2 promotes migration via membrane composition and actin remodeling, with age-dependent shifts in chemokine secretion. JAK2 indirectly affects NETosis by modulating IL-1 signaling and ROS production. It also primes ROS production by altering NADPH oxidase components. In young neutrophils, JAK2 influences degranulation through actin remodeling, while aged neutrophils display impaired granule release. Metabolically, JAK2 enhances pentose phosphate pathway activity in young neutrophils and decreases glycogen breakdown in aged cells. These findings reveal mechanisms by which JAK2 modulates neutrophil function and suggest age-specific therapeutic targeting in inflammatory diseases.

immunology↗