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Biomedical subjects

Yusuke Kawashima

Publications and source records attributed to Yusuke Kawashima.

2 recordsLinked to original sources

IL-33 Drives Inflammatory Changes and Extracellular Trap Formation in Eosinophils Involving Oxidised LDL and Complement Pathways.

BACKGROUND: IL-33 levels are elevated in the airways of patients with eosinophilic diseases, and IL-33 receptor expression on eosinophils is upregulated in type 2-high environments. However, the role of IL-33 in the regulation of human eosinophils remains unclear. OBJECTIVE: To elucidate the inflammatory effects of IL-33 on the cellular function of human eosinophils. METHODS: Blood eosinophils were stimulated with IL-33, TNF-α, oxidised low-density lipoprotein (oxLDL) and complement fragments (C3a and C5a). Multi-omics analyses, including transcriptomics and proteomics, were performed. Extracellular trap formation (ETosis) was assessed by SYTOX nucleic acid staining and was visualised by immunofluorescence and transmission electron microscopy. RESULTS: Multi-omics analyses revealed an IL-33- and TNF-α-induced inflammatory gene signature characterised by the upregulation of cell surface markers (oxLDL receptor 1, CD22, CD4 and ICAM-1) and inflammatory mediators (C3, CCL3/4 and IL1A/B). CD22 upregulation was specific to IL-33 stimulation. Eosinophils derived from nasal polyps exhibited a gene expression profile similar to that of IL-33-stimulated eosinophils. Functional assays demonstrated that oxLDL and complement fragments differentially prolonged eosinophil survival and altered the expression of adhesion molecules. OxLDL- and complement fragment-induced gene signatures were partly detected in eosinophils derived from nasal polyps. Furthermore, IL-33 triggered ETosis via NADPH oxidase, mitogen-activated protein kinase and phosphoinositide 3-kinase pathways. CONCLUSIONS: IL-33, in conjunction with oxLDL and the complement cascade, induces inflammatory changes in eosinophils, promoting an ETosis-prone phenotype. These pathways represent potential therapeutic targets in refractory eosinophilic diseases.

Humans

Synaptic Mitochondrial Oxidative Stress Contributes to Individual Variability in Age-Related Cognitive Inflexibility in Mice.

Aging is associated with impairments in cognitive flexibility, a key executive function supported by the medial prefrontal cortex (mPFC), yet the biological mechanisms underlying individual variability in age-related decline remain poorly understood. Here we investigated behavioral, ultrastructural, and proteomic correlates of cognitive inflexibility in mice across aging. Using a touchscreen-based attentional set-shifting task, we observed substantial individual variability in cognitive inflexibility among aged C57BL/6J mice. Volume electron microscopy of the mPFC revealed age-related reductions in synaptic density, but these structural changes did not correlate with cognitive performance. Instead, the proportion of synapses containing presynaptic mitochondria was inversely associated with cognitive flexibility in aged mice. To identify molecular correlates, we performed proteomic profiling of mPFC whole tissue and synaptosome fractions. Proteins associated with individual variability in cognitive inflexibility were largely distinct from those associated with chronological aging. Notably, synaptosomal proteins negatively correlated with cognitive performance were strongly enriched for mitochondrial pathways, including oxidative phosphorylation, mitochondrial translation, and the tricarboxylic acid cycle. Consistent with these findings, the mitochondria-targeted antioxidant MitoQ improved attentional set-shifting performance in aged mice without affecting initial learning. Proteomic analyses revealed that MitoQ reduced the abundance of synaptosomal mitochondrial proteins, particularly those involved in mitochondrial apoptotic signaling. Together, these results suggest that synaptic mitochondrial oxidative stress in the mPFC contributes to individual vulnerability to cognitive inflexibility. Targeting synaptic mitochondrial oxidative stress may therefore represent a promising strategy to preserve executive function during aging.

Animals