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Biology subjects

Ueno-Shuto, K.

Publications and source records attributed to Ueno-Shuto, K..

3 recordsLinked to original sources

Gingipain-containing products from Porphyromonas gingivalis promote epithelial CCL20 signaling and γδ T-cell accumulation in COPD-like airways

Chronic obstructive pulmonary disease (COPD) is a progressive inflammatory airway disease in which impaired mucosal barrier function may increase susceptibility to aspirated oral microbial products. Periodontal disease has been associated with COPD development and exacerbation, but the epithelial mechanisms linking periodontal pathogens to pulmonary immune remodeling remain unclear. Here, we investigated whether gingipain-containing Porphyromonas gingivalis culture supernatant (PCS) promotes {gamma}{delta} T-cell-associated inflammation in COPD-like airways. Repeated intratracheal administration of PCS to {beta}ENaC-transgenic mice induced airway-centered immune cell accumulation and increased {gamma}{delta} TCR-positive cell accumulation, together with elevated expression of the {gamma}{delta} T-cell-associated cytokines Ifng and Il17a. PCS also increased pulmonary Ccl20 and Ccr6 expression, whereas epithelial alarmin-related genes and M2 macrophage-associated responses were not induced in parallel. In ENaC-overexpressing human airway epithelial cells, PCS induced CCL20 and F2RL1, the gene encoding protease-activated receptor 2 (PAR-2), and reduced the N-terminal PAR-2 signal, consistent with proteolytic receptor cleavage. Direct PAR-2 activation reproduced CCL20 induction, whereas pharmacological PAR-2 inhibition suppressed PCS-induced CCL20 expression. In contrast, PAR-1 inhibition or LPS neutralization with polymyxin B did not suppress this response. These findings support a mucosal epithelial protease-sensing model in which gingipain-containing P. gingivalis products activate PAR-2-dependent CCL20 production in airway epithelial cells and are associated with CCR6-linked {gamma}{delta} T-cell accumulation in COPD-like airways. Contribution to the field statementPeriodontal disease is often associated with chronic obstructive pulmonary disease, but how oral bacterial products affect lung inflammation remains unclear. This study shows that protease-rich products from the periodontal pathogen Porphyromonas gingivalis can be sensed by airway epithelial cells under COPD-like conditions. This response induces a chemokine signal that is linked to the accumulation of {gamma}{delta} T cells, a type of immune cell involved in inflammatory responses. Our findings suggest that the airway epithelium acts as an immune sensor, converting signals from aspirated oral bacterial protease into lung inflammation. This work provides a mechanistic framework for understanding how oral dysbiosis may contribute to immune remodeling in COPD.

immunology↗

HDAC3 inhibition stabilizes the IL-37 receptor module to enhance anti-inflammatory signaling in cystic fibrosis airway epithelium

Airway inflammation in cystic fibrosis (CF) persists despite advances in CFTR modulator therapy. IL-37b suppresses innate immune signaling through a receptor complex containing IL-18R and wild-type SIGIRR (WT-SIGIRR; IL-1R8), but this pathway is compromised in CF airway epithelial cells by the dominant-negative exon 8-skipped SIGIRR isoform ({Delta}8-SIGIRR). Here, a natural-product screen identified short-chain fatty acids as preferential enhancers of WT-SIGIRR. Pan-HDAC inhibition with panobinostat increased WT-SIGIRR, reduced {Delta}8-SIGIRR, and restored IL-37b-dependent suppression of the TLR3 ligand poly(I:C)-induced IL-8 production. Isoform-selective inhibitor screening and siRNA knockdown identified HDAC3 as a regulator of the IL-37 receptor module. Low concentrations of RGFP966 and HDAC3 silencing increased WT-SIGIRR and IL-18R protein abundance without inducing their mRNA levels. HDAC3 inhibition delayed proteasome-dependent WT-SIGIRR turnover and stabilized IL-18R, thereby enhancing IL-37b-mediated anti-inflammatory signaling in CF airway epithelial cells.

cell biology↗

Dietary lipids attenuate IGF-1-Akt and injure epithelial-endothelial injury program that accelerates obstructive lung disease

Background Altered lipid metabolism is increasingly implicated in chronic obstructive pulmonary disease (COPD), but it remains unclear how a pre-existing obstructive lung state modifies the response to systemic lipid excess. We investigated whether high-fat diet (HFD) amplifies COPD-relevant lung injury and examined epithelial and vascular programs associated with this response. Methods Male wild-type (WT) and beta-epithelial sodium channel-transgenic ({beta}ENaC-Tg) mice were fed control diet or HFD for 10-11 weeks. Lung structure and function, whole-lung transcriptomes, Akt-FOXO1 signaling, apoptosis-related responses, and pulmonary vascular profiles were assessed. Streptozotocin-induced insulin-deficient diabetes and pharmacological IGF-1 receptor inhibition were used as mechanistic comparators. Palmitate responses were examined in human bronchial epithelial cells, ENaC-hyperactive epithelial cells, and endothelial cells, including conditioned-medium transfer. HFD preconditioning was also evaluated in an elastase-induced emphysema model. Statistical analyses included unpaired two-tailed Student's t tests, one-way ANOVA with Tukey-Kramer or Dunnett multiple-comparison testing, Pearson correlation, and Benjamini-Hochberg correction for RNA-sequencing analyses. Results HFD produced similar increases in body weight, glycemia, and adiposity in WT and {beta}ENaC-Tg mice, while further increasing distal-airspace enlargement and reducing FEV0.1/FVC in {beta}ENaC-Tg mice. Lung transcriptomics revealed coordinated remodeling of lipid metabolic, PI3K-Akt, and vascular programs. HFD reduced Akt phosphorylation, increased FOXO1 and Fasl, and increased TUNEL-positive cells in epithelial regions. Palmitate attenuated IGF-1-induced Akt activation in bronchial epithelial cells, whereas IGF-1 receptor inhibition reproduced Akt suppression and apoptosis-related responses without fully reproducing the HFD phenotype. HFD preconditioning also increased elastase-induced airspace enlargement, accompanied by parallel upregulation of FOXO1 and TUNEL positivity. HFD reduced pulmonary CD34-positive vascular profiles, and palmitate activated endothelial cells directly and through conditioned media from ENaC-hyperactive epithelium. In men with airflow obstruction, hepatic steatosis coincided with lower percent-predicted FEV1. Conclusions Dietary lipid stress amplifies obstructive lung injury and engages complementary epithelial and vascular responses. Impaired epithelial IGF-1-Akt signaling and epithelial-endothelial crosstalk provide a mechanistic framework linking systemic metabolic stress to reduced resilience of the obstructive lung.

molecular biology↗