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Fukuyama, A.

Publications and source records attributed to Fukuyama, A..

2 recordsLinked to original sources

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↗