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Ogasawara, C.

Publications and source records attributed to Ogasawara, C..

2 recordsLinked to original sources

Early apelin receptor activation attenuates elastase-induced emphysema and preserves endothelial apelin receptor signaling in mice

Alveolar capillary endothelial cells are positioned adjacent to the alveolar epithelium and contribute to lung homeostasis and injury responses. Single-cell studies have identified aerocyte capillary endothelial cells (aCap), which are specialized for gas exchange, and general capillary endothelial cells (gCap), which contribute to endothelial maintenance and inflammatory signaling. Apelin and its receptor are differentially enriched across these endothelial compartments, but their roles in emphysema development remain incompletely understood. Using an elastase-induced emphysema model in male C57BL/6J mice, we combined bulk RNA sequencing, CIBERSORTx-based cell-type deconvolution, histology, inflammatory assays, pulmonary function testing, and pharmacologic activation of the apelin receptor with [Pyr1]-Apelin-13. At 24 hours after elastase exposure, the inferred fraction of gCap was reduced, and lung expression of apelin and the apelin receptor was decreased. Early [Pyr1]-Apelin-13 administration reduced lung inflammatory mediator expression, Ly6G-positive neutrophil accumulation, bronchoalveolar lavage neutrophil counts, and matrix metalloproteinase-9 activity. Early treatment also attenuated subsequent airspace enlargement, whereas treatment initiated after emphysema was established did not improve physiological or histological outcomes. In a chronic {beta}ENaC-transgenic mouse model, the inferred gCap fraction was maintained, the aCap fraction was reduced, and apelin receptor activation did not improve disease phenotypes. These findings suggest that early activation of the apelin receptor modifies acute inflammatory and endothelium-associated responses following elastase injury and limits emphysematous remodeling in mice. Together, these results support a time-sensitive role for apelin-APJ signaling during the early phase of emphysema development.

molecular 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↗