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Okunishi, K.

Publications and source records attributed to Okunishi, K..

3 recordsLinked to original sources

Interleukin-11 promotes the colonic epithelial organoid regeneration from mechanical disruption

The intestinal epithelium relies on rapid repair to maintain homeostasis after injury, and dysregulation of this process contributes to the pathogenesis of inflammatory bowel disease and colorectal cancer. Interleukin-11 (IL-11), a fibroblast-derived cytokine elevated in these diseases, has well-documented effects on stromal cells, but its direct action on intestinal epithelial cells remains poorly characterized. Here, we used mouse colon organoids as an isolated epithelial system to directly examine the effects of IL-11 on epithelial cells. IL-11 stimulation activated the canonical JAK/STAT3 pathway, as evidenced by increased STAT3 phosphorylation and Socs3 induction in a concentration-dependent manner. In a pipetting-based mechanical disruption model, IL-11 significantly increased the number of organoids recovered. Although mechanical disruption dominated the overall transcriptional landscape, RNA-seq analysis identified coordinated upregulation of STAT3 target genes and proliferation-related pathways specifically in response to IL-11. Pharmacological inhibition of STAT3 attenuated the IL-11-induced promotion of organoid recovery, indicating that STAT3 signaling mediates the epithelial response to IL-11 and maintains organoid size under basal conditions. Together, these findings demonstrate that IL-11 directly promotes intestinal epithelial repair after mechanical disruption through STAT3-dependent signaling, providing a mechanistic basis for its protective role in acute colonic injury.

cell biology↗

Hmgb1 release kinetics shape its extracellular functions during regulated cell death

Danger-associated molecular patterns (DAMPs), such as high mobility group protein B1 (HMGB1), are released from dying cells, yet the kinetics and functional consequences of their release remain unclear. Using Hmgb1-mCherry transgenic mice and live-cell imaging, we visualize Hmgb1 and interleukin-1{beta} (IL-1{beta}) secretion at single-cell resolution. Hmgb1 exhibits two distinct release kinetics: short-duration completed within 1 min and long duration spanning several minutes. Mathematical modeling demonstrates that short-duration release generates substantially higher local Hmgb1 concentrations and steeper gradients near the dying cell than long-duration release. Such rapid release may enable one or a few dying cells to produce sufficient Hmgb1 to stimulate neighboring cells, consistent with its role as an alarmin. In vivo imaging of cisplatin-induced kidney injury reveals an inverse correlation between intracellular Hmgb1 levels and monocyte infiltration. Together, these findings suggest that Hmgb1 release kinetics shape its extracellular functions during regulated cell death.

cell biology↗

Functional hierarchy among different Rab27 effectors involved in secretory granule exocytosis

The Rab27 effectors play versatile roles in regulated exocytosis. In pancreatic beta cells, exophilin-8 anchors granules in the peripheral actin cortex, whereas granuphilin and melanophilin mediate granule fusion with and without stable docking to the plasma membrane, respectively. However, it is unknown whether these coexisting effectors function in parallel or in sequence to support the whole insulin secretory process. Here, we investigate their functional relationship by comparing the exocytic phenotypes in beta cells simultaneously lacking two effectors with those lacking one of them. Analyses of prefusion profiles by total internal reflection fluorescence microscopy indicate that melanophilin exclusively functions downstream of exophilin-8 to mobilize granules for fusion from the actin network to the plasma membrane after stimulation. The two effectors are physically linked via the exocyst complex. Downregulation of the exocyst component affects granule exocytosis only in the presence of exophilin-8. Exophilin-8 also promotes fusion of granules stably docked to the plasma membrane mediated by granuphilin, although it is dispensable for granule residence beneath the plasma membrane. The current study presents the first diagram for multiple intracellular paths of granule exocytosis and for functional hierarchy among different Rab27 effectors in the same cell.

cell biology↗