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Ojanen, M. J. T.

Publications and source records attributed to Ojanen, M. J. T..

2 recordsLinked to original sources

Scinderin-driven Golgi Actin Remodeling coordinates GLP-1 and insulin secretion to regulate glucose homeostasis

Maintenance of glucose homeostasis requires coordinated hormone secretion from intestinal enteroendocrine cells and pancreatic {beta}-cells, yet the intracellular mechanisms that couple nutrient sensing to endocrine output remain poorly defined. Here, we identify the actin remodeler Scinderin (SCIN) as a shared regulator of hormone secretion across these systems. SCIN is selectively expressed in enteroendocrine L-cells and pancreatic {beta}-cells, where it localizes to phosphatidylinositol-4-phosphate (PI(4)P)-enriched Golgi membranes and controls Golgi-associated actin dynamics. Loss of SCIN disrupts Golgi organization, impairs prohormone trafficking, and reduces secretory granule formation, resulting in defective nutrient-stimulated GLP-1 and insulin secretion while preserving cAMP-dependent amplification pathways. In vivo, tissue-specific deletion of Scin compromises incretin responses, {beta}-cell insulin secretion, and systemic glucose homeostasis. Consistent with these findings, SCIN expression is reduced in human diabetic {beta}-cells and associates with stress-related loss of {beta}-cell maturity. Transcriptomic analyses reveal a conserved Golgi stress program upon SCIN loss, linking intracellular trafficking defects to endocrine dysfunction. Together, our results identify SCIN-dependent Golgi actin remodeling as a rate-limiting intracellular mechanism coordinating enteroendocrine and pancreatic hormone secretion. This work uncovers a shared, targetable node controlling endocrine output, providing a mechanistic link between secretory pathway dysfunction and diabetes.

cell biology↗

Deep Invaginations of Nuclear Envelope Coordinate Spatial Organization of Chromatin in Epithelium

Cell nuclei are often used to assess cell health, but how their shapes vary in normal tissues and how they respond to mechanical forces is not well understood. Here, we describe deep invaginations of the nuclear envelope (DINEs) as common features of epithelial cell nuclei. After their formation, DINEs exist independently of the cytoskeleton, depend on A-type lamins, and emerge in response to cell crowding, contact inhibition, and tissue maturation. High-resolution imaging shows that, in contrast to the peripheral nuclear lamina, DINEs contain densely packed chromatin with regions of active gene transcription. They also remodel dynamically during confined migration, allowing nuclei to adapt to physical constraints. Mechanistically, DINE formation is linked to suppression of MAPK signaling, while activation of growth-promoting pathways reduces their occurrence. These findings reveal DINEs as intrinsic, mechanosensitive structures that coordinate nuclear shape, chromatin organization, and gene activity, providing new insight into how epithelial cells integrate mechanical and biochemical cues to maintain tissue homeostasis. TeaserDeep nuclear envelope invaginations organize chromatin and gene activity in response to epithelial crowding.

cell biology↗