Lin Hsin-Hsien, Yu I-Shing, Cheng Ming-Shan, Chang Tien-Jyun, Lin Hsin-Ying, Chang Yi-Cheng, Ko Chun-Jung, Chen Ping-Hung, Lin Shu-Wha, Huang Tai-Chung, Huang Shin-Yi, Chen Tzu-Yu, Kan Kai-Wen, Huang Hsiang-Po, Lee Ming-Shyue
Department of Biochemistry and Molecular Biology, College of Medicine, National Taiwan University, Taipei, Taiwan.
Laboratory Animal Center, College of Medicine, National Taiwan University, Taipei, Taiwan.
Nat Commun. 2024 Dec 3;15(1):10537. doi: 10.1038/s41467-024-54927-2.
SPINT1, a membrane-anchored serine protease inhibitor, regulates cascades of pericellular proteolysis while its tissue-specific functions remain incompletely characterized. In this study, we generate Spint1-lacZ knock-in mice and observe Spint1 expression in embryonic pancreatic epithelium. Pancreas-specific Spint1 disruption significantly diminishes islet size and mass, causing glucose intolerance and downregulation of MAFA and insulin. Mechanistically, the serine protease HEPSIN interacts with SPINT1 in β cells, and Hepsin silencing counteracts the downregulation of Mafa and Ins1 caused by Spint1 depletion. Furthermore, we demonstrate a potential interaction between HEPSIN and GLP1R in β cells. Spint1 silencing or Hepsin overexpression reduces GLP1R-related cyclic AMP levels and Mafa expression. Spint1-disrupted mice also exhibit a significant reduction in Exendin-4-induced insulin secretion. Moreover, SPINT1 expression increases in islets of prediabetic humans compared to non-prediabetic groups. The results unveil a role for SPINT1 in β cells, modulating glucose homeostasis and insulin production via HEPSIN/MAFA signaling.
SPINT1是一种膜锚定丝氨酸蛋白酶抑制剂,可调节细胞周围蛋白水解级联反应,但其组织特异性功能仍未完全明确。在本研究中,我们构建了Spint1 - lacZ基因敲入小鼠,并观察到Spint1在胚胎胰腺上皮中的表达。胰腺特异性Spint1缺失显著减小胰岛大小和质量,导致葡萄糖不耐受以及MAFA和胰岛素表达下调。机制上,丝氨酸蛋白酶HEPSIN在β细胞中与SPINT1相互作用,沉默Hepsin可抵消Spint1缺失导致的Mafa和Ins1下调。此外,我们证明了HEPSIN与β细胞中GLP1R之间存在潜在相互作用。Spint1沉默或Hepsin过表达会降低GLP1R相关的环磷酸腺苷水平和Mafa表达。Spint1缺失的小鼠在艾塞那肽 - 4诱导的胰岛素分泌方面也显著减少。此外,与非糖尿病前期人群相比,糖尿病前期人群胰岛中的SPINT1表达增加。这些结果揭示了SPINT1在β细胞中的作用,即通过HEPSIN/MAFA信号调节葡萄糖稳态和胰岛素生成。