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Epithelial TMPRSS2 impairs glucose homeostasis in obese mice by regulating ghrelin–GLP-1 receptor signaling pathway
Dilraj Kaur, Sagarika Chakrabarty, Claudius Witzler, Hongjie Wang, Mengwen Wang, Romina Wolz, Petra Wilgenbus, Jens J.N. Posma, Sivaramakrishna Rachakonda, Federico Marini, Valeriya V. Zinina, Sabine Reyda, Rajinikanth Gogiraju, Claudine Graf, Fahumiya Samad, Katrin Schäfer, Christoph Reinhardt, Natalia Soshnikova, Wolfram Ruf, Thati Madhusudhan
Dilraj Kaur, Sagarika Chakrabarty, Claudius Witzler, Hongjie Wang, Mengwen Wang, Romina Wolz, Petra Wilgenbus, Jens J.N. Posma, Sivaramakrishna Rachakonda, Federico Marini, Valeriya V. Zinina, Sabine Reyda, Rajinikanth Gogiraju, Claudine Graf, Fahumiya Samad, Katrin Schäfer, Christoph Reinhardt, Natalia Soshnikova, Wolfram Ruf, Thati Madhusudhan
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Research Article Inflammation Metabolism Vascular biology

Epithelial TMPRSS2 impairs glucose homeostasis in obese mice by regulating ghrelin–GLP-1 receptor signaling pathway

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Abstract

Glucagon-like peptide-1 (GLP-1) and glucose-induced insulinotropic polypeptide (GIP) receptor agonists have revolutionized obesity therapy, but causes of obesity-associated dysregulation of endogenous incretin production remain incompletely understood. Here we show that intestinal transmembrane serine protease 2 (TMPRSS2) plays a pivotal role in deregulating anti-diabetic GLP-1 production in obesity. TMPRSS2 is widely coexpressed in intestinal epithelial cells along with its signaling target protease-activated receptor 2 (PAR2). In addition to its role in regulating coagulation protease–mediated adipose tissue inflammation, PAR2 signaling in the gut controls postprandial GIP secretion. TMPRSS2, but not the epithelial cell–expressed proteases FXa or matriptase, activates PAR2 and thereby promotes postprandial GIP release. Accordingly, a PAR2-mutant mouse resistant to TMPRSS2 cleavage is protected from GIP upregulation and diet-induced obesity. In the context of obesity, TMPRSS2 also attenuates bioavailability of the ghrelin pathway and thereby suppresses GLP-1–mediated control of glucose homeostasis. Pharmacological inhibition or genetic deletion of TMPRSS2 restores ghrelin signaling–dependent GLP-1 secretion and GLP-1’s anti-diabetic effects on nutritional glucose homeostasis. Thus, epithelial cell–expressed TMPRSS2, which critically contributes to the lung pathology in SARS-CoV-2 infection, emerges as an intestinal incretin regulator and a potential link between infection and chronic cardiometabolic diseases.

Authors

Dilraj Kaur, Sagarika Chakrabarty, Claudius Witzler, Hongjie Wang, Mengwen Wang, Romina Wolz, Petra Wilgenbus, Jens J.N. Posma, Sivaramakrishna Rachakonda, Federico Marini, Valeriya V. Zinina, Sabine Reyda, Rajinikanth Gogiraju, Claudine Graf, Fahumiya Samad, Katrin Schäfer, Christoph Reinhardt, Natalia Soshnikova, Wolfram Ruf, Thati Madhusudhan

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Figure 1

Protease-specific PAR2 signaling regulates postprandial incretin secretion.

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Protease-specific PAR2 signaling regulates postprandial incretin secreti...
(A) Uniform manifold approximation and projection (UMAP) plot showing clustering of intestinal epithelial cell types isolated from the crypts of WT mice and analyzed by single-cell RNA sequencing. (B) Cell type–specific expression of F2rl1 and PAR2-activating proteases St14, Tmprss2, and F10. (C) Subclusters of enteroendocrine cells expressing gut hormones and proteases. (D) Immunofluorescence images showing colocalization of PAR2 and TMPRSS2 in the mouse small intestine. Original magnification ×40. (E and F) Plasma concentrations of GIP (E) and GLP-1 (F) in fasted PAR2-mutant mice. (G–J) Refeeding experiments with PAR2-mutant mice. Plasma GIP (G), GLP-1 (H), insulin (I), and blood glucose (J) levels in non-obese mice fasted overnight and refed for 1 hour. (K and L) Postprandial GIP (K) and GLP-1 (L) levels in mice treated for 2 weeks with broad-spectrum antibiotics. (M) Plasma concentrations of GIP and GLP-1 in mice fasted overnight followed by the administration of oral glucose (2 g/kg body weight) for 15 minutes. (N–R) Refeeding experiments in coagulation factor–deficient mice. (N and O) Postprandial GIP (N) and GLP-1 (O) levels in refed mice with intestinal epithelial cell–specific deletion of F10. (P) GIP and GLP-1 levels in refed mice with myeloid cell–specific deletion of F10. (Q) Postprandial GIP in macrophage F10-deficient mice. (R) GIP and GLP-1 levels in refed mice with myeloid cell–specific deletion of F7. (S) Postprandial GIP levels in refed PAR2K36E mice. Data represent mean ± SEM. (E–S) One-way ANOVA. *P < 0.05, **P < 0.01, ***P < 0.001. ISC, intestinal stem cells; ECC, enteroendocrine cells; NC, negative control.

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