A Major Lineage of Enteroendocrine Cells Coexpress CCK, Secretin, GIP, GLP-1, PYY, and Neurotensin but Not Somatostatin

Author:

Egerod Kristoffer L.12,Engelstoft Maja S.12,Grunddal Kaare V.12,Nøhr Mark K.12,Secher Anna3,Sakata Ichiro4,Pedersen Jens56,Windeløv Johanne A.56,Füchtbauer Ernst-Martin7,Olsen Jørgen8,Sundler Frank9,Christensen Jan P.10,Wierup Nils9,Olsen Jesper V.3,Holst Jens J.56,Zigman Jeffrey M.4,Poulsen Steen S.56,Schwartz Thue W.12

Affiliation:

1. Novo Nordisk Foundation Center for Basic Metabolic Research, Section for Metabolic Receptology and Enteroendocrinology (K.L.E., M.S.E., K.V.G., M.K.N., T.W.S.), Faculty of Health Sciences, University of Copenhagen, 2200 Denmark

2. Laboratory for Molecular Pharmacology (K.L.E., M.S.E., K.V.G., M.K.N., T.W.S.), Department of Neuroscience and Pharmacology, Faculty of Health Sciences, University of Copenhagen, 2200 Denmark

3. Novo Nordisk Foundation Center for Protein Research, Department of Proteomics (A.S., J.V.O), Faculty of Health Sciences, University of Copenhagen, 2200 Denmark

4. Division of Hypothalamic Research (I.S., J.M.Z.), Department of Internal Medicine, University of Texas Southwestern Medical Center, Dallas, Texas 75390

5. Section for Translational Physiology (J.P., J.A.W., J.J.H., S.S.P.), Faculty of Health Sciences, University of Copenhagen, 2200 Denmark

6. Department of Biomedical Sciences (J.P., J.A.W., J.J.H., S.S.P.), University of Copenhagen, 2200 Denmark

7. Department of Molecular Biology (E.-M.F.), University of Aarhus, 2200 Denmark

8. Department of Cellular and Molecular Medicine (J.O.), University of Copenhagen, 2200 Denmark

9. Department of Clinical Sciences in Malmö (F.S., N.W.), Lund University Diabetes Center, Malmö, 205 02, Sweden

10. Department of International Health, Immunology and Microbiology (J.P.C.), University of Copenhagen, 2200 Denmark

Abstract

AbstractEnteroendocrine cells such as duodenal cholecystokinin (CCK cells) are generally thought to be confined to certain segments of the gastrointestinal (GI) tract and to store and release peptides derived from only a single peptide precursor. In the current study, however, transgenic mice expressing enhanced green fluorescent protein (eGFP) under the control of the CCK promoter demonstrated a distribution pattern of CCK-eGFP positive cells that extended throughout the intestine. Quantitative PCR and liquid chromatography-mass spectrometry proteomic analyses of isolated, FACS-purified CCK-eGFP-positive cells demonstrated expression of not only CCK but also glucagon-like peptide 1 (GLP-1), gastric inhibitory peptide (GIP), peptide YY (PYY), neurotensin, and secretin, but not somatostatin. Immunohistochemistry confirmed this expression pattern. The broad coexpression phenomenon was observed both in crypts and villi as demonstrated by immunohistochemistry and FACS analysis of separated cell populations. Single-cell quantitative PCR indicated that approximately half of the duodenal CCK-eGFP cells express one peptide precursor in addition to CCK, whereas an additional smaller fraction expresses two peptide precursors in addition to CCK. The coexpression pattern was further confirmed through a cell ablation study based on expression of the human diphtheria toxin receptor under the control of the proglucagon promoter, in which activation of the receptor resulted in a marked reduction not only in GLP-1 cells, but also PYY, neurotensin, GIP, CCK, and secretin cells, whereas somatostatin cells were spared. Key elements of the coexpression pattern were confirmed by immunohistochemical double staining in human small intestine. It is concluded that a lineage of mature enteroendocrine cells have the ability to coexpress members of a group of functionally related peptides: CCK, secretin, GIP, GLP-1, PYY, and neurotensin, suggesting a potential therapeutic target for the treatment and prevention of diabetes and obesity.

Funder

NIH

Publisher

The Endocrine Society

Subject

Endocrinology

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