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Updated: May 31, 2026

Efficient Differentiation of Pluripotent Stem Cells to NKX6-1+ Pancreatic Progenitors
Published on: March 7, 2017
New gene targets for glucagon-like peptide-1 during embryonic development and in undifferentiated pluripotent cells
Carmen Sanz1, Enrique Blázquez
1Departamento de Bioquímica y Biología Molecular, Universidad Complutense, Madrid, Spain. mcsanz@med.ucm.es
Abstract:
In humans, glucagon-like peptide (GLP-1) functions during adult life as an incretin hormone with anorexigenic and antidiabetogenic properties. Also, the therapeutic potential of GLP-1 in preventing the adipocyte hyperplasia associated with obesity and in bolstering the maintenance of human mesenchymal stem cell (hMSC) stores by promoting the proliferation and cytoprotection of hMSC seems to be relevant. Since these observations suggest a role for GLP-1 during developmental processes, the aim of the present work was to characterize GLP-1 in early development as well as its gene targets in mouse embryonic stem (mES) cells. Mouse embryos E6, E8, and E10.5 and pluripotent mES were used for the inmunodetection of GLP-1 and GLP-1 receptor. Quantitative real-time PCR was used to determine the expression levels of GLP-1R in several tissues from E12.5 mouse embryos. Additionally, GLP-1 gene targets were studied in mES by multiple gene expression analyses. GLP-1 and its receptors were identified in mES and during embryonic development. In pluripotent mES, GLP-1 modified the expression of endodermal, ectodermal, and mesodermal gene markers as well as sonic hedgehog, noggin, members of the fibroblast and hepatic growth factor families, and others involved in pancreatic development. Additionally, GLP-1 promoted the expression of the antiapoptotic gene bcl2 and at the same time reduced proapoptotic caspase genes. Our results indicate that apart from the effects and therapeutic benefits of GLP-1 in adulthood, it may have additional gene targets in mES cells during embryonic life. Furthermore, the pathophysiological implications of GLP-1 imbalance in adulthood may have a counterpart during development.
Insights
Glucagon-like peptide-1 (GLP-1) plays a role in embryonic development, influencing gene expression in mouse stem cells and embryos. This peptide impacts cell differentiation and survival, suggesting developmental roles beyond its known adult functions.
Area of Science:
- Developmental Biology
- Endocrinology
- Stem Cell Biology
Background:
- Glucagon-like peptide-1 (GLP-1) is known for its roles in adult metabolism, including appetite regulation and glucose homeostasis.
- Emerging evidence suggests GLP-1 may also influence developmental processes, prompting investigation into its embryonic functions.
Purpose of the Study:
- To characterize GLP-1 and its receptor expression during early mouse embryonic development.
- To identify GLP-1 gene targets in mouse embryonic stem cells (mES).
Main Methods:
- Immunodetection of GLP-1 and its receptor in mouse embryos (E6, E8, E10.5) and mES cells.
- Quantitative real-time PCR for GLP-1 receptor expression in embryonic tissues.
- Gene expression analysis in mES cells to identify GLP-1 targets.
Main Results:
- GLP-1 and its receptor were detected in mES cells and during embryonic development.
- GLP-1 modulated the expression of key developmental genes (endodermal, ectodermal, mesodermal markers) and genes involved in pancreatic development in mES cells.
- GLP-1 promoted the anti-apoptotic gene bcl2 and inhibited pro-apoptotic caspase genes in mES cells.
Conclusions:
- GLP-1 has significant roles in embryonic development, influencing stem cell differentiation and survival.
- The findings suggest that GLP-1 targets in embryonic life may differ from its adult functions.
- Imbalances in GLP-1 during development could have long-term pathophysiological consequences.
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