» Articles » PMID: 17418116

TGF-beta Isoform Signaling Regulates Secondary Transition and Mesenchymal-induced Endocrine Development in the Embryonic Mouse Pancreas

Overview
Journal Dev Biol
Publisher Elsevier
Date 2007 Apr 10
PMID 17418116
Citations 26
Authors
Affiliations
Soon will be listed here.
Abstract

Transforming growth factor-beta (TGF-beta) superfamily signaling has been implicated in many developmental processes, including pancreatic development. Previous studies are conflicting with regard to an exact role for TGF-beta signaling in various aspects of pancreatic organogenesis. Here we have investigated the role of TGF-beta isoform signaling in embryonic pancreas differentiation and lineage selection. The TGF-beta isoform receptors (RI, RII and ALK1) were localized mainly to both the pancreatic epithelium and mesenchyme at early stages of development, but then with increasing age localized to the pancreatic islets and ducts. To determine the specific role of TGF-beta isoforms, we functionally inactivated TGF-beta signaling at different points in the signaling cascade. Disruption of TGF-beta signaling at the receptor level using mice overexpressing the dominant-negative TGF-beta type II receptor showed an increase in endocrine precursors and proliferating endocrine cells, with an abnormal accumulation of endocrine cells around the developing ducts of mid-late stage embryonic pancreas. This pattern suggested that TGF-beta isoform signaling may suppress the origination of secondary transition endocrine cells from the ducts. Secondly, TGF-beta isoform ligand inhibition with neutralizing antibody in pancreatic organ culture also led to an increase in the number of endocrine-positive cells. Thirdly, hybrid mix-and-match in vitro recombinations of transgenic pancreatic mesenchyme and wild-type epithelium also led to increased endocrine cell differentiation, but with different patterns depending on the directionality of the epithelial-mesenchymal signaling. Together these results suggest that TGF-beta signaling is important for restraining the growth and differentiation of pancreatic epithelial cells, particularly away from the endocrine lineage. Inhibition of TGF-beta signaling in the embryonic period may thus allow pancreatic epithelial cells to progress towards the endocrine lineage unchecked, particularly as part of the secondary transition of pancreatic endocrine cell development. TGF-beta RII in the ducts and islets may normally serve to downregulate the production of beta cells from embryonic ducts.

Citing Articles

Extracellular matrix proteins refine microenvironments for pancreatic organogenesis from induced pluripotent stem cell differentiation.

Hu M, Liu T, Huang H, Ogi D, Tan Y, Ye K Theranostics. 2025; 15(6):2229-2249.

PMID: 39990212 PMC: 11840725. DOI: 10.7150/thno.104883.


CFTR represses a PDX1 axis to govern pancreatic ductal cell fate.

Rotti P, Yi Y, Gasser G, Yuan F, Sun X, Apak-Evans I iScience. 2024; 27(12):111393.

PMID: 39687022 PMC: 11647141. DOI: 10.1016/j.isci.2024.111393.


Regulation of multiple signaling pathways promotes the consistent expansion of human pancreatic progenitors in defined conditions.

Jarc L, Bandral M, Zanfrini E, Lesche M, Kufrin V, Sendra R Elife. 2024; 12.

PMID: 38180318 PMC: 10945307. DOI: 10.7554/eLife.89962.


Deciphering early human pancreas development at the single-cell level.

Ma Z, Zhang X, Zhong W, Yi H, Chen X, Zhao Y Nat Commun. 2023; 14(1):5354.

PMID: 37660175 PMC: 10475098. DOI: 10.1038/s41467-023-40893-8.


Role of TGF-Beta Signaling in Beta Cell Proliferation and Function in Diabetes.

Wang H, Wang L, Zhao C, Lan H Biomolecules. 2022; 12(3).

PMID: 35327565 PMC: 8945211. DOI: 10.3390/biom12030373.


References
1.
P Oh S, Seki T, Goss K, Imamura T, Yi Y, Donahoe P . Activin receptor-like kinase 1 modulates transforming growth factor-beta 1 signaling in the regulation of angiogenesis. Proc Natl Acad Sci U S A. 2000; 97(6):2626-31. PMC: 15979. DOI: 10.1073/pnas.97.6.2626. View

2.
GOLOSOW N, GROBSTEIN C . Epitheliomesenchymal interaction in pancreatic morphogenesis. Dev Biol. 1962; 4:242-55. DOI: 10.1016/0012-1606(62)90042-8. View

3.
Azuma H . Genetic and molecular pathogenesis of hereditary hemorrhagic telangiectasia. J Med Invest. 2000; 47(3-4):81-90. View

4.
Sander M, Sussel L, Conners J, Scheel D, Kalamaras J, Dela Cruz F . Homeobox gene Nkx6.1 lies downstream of Nkx2.2 in the major pathway of beta-cell formation in the pancreas. Development. 2000; 127(24):5533-40. DOI: 10.1242/dev.127.24.5533. View

5.
Larsson J, Goumans M, Sjostrand L, van Rooijen M, Ward D, Leveen P . Abnormal angiogenesis but intact hematopoietic potential in TGF-beta type I receptor-deficient mice. EMBO J. 2001; 20(7):1663-73. PMC: 145465. DOI: 10.1093/emboj/20.7.1663. View