» Articles » PMID: 33349851

TGF-β Signaling in Pancreatic Islet β Cell Development and Function

Overview
Journal Endocrinology
Specialty Endocrinology
Date 2020 Dec 22
PMID 33349851
Citations 20
Authors
Affiliations
Soon will be listed here.
Abstract

Pancreatic islet beta cells (β-cells) synthesize and secrete insulin in response to rising glucose levels and thus are a prime target in both major forms of diabetes. Type 1 diabetes ensues due to autoimmune destruction of β-cells. On the other hand, the prevailing insulin resistance and hyperglycemia in type 2 diabetes (T2D) elicits a compensatory response from β-cells that involves increases in β-cell mass and function. However, the sustained metabolic stress results in β-cell failure, characterized by severe β-cell dysfunction and loss of β-cell mass. Dynamic changes to β-cell mass also occur during pancreatic development that involves extensive growth and morphogenesis. These orchestrated events are triggered by multiple signaling pathways, including those representing the transforming growth factor β (TGF-β) superfamily. TGF-β pathway ligands play important roles during endocrine pancreas development, β-cell proliferation, differentiation, and apoptosis. Furthermore, new findings are suggestive of TGF-β's role in regulation of adult β-cell mass and function. Collectively, these findings support the therapeutic utility of targeting TGF-β in diabetes. Summarizing the role of the various TGF-β pathway ligands in β-cell development, growth and function in normal physiology, and during diabetes pathogenesis is the topic of this mini-review.

Citing Articles

Molecular puzzle of insulin: structural assembly pathways and their role in diabetes.

Urbaniak E, Henry S, Lalowski M, Borowiak M Front Cell Dev Biol. 2025; 13:1502469.

PMID: 40052150 PMC: 11882602. DOI: 10.3389/fcell.2025.1502469.


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.


Expanded phenotypes and pathogenesis of geleophysic dysplasia 3 resulted from a de novo LTBP3 mutation: A case report.

Liang J, Han Y, Tao H, Wang X, Zhang B, Wu J Medicine (Baltimore). 2024; 103(51):e41000.

PMID: 39705488 PMC: 11666154. DOI: 10.1097/MD.0000000000041000.


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.


TGFβ family signaling in human stem cell self-renewal and differentiation.

Liu S, Ren J, Hu Y, Zhou F, Zhang L Cell Regen. 2024; 13(1):26.

PMID: 39604763 PMC: 11602941. DOI: 10.1186/s13619-024-00207-9.


References
1.
Robertson R . Chronic oxidative stress as a central mechanism for glucose toxicity in pancreatic islet beta cells in diabetes. J Biol Chem. 2004; 279(41):42351-4. DOI: 10.1074/jbc.R400019200. View

2.
Shin J, Hong O, Lee H, Jeon S, Kim J, Lee S . Transforming growth factor-β induces epithelial to mesenchymal transition and suppresses the proliferation and transdifferentiation of cultured human pancreatic duct cells. J Cell Biochem. 2010; 112(1):179-88. DOI: 10.1002/jcb.22929. View

3.
Sanvito F, Herrera P, Huarte J, Nichols A, Montesano R, Orci L . TGF-beta 1 influences the relative development of the exocrine and endocrine pancreas in vitro. Development. 1994; 120(12):3451-62. DOI: 10.1242/dev.120.12.3451. View

4.
Meier J, Kohler C, Alkhatib B, Sergi C, Junker T, Klein H . Beta-cell development and turnover during prenatal life in humans. Eur J Endocrinol. 2009; 162(3):559-68. DOI: 10.1530/EJE-09-1053. View

5.
Lee J, Mellado-Gil J, Bahn Y, Pathy S, Zhang Y, Rane S . Protection from β-cell apoptosis by inhibition of TGF-β/Smad3 signaling. Cell Death Dis. 2020; 11(3):184. PMC: 7070087. DOI: 10.1038/s41419-020-2365-8. View