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Updated: Aug 23, 2026

Intramuscular Transplantation of Human Pluripotent Stem Cell-derived Pancreatic Endocrine Cells in Mice
Published on: April 10, 2026
Insulin secretory defects and impaired islet architecture in pancreatic beta-cell-specific STAT3 knockout mice
Shin-Ichi Gorogawa1, Yoshio Fujitani, Hideaki Kaneto
1Department of Internal Medicine and Therapeutics, Osaka University Graduate School of Medicine, 2-2 Yamadaoka, Suita, Osaka 565-0871, Japan.
Abstract:
Normal islet formation and function depends on the action of various growth factors operating in pre- and postnatal development; however, the specific physiological function of each factor is largely unknown. Loss-of-function analyses in mice have provided little information so far, perhaps due to functional redundancies of the growth factors acting on the pancreas. The present study focuses on the role of the transcription factor STAT3 in insulin-producing cells. STAT3 is one of the potential downstream mediators for multiple growth factors acting on the pancreatic beta-cells, including betacellulin, hepatocyte growth factor, growth hormone, and heparin-binding EGF-like growth factor. To elucidate its role in the beta-cells, the STAT3 gene was disrupted in insulin-producing cells in mice (STAT3-insKO), using a cre-mediated gene recombination approach. Unexpectedly, STAT3-insKO mice exhibited an increase in appetite and obesity at 8 weeks of age or older. The mice showed partial leptin resistance, suggesting that expression of the RIP (rat insulin promoter)-cre transgene in hypothalamus partially inhibited the appetite-regulating system. Intraperitoneal glucose tolerance tests, performed in non-obese 5-week-old mice, showed that the STAT3-insKO mice were glucose intolerant. Islet perifusion experiments further revealed a deficiency in early-phase insulin secretion. Whereas islet insulin content or islet mass was not affected, expression levels of GLUT2, SUR1, and VEGF-A were significantly reduced in STAT3-insKO islets. Interestingly, STAT3-insKO mice displayed impaired islet morphology: alpha-cells were frequently seen in central regions of islets. Our present observations demonstrate a unique role of STAT3 in maintaining glucose-mediated early-phase insulin secretion and normal islet morphology.
Insights
The transcription factor STAT3 is crucial for normal islet function. Disrupting STAT3 in insulin-producing cells impairs glucose tolerance and insulin secretion, affecting islet morphology and leading to obesity.
Area of Science:
- Endocrinology
- Molecular Biology
- Metabolic Research
Background:
- Normal islet formation and function rely on growth factors, but their specific roles are unclear.
- Functional redundancies among growth factors complicate loss-of-function studies in pancreatic beta-cells.
Purpose of the Study:
- To investigate the role of Signal Transducer and Activator of Transcription 3 (STAT3) in pancreatic beta-cells.
- To understand STAT3's function as a downstream mediator for various growth factors influencing beta-cells.
Main Methods:
- Generation of STAT3-deficient mice in insulin-producing cells (STAT3-insKO) using a cre-mediated gene recombination approach.
- Assessment of glucose tolerance, insulin secretion, appetite, obesity, and islet morphology in STAT3-insKO mice.
- Analysis of gene expression (GLUT2, SUR1, VEGF-A) in isolated islets.
Main Results:
- STAT3-insKO mice developed appetite increase and obesity, with partial leptin resistance.
- Impaired glucose tolerance and reduced early-phase insulin secretion were observed in STAT3-insKO mice.
- Reduced expression of GLUT2, SUR1, and VEGF-A, along with abnormal islet morphology (central alpha-cells), were noted.
Conclusions:
- STAT3 plays a unique role in regulating glucose-mediated early-phase insulin secretion.
- STAT3 is essential for maintaining normal pancreatic islet morphology.
- STAT3 deficiency impacts metabolic regulation, leading to glucose intolerance and obesity.
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