Proliferation and differentiation of duct epithelial cells after partial pancreatectomy in rats

Tao Liu , Chunyou Wang , Chidan Wan , Jiongxin Xiong , Feng Zhou

Current Medical Science ›› 2006, Vol. 26 ›› Issue (5) : 567 -569.

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Current Medical Science ›› 2006, Vol. 26 ›› Issue (5) : 567 -569. DOI: 10.1007/s11596-006-0522-7
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Proliferation and differentiation of duct epithelial cells after partial pancreatectomy in rats

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Abstract

The proliferation and differentiation of pancreatic duct epithelial cells in remnant pancreas during regeneration after partial pancreatectomy in rats were studied, and the source of pancreatic stem cells was characterized. Partial (90 %) pancreatectomy was performed on 4-to 5-week-old Sprague-Dawley rats, and different duct epithelial cells and acinar cells were detected by immunohistrochemical stain method and scored using 5-bromo-2′-deoxyuridine (BrdU) labeling index (LI) at various time points after partial pancreatectomy. It was found that at 24 h after partial pancreatectomy proliferation started in the main, large and small duct cells, and persisted in small duct cells to day 5. There was significant difference between the experimental group and the control group (P<0.001). Acinar cells positive for BrdU were greatly increased and reached the peak LI on day 5. The destroyed lobular architecture almost totally recovered on day 7, and the newly islet cells appeared around the pancreatic ducts. These results suggest that regeneration after partial pancreatectomy is involved in proliferation and differentiation of pancreatic stem cells, and pancreatic stem cells may locate in the pancreatic ductules.

Keywords

pancreas / stem cells / regeneration / 5-bromo-2′-deoxyuridine / rats

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Tao Liu, Chunyou Wang, Chidan Wan, Jiongxin Xiong, Feng Zhou. Proliferation and differentiation of duct epithelial cells after partial pancreatectomy in rats. Current Medical Science, 2006, 26(5): 567-569 DOI:10.1007/s11596-006-0522-7

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References

[1]

RisbudM. V., BhondeR. R.. Models of pancreatic regeneration in diabetes. Diabetes Res Clin Pract, 2002, 58: 155-165

[2]

Bonner-WeirS., TanejaM., TatarkiewiczK., et al.. In vitro cultivation of human islets from expanded ductul tissue. Proc Natl Acad Sci USA, 2000, 97: 7999-8004

[3]

ZulewskiH., AbrahamE. J., GerlachM. J., et al.. Multipotential nestin-positive stem cells isolated from adult pancreatic islets differentiate ex vivo into pancreatic endocrine, exocrine, and hepatic phenotypes. Diabetes, 2001, 50: 521-533

[4]

PetropavlovskaiaM., RosenbergL.. Identification and characterization of small cells in the adult pancreas: potential progenitor cells?. Cell Tissue Res, 2002, 310: 51-58

[5]

TaguchiM., YamaguchiT., OtsukiM., et al.. Induction of PDX-1-positive cells in the main duct during regeneration after acute necrotizing pancreatitis in rats. J Pathol, 2002, 197: 638-646

[6]

Bonner-WeirS., SharmaA.. Pancreatic stem cells. J Pathol, 2002, 197: 519-526

[7]

RamiyaV. K., MarraistM., ARforsK. E., et al.. Reversal of insulin dependent diabetes using islets generated in vitro from pancreatic stem cells. Nature Med, 2000, 6: 278-282

[8]

SharmaA., ZangenD. H., ReitzP., et al.. The homeodomain protein IDX-1 increases after an early burst of proliferation during pancreatic regeneration. Diabetes, 1999, 48: 507-513

[9]

GasslanderT., IhseI., SmedsS.. The importance of the centroacinar region in cerulein-induced mouse pancreatic growth. Scand J Gastroenterol, 1992, 27: 564-570

[10]

GuD., LeeM. S., KrahlT., et al.. Transitional cells in the reg-enerating pancreas. Development, 1994, 120: 1873-1881

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