Fibroblast growth factor-21 improves pancreatic β-cell function and survival by activation of extracellular signal-regulated kinase 1/2 and Akt signaling pathways

被引:436
作者
Wente, Wolf
Efanov, Alexander M.
Brenner, Martin
Kharitonenkov, Alexei
Koester, Anja
Sandusky, George E.
Sewing, Sabine
Treinies, Iris
Zitzer, Heike
Gromada, Jesper
机构
[1] Lilly Res Labs, D-22419 Hamburg, Germany
[2] Lilly Res Labs, Indianapolis, IN USA
关键词
D O I
10.2337/db05-1435
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Fibroblast growth factor-21 (FGF-21) is a recently discovered metabolic regulator. Here, we investigated the effects of FGF-21 in the pancreatic beta-cell. In rat islets and INS-1E cells, FGF-21 activated extracellular signal-regulated kinase 1/2 and Akt signaling pathways. In islets isolated from healthy rats, FGF-21 increased insulin mRNA and protein levels but did not potentiate glucose-induced insulin secretion. Islets and INS-1E cells treated with FGF-21 were partially protected from glucolipotoxicity and cytokine-induced apoptosis. In islets isolated from diabetic rodents, FGF-21 treatment increased islet insulin content and glucose-induced insulin secretion. Short-term treatment of normal or db/db mice with FGF-21 lowered plasma levels of insulin and improved glucose clearance compared with vehicle after oral glucose tolerance testing. Constant infusion of FGF-21 for 8 weeks in db/db mice nearly normalized fed blood glucose levels and increased plasma insulin levels. Immunohistochemistry of pancreata from db/db mice showed a substantial increase in the intensity of insulin staining in islets from FGF-21-treated animals as well as a higher number of islets per pancreas section and of insulin-positive cells per islet compared with control. No effect of FGF-21 was observed on islet cell proliferation. In conclusion, preservation of beta-cell function and survival by FGF-21 may contribute to the beneficial effects of this protein on glucose homeostasis observed in diabetic animals.
引用
收藏
页码:2470 / 2478
页数:9
相关论文
共 37 条
[1]   ELECTROPHYSIOLOGY OF THE PANCREATIC BETA-CELL [J].
ASHCROFT, FM ;
RORSMAN, P .
PROGRESS IN BIOPHYSICS & MOLECULAR BIOLOGY, 1989, 54 (02) :87-143
[2]   Diabetes mellitus and genetically programmed defects in β-cell function [J].
Bell, GI ;
Polonsky, KS .
NATURE, 2001, 414 (6865) :788-791
[3]   Mode of regulation of the extracellular signal-regulated kinases in the pancreatic β-cell line MIN6 and their implication in the regulation of insulin gene transcription [J].
Benes, C ;
Poitout, V ;
Marie, JC ;
Martin-Perez, J ;
Roisin, MP ;
Fagard, R .
BIOCHEMICAL JOURNAL, 1999, 340 :219-225
[4]   Rapid activation and nuclear translocation of mitogen-activated protein kinases in response to physiological concentration of glucose in the MIN6 pancreatic β cell line [J].
Benes, C ;
Roisin, MP ;
Van Tan, H ;
Creuzet, C ;
Miyazaki, J ;
Fagard, R .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1998, 273 (25) :15507-15513
[5]   Islet β cell expression of constitutively active Akt1/PKBα induces striking hypertrophy, hyperplasia, and hyperinsulinemia [J].
Bernal-Mizrachi, E ;
Wen, W ;
Stahlhut, S ;
Welling, CM ;
Permutt, MA .
JOURNAL OF CLINICAL INVESTIGATION, 2001, 108 (11) :1631-1638
[6]   Defective insulin secretion and increased susceptibility to experimental diabetes are induced by reduced Akt activity in pancreatic islet β cells [J].
Bernal-Mizrachi, E ;
Fatrai, S ;
Johnson, JD ;
Ohsugi, M ;
Otani, K ;
Han, ZQ ;
Polonsky, KS ;
Permutt, MA .
JOURNAL OF CLINICAL INVESTIGATION, 2004, 114 (07) :928-936
[7]   Chronic exposure to free fatty acid reduces pancreatic β cell insulin content by increasing basal insulin secretion that is not compensated for by a corresponding increase in proinsulin biosynthesis translation [J].
Bollheimer, LC ;
Skelly, RH ;
Chester, MW ;
McGarry, JD ;
Rhodes, CJ .
JOURNAL OF CLINICAL INVESTIGATION, 1998, 101 (05) :1094-1101
[8]   Restoration of first-phase insulin secretion by the imidazoline compound LY374284 in pancreatic islets of diabetic db/db mice [J].
Brenner, MB ;
Gromada, J ;
Efanov, AM ;
Bokvist, K ;
Mest, HJ .
AGMATINE AND IMIDAZOLINES: THEIR NOVEL RECEPTORS AND ENZYMES, 2003, 1009 :332-340
[9]   β-cell deficit and increased β-cell apoptosis in humans with type 2 diabetes [J].
Butler, AE ;
Janson, J ;
Bonner-Weir, S ;
Ritzel, R ;
Rizza, RA ;
Butler, PC .
DIABETES, 2003, 52 (01) :102-110
[10]   Akt phosphorylation of BAD couples survival signals to the cell-intrinsic death machinery [J].
Datta, SR ;
Dudek, H ;
Tao, X ;
Masters, S ;
Fu, HA ;
Gotoh, Y ;
Greenberg, ME .
CELL, 1997, 91 (02) :231-241