Ras-GRF1 signaling is required for normal β-cell development and glucose homeostasis

被引:63
作者
de Mora, JF
Esteban, LM
Burks, DJ
Núñez, A
Garcés, C
García-Barrado, MJ
Iglesias-Osma, MC
Moratinos, J
Ward, JM
Santos, E [1 ]
机构
[1] Univ Salamanca, Ctr Invest Canc, IBMCC, CSIC, E-37008 Salamanca, Spain
[2] Univ Salamanca, Inst Neurociencias Castilla & Leon, E-37008 Salamanca, Spain
[3] Univ Salamanca, Dept Fisiol & Farmacol, E-37008 Salamanca, Spain
[4] Univ Autonoma Madrid, Unidad Lipidos, Fdn Jimenez Diaz, E-28049 Madrid, Spain
[5] NCI, Frederick, MD 21702 USA
关键词
cell growth; beta-cells; differentiation; insulin; Ras-GRF1;
D O I
10.1093/emboj/cdg280
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Development of diabetes generally reflects an inadequate mass of insulin-producing beta-cells. beta-cell proliferation and differentiation are regulated by a variety of growth factors and hormones, including insulin-like growth factor I (IGF-I). GRF1 is a Ras-guanine nucleotide exchange factor known previously for its restricted expression in brain and its role in learning and memory. Here we demonstrate that GRF1 is also expressed in pancreatic islets. Interestingly, our GRF1-deficient mice exhibit reduced body weight, hypoinsulinemia and glucose intolerance owing to a reduction of beta-cells. Whereas insulin resistance is not detected in peripheral tissues, GRF1 knockout mice are leaner due to increased lipid catabolism. The reduction in circulating insulin does not reflect defective glucose sensing or insulin production but results from impaired beta-cell proliferation and reduced neogenesis. IGF-I treatment of isolated islets from GRF1 knockouts fails to activate critical downstream signals such as Akt and Erk. The observed phenotype is similar to manifestations of preclinical type 2 diabetes. Thus, our observations demonstrate a novel and specific role for Ras-GRF1 pathways in the development and maintenance of normal beta-cell number and function.
引用
收藏
页码:3039 / 3049
页数:11
相关论文
共 42 条
[1]   The RASputin effect [J].
Boettner, B ;
Van Aelst, L .
GENES & DEVELOPMENT, 2002, 16 (16) :2033-2038
[2]  
Bonin A, 2000, METH MOL B, V158, P121
[3]   IDENTIFICATION OF MURINE HOMOLOGS OF THE DROSOPHILA SON OF SEVENLESS GENE - POTENTIAL ACTIVATORS OF RAS [J].
BOWTELL, D ;
FU, P ;
SIMON, M ;
SENIOR, P .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1992, 89 (14) :6511-6515
[4]   A role for the Ras signalling pathway in synaptic transmission and long-term memory [J].
Brambilla, R ;
Gnesutta, N ;
Minichiello, L ;
White, G ;
Roylance, AJ ;
Herron, CE ;
Ramsey, M ;
Wolfer, DP ;
Cestari, V ;
RossiArnaud, C ;
Grant, SGN ;
Chapman, PF ;
Lipp, HP ;
Sturani, E ;
Klein, R .
NATURE, 1997, 390 (6657) :281-286
[5]   Increasing complexity of Ras signaling [J].
Campbell, SL ;
Khosravi-Far, R ;
Rossman, KL ;
Clark, GJ ;
Der, CJ .
ONCOGENE, 1998, 17 (11) :1395-1413
[6]   ISOLATION OF MULTIPLE MOUSE CDNAS WITH CODING HOMOLOGY TO SACCHAROMYCES-CEREVISIAE CDC25 - IDENTIFICATION OF A REGION RELATED TO BCR, VAV, DBL AND CDC24 [J].
CEN, H ;
PAPAGEORGE, AG ;
ZIPPEL, R ;
LOWY, DR ;
ZHANG, K .
EMBO JOURNAL, 1992, 11 (11) :4007-4015
[7]   Integration of calcium and Ras signalling [J].
Cullen, PJ ;
Lockyer, PJ .
NATURE REVIEWS MOLECULAR CELL BIOLOGY, 2002, 3 (05) :339-348
[8]   RasGRP, a Ras guanyl nucleotide-releasing protein with calcium- and diacylglycerol-binding motifs [J].
Ebinu, JO ;
Bottorff, DA ;
Chan, EYW ;
Stang, SL ;
Dunn, RJ ;
Stone, JC .
SCIENCE, 1998, 280 (5366) :1082-1086
[9]   DIABETES INDUCED IN MALE TRANSGENIC MICE BY EXPRESSION OF HUMAN H-RAS ONCOPROTEIN IN PANCREATIC BETA-CELLS [J].
EFRAT, S ;
FLEISCHER, N ;
HANAHAN, D .
MOLECULAR AND CELLULAR BIOLOGY, 1990, 10 (04) :1779-1783
[10]   The importance of being K-Ras [J].
Ellis, CA ;
Clark, G .
CELLULAR SIGNALLING, 2000, 12 (07) :425-434