Glucose-dependent insulinotropic polypeptide stimulation of lipolysis in differentiated 3T3-L1 cells: Wortmannin-sensitive inhibition by insulin

被引:57
作者
McIntosh, CHS
Bremsak, I
Lynn, FC
Gill, R
Hinke, SA
Gelling, R
Nian, CL
McKnight, G
Jaspers, S
Pederson, RA
机构
[1] Univ British Columbia, Fac Med, Dept Physiol, Vancouver, BC V6T 1Z3, Canada
[2] Zymogenet Inc, Seattle, WA 98105 USA
关键词
D O I
10.1210/en.140.1.398
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
GIP is an important insulinotropic hormone (incretin) that has also been implicated in fat metabolism. There is controversy regarding the actions of GIP on adipocytes. In the current study, the existence of GIP receptors and effects of GIP on lipolysis were studied in differentiated 3T3-L1 cells. GIP receptor messenger RNA was detected by RT-PCR and RNase protection assay. Receptors were detected in binding studies (IC50 26.7 +/- 0.7 nM). GIP stimulated glycerol release with an EC50 of 3.28 +/- 0.63 nM. GIP (10(-9)-10(-7) M) + IBMX increased cAMP production by 1180-2246%. The adenylyl cyclase inhibitor MDL 12330A (10(-4) M) inhibited GIP-induced glycerol production by >90%, and reduced cAMP responses to basal. Preincubation of 3T3-L1 cells with insulin inhibited glycerol responses to GIP, and the inhibitory effect of insulin was blocked by the phosphatidylinositol 3'-kinase inhibitor, wortmannin. It is concluded that GIP stimulates glycerol release in 3T3-L1 cells primarily via stimulation of cAMP production, and that insulin antagonizes GIP-induced lipolysis in a wortmannin-sensitive fashion. It is suggested that effects of GTP on fat: metabolism in vivo may depend upon the circulating insulin level, and that meal-released GIP may elevate circulating fatty acids, thus optimizing pancreatic beta-cell responsiveness to stimulation by glucose and GIP.
引用
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页码:398 / 404
页数:7
相关论文
共 48 条
[1]   The beta-adrenergic receptor is a substrate for the insulin receptor tyrosine kinase [J].
Baltensperger, K ;
Karoor, V ;
Paul, H ;
Ruoho, A ;
Czech, MP ;
Malbon, CC .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1996, 271 (02) :1061-1064
[3]  
BROWN JC, 1989, HDB PHYSL 6, P403
[4]  
CHOMCZYNSKI P, 1987, ANAL BIOCHEM, V162, P156, DOI 10.1016/0003-2697(87)90021-2
[5]   Structure, localization, and regulation of cGMP-inhibited phosphodiesterase (PDE3) [J].
Degerman, E ;
Belfrage, P ;
Manganiello, VC .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1997, 272 (11) :6823-6826
[6]   INHIBITION OF ACTIONS OF GLUCAGON IN ADIPOCYTES BY GASTRIC INHIBITORY POLYPEPTIDE [J].
DUPRE, J ;
MCDONALD, TJ ;
ROSS, SA ;
RUBINSTEIN, D .
METABOLISM-CLINICAL AND EXPERIMENTAL, 1976, 25 (11) :1197-1199
[7]   REVERSAL OF IMPAIRED GIP AND INSULIN-SECRETION IN PATIENTS WITH PANCREATOGENIC STEATORRHEA FOLLOWING ENZYME SUBSTITUTION [J].
EBERT, R ;
CREUTZFELDT, W .
DIABETOLOGIA, 1980, 19 (03) :198-204
[8]   EFFECT OF EXOGENOUS OR ENDOGENOUS GASTRIC-INHIBITORY POLYPEPTIDE (GIP) ON PLASMA TRIGLYCERIDE RESPONSES IN RATS [J].
EBERT, R ;
NAUCK, M ;
CREUTZFELDT, W .
HORMONE AND METABOLIC RESEARCH, 1991, 23 (11) :517-521
[9]  
EBERT R, 1987, FRONT HORM RES, V16, P175
[10]   GASTRIC-INHIBITORY POLYPEPTIDE ENHANCED LIPOPROTEIN-LIPASE ACTIVITY IN CULTURED PREADIPOCYTES [J].
ECKEL, RH ;
FUJIMOTO, WY ;
BRUNZELL, JD .
DIABETES, 1979, 28 (12) :1141-1142