The K+-ATP channel-independent pathway of regulation of insulin secretion by glucose -: In search of the underlying mechanism

被引:97
|
作者
Sato, Y [1 ]
Henquin, JC [1 ]
机构
[1] Univ Louvain, Unite Endocrinol & Metab, B-1200 Brussels, Belgium
关键词
D O I
10.2337/diabetes.47.11.1713
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
By closing ATP-sensitive K+ (K+-ATP) channels, glucose promotes depolarization-dependent Ca2+ entry and cytoplasmic free Ca2+ concentration ([Ca2+](i)) rise in beta-cells. Ca2+-dependent exocytosis of insulin granules is then potentiated by a K+-ATP channel-independent action of glucose. The underlying mechanisms of this second pathway are still unclear. They were studied by incubating normal mouse islets in the presence of diazoxide to open K+-ATP channels and 30 mmol/l K+ to restore Ca2+ entry. The effect of glucose did not require priming of beta-cells by preincubation in the presence of high glucose and could not be attributed to interaction of the sugar with a "glucoreceptor." There is no evidence that protein kinases A and C are involved in the K+-ATP channel-independent pathway, because inhibitors of the kinases did not alter the effect of glucose. In 3 mmol/l glucose, fatty acids did not influence K+-induced insulin secretion, even in the presence of bromopalmitate, an inhibitor of fatty acid oxidation. Bromopalmitate alone had no effect, but it decreased the potentiation that the fatty acids produce in 20 mmol/l glucose. It is thus unlikely that long-chain acyl CoAs mediate the effect of glucose. The action of glucose was not associated with an increase in arachidonic acid release from the islets and was not mimicked by exogenous arachidonic acid. Phospholipase A, inhibitors antagonized the effect of glucose, but their action was not reversed by arachidonic acid or palmitate and was associated with a fall in islet ATP. No evidence could be found for the intervention of NO, cGMP, Mg, phosphate, phosphatidylinositol 3-kinase, or pertussis toxin-sensitive G-proteins. Formycin A, an adenosine analog that is converted to formycin A-triphosphate in islets, increased insulin secretion in the absence and presence of glucose. In conclusion, the present and our previous results strongly suggest that among all known potential second messengers, adenine nucleotides are the best candidates as regulators of insulin secretion through the K+-ATP channel-independent pathway.
引用
收藏
页码:1713 / 1721
页数:9
相关论文
共 50 条
  • [1] How does glucose increase insulin secretion by the K+-ATP channel-independent pathway
    Sato, Y
    Nenquin, M
    Henquin, JC
    DIABETOLOGIA, 1998, 41 : A140 - A140
  • [2] Possible mechanisms of the K-ATP channel-independent stimulation of insulin secretion by glucose
    Sato, Y
    Miura, Y
    Detimary, P
    Nenquin, M
    Henquin, JC
    DIABETOLOGIA, 1997, 40 : 423 - 423
  • [3] Acceleration by fructose of the ATP-sensitive K+ channel-independent pathway of glucose-induced insulin secretion
    Miwa, I
    Taniguchi, S
    HORMONE AND METABOLIC RESEARCH, 2002, 34 (08) : 450 - 454
  • [4] Glucose and K+ATP-Channel independent mechanism of GIP action on insulin secretion
    Ehses, JA
    Lee, S
    Pederson, RA
    McIntosh, CHS
    DIABETES, 2001, 50 : A350 - A350
  • [5] Glucose activates calcium-dependent protein kinases via the K-ATP channel-independent pathway of insulin secretion in pancreatic β-cells
    Bhatt, HS
    Lawrence, MC
    Parameswara, VK
    Easom, RA
    DIABETES, 2001, 50 : A525 - A525
  • [6] CAMP enhances insulin secretion by an action on the ATP-sensitive K+ channel-independent pathway of glucose signaling in rat pancreatic islets
    Yajima, H
    Komatsu, M
    Schermerhorn, T
    Aizawa, T
    Kaneko, T
    Nagai, M
    Sharp, GWG
    Hashizume, K
    DIABETES, 1999, 48 (05) : 1006 - 1012
  • [7] Effects of protein kinase on insulin secretion via ATP-sensitive K+ channel-independent pathway.
    Nishimura, M
    Ishida, H
    Kato, S
    Tsuura, Y
    Mizuno, N
    Fujimoto, S
    Seino, Y
    DIABETOLOGIA, 1997, 40 : 425 - 425
  • [8] Metabolic and K+-ATP channel-independent secretory actions of glucose and 2-keto acids in clonal β-cells
    McClenaghan, NH
    Flatt, PR
    DIABETOLOGIA, 1998, 41 : A140 - A140
  • [9] KATP channel-independent pathways involved in glucose-induced insulin secretion
    Ishikawa, T
    Nakayama, K
    JOURNAL OF PHARMACOLOGICAL SCIENCES, 2006, 100 : 49P - 49P
  • [10] Characterization of a KATP channel-independent pathway involved in potentiation of insulin secretion by efaroxan
    Chan, SLF
    Mourtada, M
    Morgan, NG
    DIABETES, 2001, 50 (02) : 340 - 347