Sulfatide controls insulin secretion by modulation of ATP-sensitive K+-channel activity and Ca2+-dependent exocytosis in rat pancreatic β-cells

被引:41
|
作者
Buschard, K [1 ]
Hoy, M
Bokvist, K
Olsen, HL
Madsbad, S
Fredman, P
Gromada, J
机构
[1] Kommune Hosp Copenhagen, Batholin Inst, DK-1399 Copenhagen K, Denmark
[2] Novo Nordisk AS, Lab Islet Cell Physiol, DK-2880 Bagsvaerd, Denmark
[3] Hvidovre Univ Hosp, Dept Endocrinol, Hvidovre, Denmark
[4] Univ Gothenburg, Molndals Hosp, Sect Neurochem, Dept Clin Neurosci, Molndal, Sweden
关键词
D O I
10.2337/diabetes.51.8.2514
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
The glycosphingolipid sulfatide is present in secretory granules and at the surface of pancreatic beta-cells, and antisulfatide antibodies (ASA; IgG1) are found in serum from the majority of patients with newly diagnosed type 1 diabetes. Here we demonstrate that sulfatide produced a glucose- and concentration-dependent inhibition of insulin release from isolated rat pancreatic islets. This inhibition of insulin secretion was due to activation of ATP-sensitive K+-(K-ATP) channels in single rat beta-cells. No effect of sulfatide was observed on whole-cell Ca2+-channel activity or glucose-induced elevation of cytoplasmic Ca2+ concentration. It is interesting that sulfatide stimulated Ca2+-dependent exocytosis determined by capacitance measurements and depolarized-induced insulin secretion from islets exposed to diazoxide and high external KCl. The monoclonal sulfatide antibody Sulph I as well as ASA-positive serum reduced 2 glucose-induced insulin secretion by inhibition of Ca2+-dependent exocytosis. Our data suggest that sulfatide is important for the control of glucose-induced insulin secretion and that both an increase and a decrease in the sulfatide content have an impact on the secretory capacity of the individual beta-cells.
引用
收藏
页码:2514 / 2521
页数:8
相关论文
共 50 条
  • [41] ATP-sensitive K+ channel openers prevent Ca2+ overload in rat cardiac mitochondria
    Holmuhamedov, EL
    Wang, LW
    Terzic, A
    JOURNAL OF PHYSIOLOGY-LONDON, 1999, 519 (02): : 347 - 360
  • [42] RUBIDIUM ACTS AS A PERMEANT BLOCKER OF THE GLUCOSE AND ATP-SENSITIVE K-CHANNEL IN RAT PANCREATIC BETA-CELLS
    ASHCROFT, FM
    KAKEI, M
    KELLY, R
    JOURNAL OF PHYSIOLOGY-LONDON, 1986, 377 : P38 - P38
  • [43] Glucose stimulates Ca2+ influx and insulin secretion in 2-week-old β-cells lacking ATP-sensitive K+ channels
    Szollosi, Andras
    Nenquin, Myriam
    Aguilar-Bryan, Lydia
    Bryan, Joseph
    Henquin, Jean-Claude
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2007, 282 (03) : 1747 - 1756
  • [44] pH modulation of Ca2+ responses and a Ca2+-dependent K+ channel in cultured rat hippocampal neurones
    Church, J
    Baxter, KA
    McLarnon, JG
    JOURNAL OF PHYSIOLOGY-LONDON, 1998, 511 (01): : 119 - 132
  • [45] PIP2 and ATP synergistically prevent disarrangement of ATP-sensitive K+ channels induced by elevation of cytosolic Ca2+ in rat pancreatic β-cells
    Koriyama, N
    Kakei, M
    Nakazaki, M
    Yaekura, K
    Ichinari, K
    Yada, T
    Tei, C
    DIABETES MELLITUS: RECENT ADVANCES FOR THE 21ST CENTURY, 2000, 1209 : 139 - 142
  • [46] Y-26763:: ATP-sensitive K+ channel activation and the inhibition of insulin release from human pancreatic β-cells
    Cosgrove, KE
    Straub, SG
    Barnes, PD
    Chapman, J
    Sharp, GW
    Dunne, MJ
    EUROPEAN JOURNAL OF PHARMACOLOGY, 2004, 486 (02) : 133 - 139
  • [47] Extracellular ATP affects stimulus-secretion coupling of mouse pancreatic beta cells by activating Ca2+-dependent K+ channels
    Bauer, C.
    Krippeit-Drews, P.
    Duefer, M.
    Drews, G.
    DIABETOLOGIA, 2015, 58 : S87 - S88
  • [48] Rebaudioside A directly stimulates insulin secretion from pancreatic beta cells: a glucose-dependent action via inhibition of ATP-sensitive K+-channels
    Abudula, R.
    Matchkov, V. V.
    Jeppesen, P. B.
    Nilsson, H.
    Aalkjaer, C.
    Hermansen, K.
    DIABETES OBESITY & METABOLISM, 2008, 10 (11): : 1074 - 1085
  • [49] GABA is released from rat pancreatic β-cells by Ca2+-dependent exocytosis of synaptic-like microvesicles.
    Wendt, A
    Braun, M
    Birnir, B
    Broman, J
    Eliasson, L
    Mulder, H
    Rorsman, P
    DIABETOLOGIA, 2002, 45 : A163 - A163
  • [50] Verapamil, a phenylalkylamine Ca2 + channel blocker, inhibits ATP-sensitive K + channels in insulin-secreting cells from rats
    P. Lebrun
    M.-H. Antoine
    R. Ouedraogo
    B. Pirotte
    A. Herchuelz
    K. E. Cosgrove
    C. Kane
    M. J. Dunne
    Diabetologia, 1997, 40 : 1403 - 1410