Caffeine induced oscillations of cytosolic Ca2+ in GH(3) pituitary cells are not due to Ca2+ release from intracellular stores but to enhanced Ca2+ influx through voltage-gated Ca2+ channels

被引:14
|
作者
Villalobos, C
GarciaSancho, J
机构
[1] UNIV VALLADOLID, INST BIOL & GENET MOLEC, E-47005 VALLADOLID, SPAIN
[2] CSIC, FAC MED, DEPT BIOQUIM & BIOL MOLEC & FISIOL, E-47005 VALLADOLID, SPAIN
来源
关键词
Ca2+ influx; Ca2+-induced Ca2+ release; caffeine; ryanodine; intracellular Ca2+ stores; GH(3) pituitary cells; thapsigargin;
D O I
10.1007/BF02207274
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
Caffeine, a well known facilitator of Ca2+-induced Ca2+ release: induced oscillations of cytosolic free Ca2+ ([Ca2+](i)) in GH(3) pituitary cells. These oscillations were dependent on the presence of extracellular Ca2+ and blocked by dihydropyridines, suggesting that they are due to Ca2+ entry through L-type Ca2+ channels, rather than to Ca2+ release from the intracellular Ca2+ stores. Emptying the stores by treatment with ionomycin or thapsigargin did not prevent the caffeine-induced [Ca2+](i) oscillations. Treatment with caffeine occluded phase 2 ([Ca2+](i) oscillations) of the action of thyrotropin-releasing hormone (TRH) without modifying phase 1 (Ca2+ release from the intracellular stores). Caffeine also inhibited the [Ca2+](i) increase induced by depolarization with high-K+ solutions (56% at 20 mM), suggesting direct inhibition of the Ca2+ entry through voltage-gated Ca2+ channels. We propose that the [Ca2+](i) increase induced by caffeine ain GH(3) cells takes place by a mechanism similar to that of TRH, i.e. membrane depolarization that increases the firing frequency of action potentials. The increase of the electrical activity overcomes the direct inhibitory effect on voltage-gated Ca2+ channels with the result of increased Ca2+ entry and a rise in [Ca2+](i). Consideration of this action cautions interpretation of previous experiments in which caffeine was assumed to increase [Ca2+](i) only by facilitating the release of Ca2+ from intracellular Ca2+ stores.
引用
收藏
页码:371 / 378
页数:8
相关论文
共 50 条
  • [11] T cell activation depends on Ca2+ release from intracellular Ca2+ channels regulated by extracellular Ca2+ influx
    Fomina, Alla F.
    Dadsetan, Sepehr
    Zakharova, Liudmila
    FASEB JOURNAL, 2008, 22
  • [12] Ca2+ Influx Through Vascular Smooth Muscle Cell Voltage-Gated Ca2+ Channels Increases Endothelial Cell Ca2+ to Evoke Vasodilation
    Bagher, Pooneh
    Garland, Christopher
    Dora, Kim
    FASEB JOURNAL, 2015, 29
  • [13] Neuronal input triggers Ca2+ influx through AMPA receptors and voltage-gated Ca2+ channels in oligodendrocytes
    Barron, Tara
    Kim, Jun Hee
    GLIA, 2019, 67 (10) : 1922 - 1932
  • [14] Ca2+ signalling, voltage-gated Ca2+ channels and praziquantel in flatworm neuromusculature
    Greenberg, RM
    PARASITOLOGY, 2005, 131 : S97 - S108
  • [15] VOLTAGE-GATED Ca2+ INFLUX AND MITOCHONDRIAL Ca2+ INITIATE SECRETION FROM APLYSIA NEUROENDOCRINE CELLS
    Hickey, C. M.
    Groten, C. J.
    Sham, L.
    Carter, C. J.
    Magoski, N. S.
    NEUROSCIENCE, 2013, 250 : 755 - 772
  • [16] The Voltage-Gated Ca2+ Channel Is the Ca2+ Sensor of Fast Neurotransmitter Release
    Daphne Atlas
    Ofer Wiser
    Michael Trus
    Cellular and Molecular Neurobiology, 2001, 21 : 717 - 731
  • [17] The voltage-gated Ca2+ channel is the Ca2+ sensor of fast neurotransmitter release
    Atlas, D
    Wiser, O
    Trus, M
    CELLULAR AND MOLECULAR NEUROBIOLOGY, 2001, 21 (06) : 717 - 731
  • [18] Ca2+ influx through L-type Ca2+ channels causes voltage-dependent SR Ca2+ release
    Piacentino, V
    Houser, SR
    BIOPHYSICAL JOURNAL, 2000, 78 (01) : 149A - 149A
  • [19] Regulation of Ca2+ release-activated Ca2+ channels by INAD and Ca2+ influx factor
    Su, ZC
    Barker, DS
    Csutora, P
    Chang, T
    Shoemaker, RL
    Marchase, RB
    Blalock, JE
    AMERICAN JOURNAL OF PHYSIOLOGY-CELL PHYSIOLOGY, 2003, 284 (02): : C497 - C505
  • [20] REGULATION OF CA2+ INFLUX DURING MITOSIS - CA2+ INFLUX AND DEPLETION OF INTRACELLULAR CA2+ STORES ARE COUPLED IN INTERPHASE BUT NOT MITOSIS
    PRESTON, SF
    SHAAFI, RI
    BERLIN, RD
    CELL REGULATION, 1991, 2 (11): : 915 - 925