Regulation of Ca2+ homeostasis by glucose metabolism in rat brain

被引:0
|
作者
Mohinder S. Nijjar
R. Belgrave
机构
[1] University of Prince Edward Island,Department of Anatomy and Physiology, Atlantic Veterinary College
来源
关键词
calcium; metabolism; glucose; hypoxia; rat brain;
D O I
暂无
中图分类号
学科分类号
摘要
In a previous communication we reported that glucose deprivation from KHRB medium resulted in a marked stimulation of Ca2+ uptake by brain tissue, suggesting a relationship between glucose and Ca2+ homeostasis in brain tissue [17]. Experiments were carried out to investigate the significance of glucose in Ca2+ transport in brain cells. The replacement of glucose with either D-methylglucoside or 2-deoxyglucose, non-metabolizable analogues of glucose, resulted in stimulation of Ca2+ uptake just as by glucose deprivation. These data show that glucose metabolism rather than glucose transfer was necessary to stimulate Ca2+ uptake in brain tissue. Inhibition of glucose metabolism with either NaF, NaCN, or iodoacetate resulted in stimulation of Ca2+ uptake similar to that produced by glucose deprivation. These results lend further support for the concept that glucose metabolism is essential for Ca2+ homeostasis in brain. Anoxia promotes glucose metabolism through glycolytic pathway to keep up with the demand for ATP by cellular processes (the Pasteur effect). Incubation of brain slices under nitrogen gas did not alter Ca2+ uptake by brain tissue, as did glucose deprivation and the inhibitors of glucose metabolism. We conclude that glucose metabolism resulting in the synthesis of ATP is essential for Ca2+ homeostasis in brain. Verapamil and nifedipine which block voltage-gated Ca2+ channels, did not alter Ca2+ uptake stimulated by glucose deprivation, indicating that glucose deprivation-enhanced Ca2+ uptake was not mediated by Ca2+ channels. Tetrodotoxin which specifically blocks Na+ channels, abolished Ca2+ uptake enhanced by glucose deprivation, but had no effect on Ca2+ uptake in presence of glucose (controls). These results suggest that stimulation of Ca2+ uptake by glucose deprivation may be related to Na+ transfer via Na-Ca exchange in brain.
引用
收藏
页码:317 / 326
页数:9
相关论文
共 50 条
  • [21] Mitochondrial Ca2+ homeostasis in the regulation of apoptotic and necrotic cell deaths
    Zhu, LP
    Yu, XD
    Ling, S
    Brown, RA
    Kuo, TH
    CELL CALCIUM, 2000, 28 (02) : 107 - 117
  • [22] Energy metabolism and its linkage to intracellular Ca2+ and pH regulation in rat spermatogenic cells
    Herrera, E
    Salas, K
    Lagos, N
    Benos, DJ
    Reyes, JG
    BIOLOGY OF THE CELL, 2000, 92 (06) : 429 - 440
  • [23] The insulin regulation of β-cell function:: Insulin secretion and Ca2+ homeostasis
    Xu, GG
    Gao, ZY
    Borge, PD
    Wolf, BA
    DIABETES, 2000, 49 : A255 - A256
  • [24] REGULATION OF CA2+ TRANSPORT BY RAT INSULINOMA MITOCHONDRIA
    PRENTKI, M
    JANJIC, D
    WOLLHEIM, CB
    DIABETES, 1983, 32 : A39 - A39
  • [25] Zinc inhibits Ca2+ transport by rat brain Na+/Ca2+ exchanger
    Colvin, RA
    NEUROREPORT, 1998, 9 (13) : 3091 - 3096
  • [26] How is alteration in Ca2+ homeostasis controlled in brain? A role for calpastatin
    Melloni, Edon
    Averna, Monica
    Stifanese, Roberto
    De Tullio, Roberta
    Salamino, Franca
    Defranchi, Enrico
    FASEB JOURNAL, 2007, 21 (06): : A997 - A997
  • [27] Parameters of Ca2+ homeostasis in ageing brain:: from physiology to pathology
    Toescu, EC
    Verkhratsky, A
    JOURNAL OF PHYSIOLOGY-LONDON, 2000, 523 : 94S - 95S
  • [28] A role for plasma membrane Ca2+ ATPases in regulation of cellular Ca2+ homeostasis by sphingosine kinase-1
    Volk, Luisa Michelle
    Bruun, Jan-Erik
    Trautmann, Sandra
    Thomas, Dominique
    Schwalm, Stephanie
    Pfeilschifter, Josef
    zu Heringdorf, Dagmar Meyer
    PFLUGERS ARCHIV-EUROPEAN JOURNAL OF PHYSIOLOGY, 2024, 476 (12): : 1895 - 1911
  • [29] Na+/Ca2+ Exchange and Cellular Ca2+ Homeostasis
    John P. Reeves
    Journal of Bioenergetics and Biomembranes, 1998, 30 : 151 - 160
  • [30] Role of Na+/Ca2+ exchange in regulation of neuronal Ca2+ homeostasis requires re-evaluation
    Storozhevykh, T
    Grigortsevich, N
    Sorokina, E
    Vinskaya, N
    Vergun, O
    Pinelis, V
    Khodorov, B
    FEBS LETTERS, 1998, 431 (02): : 215 - 218