Controlling Ca2+-Activated K+ Channels with Models of Ca2+ Buffering in Purkinje Cells

被引:0
|
作者
Haroon Anwar
Sungho Hong
Erik De Schutter
机构
[1] Okinawa Institute of Science and Technology,Computational Neuroscience Unit
[2] University of Antwerp,Theoretical Neurobiology
来源
The Cerebellum | 2012年 / 11卷
关键词
Purkinje cells; Calcium channels; Potassium channels; Calcium-activated; Calcium-binding proteins; Diffusion; Computer simulation;
D O I
暂无
中图分类号
学科分类号
摘要
Intracellular Ca2+ concentrations play a crucial role in the physiological interaction between Ca2+ channels and Ca2+-activated K+ channels. The commonly used model, a Ca2+ pool with a short relaxation time, fails to simulate interactions occurring at multiple time scales. On the other hand, detailed computational models including various Ca2+ buffers and pumps can result in large computational cost due to radial diffusion in large compartments, which may be undesirable when simulating morphologically detailed Purkinje cell models. We present a method using a compensating mechanism to replace radial diffusion and compared the dynamics of different Ca2+ buffering models during generation of a dendritic Ca2+ spike in a single compartment model of a PC dendritic segment with Ca2+ channels of P- and T-type and Ca2+-activated K+ channels of BK- and SK-type. The Ca2+ dynamics models used are (1) a single Ca2+ pool; (2) two Ca2+ pools, respectively, for the fast and slow transients; (3) detailed Ca2+ dynamics with buffers, pump, and diffusion; and (4) detailed Ca2+ dynamics with buffers, pump, and diffusion compensation. Our results show that detailed Ca2+ dynamics models have significantly better control over Ca2+-activated K+ channels and lead to physiologically more realistic simulations of Ca2+ spikes and bursting. Furthermore, the compensating mechanism largely eliminates the effect of removing diffusion from the model on Ca2+ dynamics over multiple time scales.
引用
收藏
页码:681 / 693
页数:12
相关论文
共 50 条
  • [21] Selective activation of Ca2+-activated K+ channels by co-localized Ca2+ channels in hippocampal neurons
    Neil V. Marrion
    Steven J. Tavalin
    Nature, 1998, 395 : 900 - 905
  • [22] Regulation of Ca2+-activated K+ channels by multifunctional Ca2+/calmodulin-dependent protein kinase
    Sansom, SC
    Ma, R
    Carmines, PK
    Hall, DA
    AMERICAN JOURNAL OF PHYSIOLOGY-RENAL PHYSIOLOGY, 2000, 279 (02) : F283 - F288
  • [23] TETRANDRINE - A NEW LIGAND TO BLOCK VOLTAGE-DEPENDENT CA2+ AND CA2+-ACTIVATED K+ CHANNELS
    WANG, G
    LEMOS, JR
    LIFE SCIENCES, 1994, 56 (05) : 295 - 306
  • [24] KETAMINE INHIBITION OF LARGE-CONDUCTANCE CA2+-ACTIVATED K+ CHANNELS IS MODULATED BY INTRACELLULAR CA2+
    DENSON, DD
    EATON, DC
    AMERICAN JOURNAL OF PHYSIOLOGY-CELL PHYSIOLOGY, 1994, 267 (05): : C1452 - C1458
  • [25] Neurotransmitter modulation of small-conductance Ca2+-activated K+ channels by regulation of Ca2+ gating
    Maingret, Francois
    Coste, Bertrand
    Hao, Jizhe
    Giamarchi, Aurelie
    Allen, Duane
    Crest, Marcel
    Litchfield, David W.
    Adelman, John P.
    Delmas, Patrick
    NEURON, 2008, 59 (03) : 439 - 449
  • [26] Prion protein affects Ca2+-activated K+ currents in cerebellar Purkinje cells
    Herms, JW
    Tings, T
    Dunker, S
    Kretzschmar, HA
    NEUROBIOLOGY OF DISEASE, 2001, 8 (02) : 324 - 330
  • [27] Nucleotide regulation of Ca2+-activated K+ channels.
    Wachter, C
    Turnheim, K
    Wiener, H
    Zeuthen, T
    Klaerke, D
    BIOPHYSICAL JOURNAL, 1996, 70 (02) : SU235 - SU235
  • [28] Maxi Ca2+-activated K+ channels:: Structure and gating
    Kazachenko, VN
    Kochetkov, KV
    BIOLOGICHESKIE MEMBRANY, 2003, 20 (02): : 99 - 120
  • [29] Molecular identification of Ca2+-activated K+ channels in parotid acinar cells
    Nehrke, K
    Quinn, CC
    Begenisich, T
    AMERICAN JOURNAL OF PHYSIOLOGY-CELL PHYSIOLOGY, 2003, 284 (02): : C535 - C546
  • [30] CA2+-ACTIVATED K+ CHANNELS IN HUMAN LEUKEMIC T-CELLS
    GRISSMER, S
    LEWIS, RS
    CAHALAN, MD
    JOURNAL OF GENERAL PHYSIOLOGY, 1992, 99 (01): : 63 - 84