Properties and molecular basis of the mouse urinary bladder voltage-gated K+ current

被引:62
|
作者
Thorneloe, KS [1 ]
Nelson, MT [1 ]
机构
[1] Univ Vermont, Coll Med, Dept Pharmacol, Burlington, VT 05405 USA
来源
JOURNAL OF PHYSIOLOGY-LONDON | 2003年 / 549卷 / 01期
关键词
D O I
10.1113/jphysiol.2003.039859
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Potassium channels play an important role in controlling the excitability of urinary bladder smooth muscle (UBSM). Here we describe the biophysical, pharmacological and molecular properties of the mouse UBSM voltage-gated K+ current (I-K(V)). The I-K(V) activated, deactivated and inactivated slowly with time constants of 29.9 ms at +30 mV, 131 ms at -40 mV and 3.4 s at +20 mV. The midpoints of steady-state activation and inactivation curves were 1.1 mV and -61.4 mV, respectively. These properties suggest that I-K(V) plays a role in regulating the resting membrane potential and contributes to the repolarization and after-hyperpolarization phases of action potentials. The I-K(V) was blocked by tetraethylammonium ions with an IC50 of 5.2 mM and was unaffected by 1 mM 4-aminopyridine. RT-PCR for voltage-gated K+ channel (K-V) subunits revealed the expression of Kv2.1, Kv5.1, Kv6.1, Kv6.2 and Kv6.3 in isolated UBSM myocytes. A comparison of the biophysical properties of UBSM I-K(V) with those reported for Kv2.1 and Kv5.1 and/or Kv6 heteromultimeric channels demonstrated a marked similarity. We propose that heteromultimeric channel complexes composed of Kv2.1 and Kv5.1 and/or Kv6 subunits form the molecular basis of the mouse UBSM I-K(V).
引用
收藏
页码:65 / 74
页数:10
相关论文
共 50 条
  • [41] Voltage-gated K+ channel modulators as neuroprotective agents
    Leung, Yuk-Man
    LIFE SCIENCES, 2010, 86 (21-22) : 775 - 780
  • [42] Expression of voltage-gated K+ channels in human atrium
    Federica Bertaso
    Claire C. Sharpe
    Bruce M. Hendry
    Andrew F. James
    Basic Research in Cardiology, 2002, 97 : 424 - 433
  • [43] Taking apart the gating of voltage-gated K+ channels
    Yi, BA
    Jan, LY
    NEURON, 2000, 27 (03) : 423 - 425
  • [44] In Vitro Folding of KvAP, a Voltage-Gated K+ Channel
    Devaraneni, Prasanna K.
    Devereaux, Jordan J.
    Valiyaveetil, Francis I.
    BIOCHEMISTRY, 2011, 50 (48) : 10442 - 10450
  • [45] The activation of voltage-gated K+ channels by rosin acid
    Sakamoto, K
    Ohya, S
    Muraki, K
    Imaizumi, Y
    JOURNAL OF PHARMACOLOGICAL SCIENCES, 2004, 94 : 115P - 115P
  • [46] Biogenesis of Pore Architecture in Voltage-Gated K+ Channels
    Gajewski, Christine
    Dagcan, Alper
    Pian, Timothy
    Roux, Benoit
    Deutsch, Carol
    BIOPHYSICAL JOURNAL, 2010, 98 (03) : 117A - 117A
  • [47] Modulation of two voltage-gated K+ channels by methohexital
    Nunez, R
    Tamkun, MM
    Harrison, NL
    ANESTHESIOLOGY, 1996, 85 (3A) : A629 - A629
  • [48] Architecture of a membrane protein:: The voltage-gated K+ channel
    Varshney, A
    Mathew, MK
    CURRENT SCIENCE, 2004, 87 (02): : 166 - 174
  • [49] Novel Activation of Voltage-gated K+ Channels by Sevoflurane
    Barber, Annika F.
    Liang, Qiansheng
    Covarrubias, Manuel
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2012, 287 (48) : 40425 - 40432
  • [50] Investigating the Electromechanical Coupling in voltage-gated K+ channels
    Batulan, Zarah
    Haddad, Georges A.
    Marsolais, Mireille
    Blunck, Rikard
    BIOPHYSICAL JOURNAL, 2009, 96 (03) : 369A - 369A