Modulation of endothelial cell KCa3.1 channels during endothelium-derived hyperpolarizing factor signaling in mesenteric resistance arteries

被引:181
作者
Dora, Kim A. [1 ]
Gallagher, Nicola T. [1 ]
McNeish, Alister [1 ]
Garland, Christopher J. [1 ]
机构
[1] Univ Bath, Dept Pharm & Pharmacol, Bath BA2 7AY, Avon, England
基金
英国惠康基金;
关键词
potassium channel; endothelial cells; hyperpolarization; membrane potential; electrophysiology; vasodilation;
D O I
10.1161/CIRCRESAHA.108.172379
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Arterial hyperpolarization to acetylcholine (ACh) reflects coactivation of K(Ca)3.1 (IKCa) channels and K(Ca)2.3 (SK(Ca)) channels in the endothelium that transfers through myoendothelial gap junctions and diffusible factor(s) to affect smooth muscle relaxation (endothelium-derived hyperpolarizing factor [EDHF] response). However, ACh can differentially activate K(Ca)3.1 and K(Ca)2.3 channels, and we investigated the mechanisms responsible in rat mesenteric arteries. K(Ca)3.1 channel input to EDHF hyperpolarization was enhanced by reducing external [Ca(2+)](o) but blocked either with forskolin to activate protein kinase A or by limiting smooth muscle [Ca(2+)](i) increases stimulated by phenylephrine depolarization. Imaging [Ca(2+)](i) within the endothelial cell projections forming myoendothelial gap junctions revealed increases in cytoplasmic [Ca(2+)](i) during endothelial stimulation with ACh that were unaffected by simultaneous increases in muscle [Ca(2+)](i) evoked by phenylephrine. If gap junctions were uncoupled, KCa3.1 channels became the predominant input to EDHF hyperpolarization, and relaxation was inhibited with ouabain, implicating a crucial link through Na(+)/K(+)-ATPase. There was no evidence for an equivalent link through K(Ca)2.3 channels nor between these channels and the putative EDHF pathway involving natriuretic peptide receptor-C. Reconstruction of confocal z-stack images from pressurized arteries revealed K(Ca)2.3 immunostain at endothelial cell borders, including endothelial cell projections, whereas K(Ca)3.1 channels and Na(+)/K(+)-ATPase alpha(2)/alpha(3) subunits were highly concentrated in endothelial cell projections and adjacent to myoendothelial gap junctions. Thus, extracellular [Ca(2+)](o) appears to modify K(Ca)3.1 channel activity through a protein kinase A-dependent mechanism independent of changes in endothelial [Ca(2+)](i). The resulting hyperpolarization links to arterial relaxation largely through Na(+)/K(+)-ATPase, possibly reflecting K(+) acting as an EDHF. In contrast, K(Ca)2.3 hyperpolarization appears mainly to affect relaxation through myoendothelial gap junctions. Overall, these data suggest that K(+) and myoendothelial coupling evoke EDHF-mediated relaxation through distinct, definable pathways.
引用
收藏
页码:1247 / 1255
页数:9
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共 30 条
  • [11] Ca2+ and inositol 1,4,5-trisphosphate-mediated signaling across the myoendothelial junction
    Isakson, Brant E.
    Ramos, Susan I.
    Duling, Brian R.
    [J]. CIRCULATION RESEARCH, 2007, 100 (02) : 246 - 254
  • [12] Dihydropyridines inhibit acetylcholine-induced hyperpolarization in cochlear artery via blockade of intermediate-conductance calcium-activated potassium channels
    Jiang, Zhi-Gen
    Shi, Xiao-Rui
    Guan, Bing-Cai
    Zhao, Hui
    Yang, Yu-Qin
    [J]. JOURNAL OF PHARMACOLOGY AND EXPERIMENTAL THERAPEUTICS, 2007, 320 (02) : 544 - 551
  • [13] NIFEDIPINE INHIBITS CALCIUM-ACTIVATED K-TRANSPORT IN HUMAN ERYTHROCYTES
    KAJI, DM
    [J]. AMERICAN JOURNAL OF PHYSIOLOGY, 1990, 259 (02): : C332 - C339
  • [14] Angiotensin II receptor blockade corrects altered expression of gap junctions in vascular endothelial cells from hypertensive rats
    Kansui, Y
    Fujii, K
    Nakamura, K
    Goto, K
    Oniki, H
    Abe, I
    Shibata, Y
    Iida, M
    [J]. AMERICAN JOURNAL OF PHYSIOLOGY-HEART AND CIRCULATORY PHYSIOLOGY, 2004, 287 (01): : H216 - H224
  • [15] KANSUI Y, CELL CALCIUM
  • [16] THE DESHEATHED PERIPHERY OF APLYSIA GIANT-NEURON - FINE-STRUCTURE AND MEASUREMENT OF [CA2+]0 FLUCTUATIONS WITH CALCIUM-SELECTIVE MICROELECTRODES
    KEICHER, E
    BILBAUT, A
    MAGGIO, K
    HERNANDEZNICAISE, ML
    NICAISE, G
    [J]. EUROPEAN JOURNAL OF NEUROSCIENCE, 1991, 3 (01) : 10 - 17
  • [17] Blockade of the intermediate-conductance calcium-activated potassium channel as a new therapeutic strategy for restenosis
    Köhler, R
    Wulff, H
    Eichler, I
    Kneifel, M
    Neumann, D
    Knorr, A
    Grgic, I
    Kämpfe, D
    Si, H
    Wibawa, J
    Real, R
    Borner, K
    Brakemeier, S
    Orzechowski, HD
    Reusch, HP
    Paul, M
    Chandy, KG
    Hoyer, J
    [J]. CIRCULATION, 2003, 108 (09) : 1119 - 1125
  • [18] Evidence for signaling via gap junctions from smooth muscle to endothelial cells in rat mesenteric arteries:: possible implication of a second messenger
    Lamboley, M
    Pittet, P
    Koenigsberg, M
    Sauer, R
    Bény, JL
    Meister, JJ
    [J]. CELL CALCIUM, 2005, 37 (04) : 311 - 320
  • [19] Rapid endothelial cell-selective loading of connexin 40 antibody blocks endothelium-derived hyperpolarizing factor dilation in rat small mesenteric arteries
    Mather, S
    Dora, KA
    Sandow, SL
    Winter, P
    Garland, CJ
    [J]. CIRCULATION RESEARCH, 2005, 97 (04) : 399 - 407
  • [20] Protein kinase A inhibits intermediate conductance Ca2+-activated K+ channels expressed in Xenopus oocytes
    Neylon, CB
    D'Souza, T
    Reinhart, PH
    [J]. PFLUGERS ARCHIV-EUROPEAN JOURNAL OF PHYSIOLOGY, 2004, 448 (06): : 613 - 620