Endothelial Ca2+-activated K+ channels in normal and impaired EDHF-dilator responses - relevance to cardiovascular pathologies and drug discovery

被引:155
作者
Grgic, Ivica [1 ]
Kaistha, Brajesh P. [1 ]
Hoyer, Joachim [1 ]
Koehler, Ralf [1 ]
机构
[1] Univ Marburg, Dept Internal Med Nephrol, D-35032 Marburg, Germany
关键词
endothelium-derived hyperpolarizing factor; nitric oxide; endothelium; vasodilation; KCa3; 1; KCa2; 3; hypertension; ACTIVATED POTASSIUM CHANNELS; SOLUBLE EPOXIDE HYDROLASE; VASCULAR SMOOTH-MUSCLE; RECEPTOR POTENTIAL CHANNELS; FACTOR-MEDIATED RELAXATION; PORCINE CORONARY-ARTERIES; SMALL MESENTERIC-ARTERIES; NITRIC-OXIDE RELEASE; INTERMEDIATE-CONDUCTANCE; HYPERPOLARIZING FACTOR;
D O I
10.1111/j.1476-5381.2009.00132.x
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
The arterial endothelium critically contributes to blood pressure control by releasing vasodilating autacoids such as nitric oxide, prostacyclin and a third factor or pathway termed 'endothelium-derived hyperpolarizing factor' (EDHF). The nature of EDHF and EDHF-signalling pathways is not fully understood yet. However, endothelial hyperpolarization mediated by the Ca2+-activated K+ channels (K-Ca) has been suggested to play a critical role in initializing EDHF-dilator responses in conduit and resistance-sized arteries of many species including humans. Endothelial K-Ca currents are mediated by the two K-Ca subtypes, intermediate-conductance K-Ca (KCa3.1) (also known as, a.k.a. IKCa) and small-conductance K-Ca type 3 (KCa2.3) (a.k.a. SKCa). In this review, we summarize current knowledge about endothelial KCa3.1 and KCa2.3 channels, their molecular and pharmacological properties and their specific roles in endothelial function and, particularly, in the EDHF-dilator response. In addition we focus on recent experimental evidences derived from KCa3.1- and/or KCa2.3-deficient mice that exhibit severe defects in EDHF signalling and elevated blood pressures, thus highlighting the importance of the KCa3.1/KCa2.3-EDHF-dilator system for blood pressure control. Moreover, we outline differential and overlapping roles of KCa3.1 and KCa2.3 for EDHF signalling as well as for nitric oxide synthesis and discuss recent evidence for a heterogeneous (sub) cellular distribution of KCa3.1 (at endothelial projections towards the smooth muscle) and KCa2.3 (at inter-endothelial borders and caveolae), which may explain their distinct roles for endothelial function. Finally, we summarize the interrelations of altered KCa3.1/KCa2.3 and EDHF system impairments with cardiovascular disease states such as hypertension, diabetes, dyslipidemia and atherosclerosis and discuss the therapeutic potential of KCa3.1/KCa2.3 openers as novel types of blood pressure-lowering drugs. British Journal of Pharmacology (2009) 157, 509-526; doi:10.1111/j.1476-5381.2009.00132.x; published online 19 March 2009 This article is part of a themed section on Endothelium in Pharmacology. For a list of all articles in this section see the end of this paper, or visit: http://www3.interscience.wiley.com/journal/121548564/issueyear?year=2009.
引用
收藏
页码:509 / 526
页数:18
相关论文
共 179 条
[1]   Effects of methyl β-cyclodextrin on EDHF responses in pig and rat arteries; association between SKCa channels and caveolin-rich domains [J].
Absi, M. ;
Burnham, M. P. ;
Weston, A. H. ;
Harno, E. ;
Rogers, M. ;
Edwards, G. .
BRITISH JOURNAL OF PHARMACOLOGY, 2007, 151 (03) :332-340
[2]   Angiotensin II up-regulates soluble epoxide hydrolase in vascular endothelium in vitro and in vivo [J].
Ai, Ding ;
Fu, Yi ;
Guo, Deliang ;
Tanaka, Hiromasa ;
Wang, Nanping ;
Tang, Chaoshu ;
Hammock, Bruce D. ;
Shyy, John Y. -J. ;
Zhu, Yi .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2007, 104 (21) :9018-9023
[3]   Guide to receptors and channels (GRAC), 3rd edition [J].
Alexander, Stephen P. H. ;
Mathie, Alistair ;
Peters, John A. .
BRITISH JOURNAL OF PHARMACOLOGY, 2008, 153 :S1-S209
[4]   Diabetes impairs endothelium-dependent relaxation of human penile vascular tissues mediated by NO and EDHF [J].
Angulo, J ;
Cuevas, P ;
Fernández, A ;
Gabancho, S ;
Allona, A ;
Martín-Morales, A ;
Moncada, I ;
Videla, S ;
de Tejada, IS .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2003, 312 (04) :1202-1208
[5]   A COMPONENT OF CALCIUM-ACTIVATED POTASSIUM CHANNELS ENCODED BY THE DROSOPHILA-SLO LOCUS [J].
ATKINSON, NS ;
ROBERTSON, GA ;
GANETZKY, B .
SCIENCE, 1991, 253 (5019) :551-555
[6]   The small molecule NS11021 is a potent and specific activator of Ca2+-activated big-conductance K+ channels [J].
Bentzen, Bo Hjorth ;
Nardi, Antonio ;
Calloe, Kirstine ;
Madsen, Lars Siim ;
Olesen, Soren-Peter ;
Grunnet, Morten .
MOLECULAR PHARMACOLOGY, 2007, 72 (04) :1033-1044
[7]   Role of myoendothelial communication on arterial vasomotion [J].
Beny, Jean-Louis ;
Koenigsberger, Michele ;
Sauser, Roger .
AMERICAN JOURNAL OF PHYSIOLOGY-HEART AND CIRCULATORY PHYSIOLOGY, 2006, 291 (05) :H2036-H2038
[8]   NITRIC-OXIDE DIRECTLY ACTIVATES CALCIUM-DEPENDENT POTASSIUM CHANNELS IN VASCULAR SMOOTH-MUSCLE [J].
BOLOTINA, VM ;
NAJIBI, S ;
PALACINO, JJ ;
PAGANO, PJ ;
COHEN, RA .
NATURE, 1994, 368 (6474) :850-853
[9]   Respiration and parturition affected by conditional overexpression of the Ca2+-activated K+ channel subunit, SK3 [J].
Bond, CT ;
Sprengel, R ;
Bissonnette, JM ;
Kaufmann, WA ;
Pribnow, D ;
Neelands, T ;
Storck, T ;
Baetscher, M ;
Jerecic, J ;
Maylie, J ;
Knaus, HG ;
Seeburg, PH ;
Adelman, JP .
SCIENCE, 2000, 289 (5486) :1942-1946
[10]   Shear stress-induced up-regulation of the intermediate-conductance Ca2+-activated K+ channel in human endothelium [J].
Brakemeier, S ;
Kersten, A ;
Eichler, I ;
Grgic, I ;
Zakrzewicz, A ;
Hopp, H ;
Köhler, R ;
Hoyer, J .
CARDIOVASCULAR RESEARCH, 2003, 60 (03) :488-496