Sodium-hydrogen exchange and platelet function

被引:47
|
作者
Rosskopf, D [1 ]
机构
[1] Unv Klinikum Essen, Inst Pharmakol, D-45122 Essen, Germany
关键词
platelets; sodium-hydrogen exchange; signal transduction; volume control; hypertension;
D O I
10.1023/A:1008986329267
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
On stimulation of platelets with agonists, for example, thrombin, a rapid rise in intracellular pH is observed. This alkalinization is mediated by an increase in transport activity of the Na+/H+ exchanger isoform NHE1. In addition to this Na+/H+ exchange mechanism, platelets express bicarbonate/chloride exchangers, which also contribute to pH(i) homeostasis. The main functions of NHE1 in platelets include pH(i) control, volume regulation, and participation in cell signaling. The isoform NHE1 is highly sensitive toward inhibition by EIPA, Hoe694, and Hoe642. The regulation of NHE1 activity is complex and is not completely understood. It includes the MAP kinase cascade, the Ca/calmodulin system, several heterotrimeric G proteins (G alpha 12, G alpha 13, G alpha q, and G alpha i), small G proteins (ras, cdc42, rhoA), and downstream kinases (e.g., p160ROCK). Volume challenges stimulate tyrosine phosphorylation of cytoplasmic proteins, which ultimately activate NHE1. Thrombin, thromboxane, platelet-activating factor, angiotensin II, endothelin, phorbol ester, and Ca2+ ionophors stimulate NHE1 activity in platelets. Blockade of platelet NHE1 can inhibit platelet activation. With the development of highly specific NHE1 inhibitors, detailed investigation of the relationships between NHE1 activity and platelet activation now becomes feasible.
引用
收藏
页码:15 / 23
页数:9
相关论文
共 50 条
  • [21] POTENTIAL OF SELECTIVE SODIUM-HYDROGEN EXCHANGE INHIBITORS IN CARDIOVASCULAR THERAPY
    SCHOLZ, W
    ALBUS, U
    CARDIOVASCULAR RESEARCH, 1995, 29 (02) : 184 - 188
  • [22] PLATELET SODIUM-HYDROGEN ANTIPORT IN OBESE AND DIABETIC BLACK-WOMEN
    ZENTAY, Z
    REDDI, A
    RAGUWANSHI, M
    GARDNER, JP
    CHO, JH
    LASKER, N
    DASMAHAPATRA, A
    AVIV, A
    HYPERTENSION, 1992, 20 (04) : 549 - 554
  • [23] Increased platelet sodium-hydrogen exchanger activity in patients with variant angina
    Lanza, GA
    De Candia, E
    Romagnoli, E
    Messano, L
    Sestito, A
    Landolfi, R
    Crea, F
    Maseri, A
    HEART, 2003, 89 (08) : 935 - 936
  • [24] Sodium-hydrogen exchange inhibition preserves ventricular function after ventricular fibrillation in the intact swine heart
    Rabkin, DG
    Cabreriza, SE
    LaCorte, JC
    Weinberg, AD
    Çoku, L
    Walsh, R
    Mosca, R
    Spotnitz, HM
    JOURNAL OF THORACIC AND CARDIOVASCULAR SURGERY, 2003, 125 (06): : 1499 - 1509
  • [25] Mineralocorticoid action and sodium-hydrogen exchange: Studies in experimental cardiac fibrosis
    Young, M
    Funder, J
    ENDOCRINOLOGY, 2003, 144 (09) : 3848 - 3851
  • [26] SODIUM-HYDROGEN EXCHANGE SYSTEM IN LLC-PK1 EPITHELIUM
    MORAN, A
    AMERICAN JOURNAL OF PHYSIOLOGY, 1987, 252 (01): : C63 - C67
  • [27] THE KINETICS OF SODIUM-HYDROGEN EXCHANGE ON A MONOFUNCTIONAL CATION EXCHANGE RESIN CONTAINING CARBOXYL GROUPS
    CONWAY, DE
    GREEN, JHS
    REICHENBERG, D
    TRANSACTIONS OF THE FARADAY SOCIETY, 1954, 50 (05): : 511 - 520
  • [28] Sodium-hydrogen exchange in human platelets exposed to weak acid: comparison between measurements of platelet swelling and cytoplasmic sodium ion concentration
    Stratton, PD
    Chowienczyk, PJ
    Ritter, JM
    PLATELETS, 2000, 11 (07) : 401 - 405
  • [29] Sodium-lithium countertransport, sodium-hydrogen exchange and membrane microviscosity in patients with hyperlipidaemia
    MacLeod, MJ
    Lee, WK
    Devlin, AM
    Caslake, M
    Anderson, NH
    Packard, CJ
    Dominiczak, MH
    Reid, JL
    Dominiczak, AF
    CLINICAL SCIENCE, 1997, 92 (03) : 237 - 246
  • [30] Sodium-hydrogen exchanger inhibition preserves endothelial cell function
    Gumina, RJ
    Beier, N
    Schelling, P
    Gross, GJ
    CIRCULATION, 1999, 100 (18) : 831 - 831