Na+-dependent release of Mg2+ from an intracellular pool in rat sublingual mucous acini

被引:22
作者
Zhang, GH
Melvin, JE
机构
[1] UNIV ROCHESTER, DEPT DENT RES, ROCHESTER, NY 14642 USA
[2] UNIV ROCHESTER, DEPT NEUROBIOL & ANAT, ROCHESTER, NY 14642 USA
关键词
D O I
10.1074/jbc.271.46.29067
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Muscarinic stimulation induces release of Mg2+ from an intracellular pool in rat sublingual mucous acini (Zhang, G. H., and Melvin, J. E. (1992) J. Biol. Chem. 267, 20721-20727). In the present study we examined the interdependence of Mg2+ mobilization on intracellular Na+ and Ca2+ by monitoring the intracellular free concentrations of Na+ ([Na+](i)), Mg2+ ([Mg2+](i)), and Ca2+ ([Ca2+](i)) using ion-sensitive fluorescent indicators. Gramicidin increased the intracellular concentrations of all three ions. Comparable to agonist-stimulated mobilization of Mg2+, the gramicidin-induced [Mg2+](i) increase was independent of extracellular Mg2+ indicating release of Mg2+ from an intracellular pool. Clamping the [Ca2+](i) near 30 nM with the Ca2+-selective chelator BAPTA failed to alter the [Na+](i) or [Mg2+](i) increases generated by gramicidin. In contrast, depletion of intracellular Na+ markedly suppressed the muscarinic-stimulated [Mg2+](i) increase, whereas the [Ca2+](i) increase was similar to that seen in physiological extracellular Na+. These results revealed that intracellular Mg2+ mobilization did not directly relate to the [Ca2+](i), but required an increase in [Na+](i). Consistent with this hypothesis, increasing [Na+](i) by activating Na+ influx via the Na+/H+ exchanger also increased the [Mg2+]i(.) The Na+/Mg2+ exchange inhibitor quinidine suppressed both the gramicidin- and muscarinic-induced discharge of internal Mg2+. These results suggest that release of Mg2+ from an intracellular pool is mediated by a Na+ dependent Mg2+ transport mechanism in salivary acinar cells.
引用
收藏
页码:29067 / 29072
页数:6
相关论文
共 28 条
[1]   BIOLOGICALLY USEFUL CHELATORS THAT TAKE UP CA-2+ UPON ILLUMINATION [J].
ADAMS, SR ;
KAO, JPY ;
TSIEN, RY .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1989, 111 (20) :7957-7968
[2]  
BEYENBACH KW, 1990, MAGNESIUM TRACE ELEM, V9, P233
[3]  
CORKEY BE, 1986, J BIOL CHEM, V261, P2567
[4]   INTRACELLULAR MG2+ AND MAGNESIUM DEPLETION IN ISOLATED RENAL THICK ASCENDING LIMB CELLS [J].
DAI, LJ ;
QUAMME, GA .
JOURNAL OF CLINICAL INVESTIGATION, 1991, 88 (04) :1255-1264
[5]   MAGNESIUM AND ATP DEPENDENCE OF K-CL COTRANSPORT IN LOW K+ SHEEP RED-BLOOD-CELLS [J].
DELPIRE, E ;
LAUF, PK .
JOURNAL OF PHYSIOLOGY-LONDON, 1991, 441 :219-231
[6]   AN NA+-STIMULATED MG2+-TRANSPORT SYSTEM IN HUMAN RED-BLOOD-CELLS [J].
FERAY, JC ;
GARAY, R .
BIOCHIMICA ET BIOPHYSICA ACTA, 1986, 856 (01) :76-84
[7]   MAGNESIUM TRANSPORT IN FERRET RED-CELLS [J].
FLATMAN, PW ;
SMITH, LM .
JOURNAL OF PHYSIOLOGY-LONDON, 1990, 431 :11-25
[8]   THE EFFECTS OF MAGNESIUM ON POTASSIUM-TRANSPORT IN FERRET RED-CELLS [J].
FLATMAN, PW .
JOURNAL OF PHYSIOLOGY-LONDON, 1988, 397 :471-487
[9]   MECHANISMS OF MAGNESIUM TRANSPORT [J].
FLATMAN, PW .
ANNUAL REVIEW OF PHYSIOLOGY, 1991, 53 :259-271
[10]  
GRUBBS RD, 1984, J BIOL CHEM, V259, P2184