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首页> 外文期刊>The Journal of general physiology >Kinetics and stoichiometry of coupled Na efflux and Ca influx (Na/Ca exchange) in barnacle muscle cells.
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Kinetics and stoichiometry of coupled Na efflux and Ca influx (Na/Ca exchange) in barnacle muscle cells.

机译:藤壶肌细胞中钠流出和钙流入(钠/钙交换)耦合的动力学和化学计量。

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Coupled Na+ exit/Ca2+ entry (Na/Ca exchange operating in the Ca2+ influx mode) was studied in giant barnacle muscle cells by measuring 22Na+ efflux and 45Ca2+ influx in internally perfused, ATP-fueled cells in which the Na+ pump was poisoned by 0.1 mM ouabain. Internal free Ca2+, [Ca2+]i, was controlled with a Ca-EGTA buffering system containing 8 mM EGTA and varying amounts of Ca2+. Ca2+ sequestration in internal stores was inhibited with caffeine and a mitochondrial uncoupler (FCCP). To maximize conditions for Ca2+ influx mode Na/Ca exchange, and to eliminate tracer Na/Na exchange, all of the external Na+ in the standard Na+ sea water (NaSW) was replaced by Tris or Li+ (Tris-SW or LiSW, respectively). In both Na-free solutions an external Ca2+ (Cao)-dependent Na+ efflux was observed when [Ca2+]i was increased above 10(-8) M; this efflux was half-maximally activated by [Ca2+]i = 0.3 microM (LiSW) to 0.7 microM (Tris-SW). The Cao-dependent Na+ efflux was half-maximally activated by [Ca2+]o = 2.0 mM in LiSW and 7.2 mM in Tris-SW; at saturating [Ca2+]o, [Ca2+]i, and [Na+]i the maximal (calculated) Cao-dependent Na+ efflux was approximately 75 pmol#cm2.s. This efflux was inhibited by external Na+ and La3+ with IC50's of approximately 125 and 0.4 mM, respectively. A Nai-dependent Ca2+ influx was also observed in Tris-SW. This Ca2+ influx also required [Ca2+]i greater than 10(-8) M. Internal Ca2+ activated a Nai-independent Ca2+ influx from LiSW (tracer Ca/Ca exchange), but in Tris-SW virtually all of the Cai-activated Ca2+ influx was Nai-dependent (Na/Ca exchange). Half-maximal activation was observed with [Na+]i = 30 mM. The fact that internal Ca2+ activates both a Cao-dependent Na+ efflux and a Nai-dependent Ca2+ influx in Tris-SW implies that these two fluxes are coupled; the activating (intracellular) Ca2+ does not appear to be transported by the exchanger. The maximal (calculated) Nai-dependent Ca2+ influx was -25 pmol/cm2.s. At various [Na+]i between 6 and 106 mM, the ratio of the Cao-dependent Na+ efflux to the Nai-dependent Ca2+ influx was 2.8-3.2:1 (mean = 3.1:1); this directly demonstrates that the stoichiometry (coupling ratio) of the Na/Ca exchange is 3:1. These observations on the coupling ratio and kinetics of the Na/Ca exchanger imply that in resting cells the exchanger turns over at a low rate because of the low [Ca2+]i; much of the Ca2+ extrusion at rest (approximately 1 pmol/cm2.s) is thus mediated by an ATP-driven Ca2+ pump.(ABSTRACT TRUNCATED AT 400 WORDS)
机译:通过测量内部灌流的ATP燃料电池(其中Na +泵被0.1 mM中毒)中的22Na +流出和45Ca2 +流入,研究了巨藤壶肌细胞中Na +出口/ Ca2 +耦合进入(Na / Ca交换以Ca2 +流入模式运行)的情况。哇巴因内部的游离Ca2 +,[Ca2 +] i,是由包含8mM EGTA和不同量的Ca2 +的Ca-EGTA缓冲系统控制的。咖啡因和线粒体解偶联剂(FCCP)抑制内部存储中的Ca2 +隔离。为了最大化Ca2 +流入模式Na / Ca交换的条件并消除示踪剂Na / Na交换,标准Na +海水(NaSW)中的所有外部Na +被Tris或Li +(分别为Tris-SW或LiSW)代替。 。当[Ca2 +] i增加到10(-8)M以上时,在两种无钠溶液中均观察到外部Ca2 +(Cao)依赖性Na +流出;通过[Ca2 +] i = 0.3 microM(LiSW)到0.7 microM(Tris-SW),最大程度地激活了这种流出。依赖Cao的Na +外排在LiSW中的[Ca2 +] o = 2.0 mM,而在Tris-SW中的7.2 mM被最大程度地激活。当饱和[Ca2 +] o,[Ca2 +] i和[Na +] i时,最大(计算)的依赖于Cao的Na +流出量约为75 pmol#cm2.s。外部Na +和La3 +抑制了这种流出,IC50分别约为125和0.4 mM。在Tris-SW中也观察到Nai依赖性Ca2 +流入。此Ca2 +涌入还需要大于10(-8)M的[Ca2 +] i。内部Ca2 +激活了来自LiSW的Nai独立Ca2 +涌入(示踪剂Ca / Ca交换),但在Tris-SW中,实际上所有的Cai激活的Ca2 +涌入依赖于Nai(Na / Ca交换)。在[Na +] i = 30 mM时观察到半数最大活化。内部Ca2 +激活Tris-SW中依赖Cao的Na +流出和依赖Nai的Ca2 +流入的事实表明这两个通量是耦合的。活化的(细胞内)Ca2 +似乎没有被交换器转运。最大(计算)的Nai依赖性Ca2 +流入量为-25 pmol / cm2.s。在6至106 mM之间的各种[Na +] i下,依赖Cao的Na +流出与依赖Nai的Ca2 +流入的比率为2.8-3.2:1(平均值= 3.1:1);这直接表明Na / Ca交换的化学计量比(耦合比)为3:1。对Na / Ca交换子的耦合比和动力学的这些观察结果表明,由于[Ca2 +] i低,交换子在静止的细胞中以较低的速率翻转。因此,大部分由静止的Ca2 +挤出(约1 pmol / cm2.s)是由ATP驱动的Ca2 +泵介导的(摘要截断了400字)。

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