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首页> 外文期刊>The Journal of general physiology >Allosteric Regulation of Na/Ca Exchange Current by Cytosolic Ca in Intact Cardiac Myocytes
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Allosteric Regulation of Na/Ca Exchange Current by Cytosolic Ca in Intact Cardiac Myocytes

机译:完整心肌细胞中胞浆钙对钠/钙交换电流的变构调节

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The cardiac sarcolemmal Na-Ca exchanger (NCX) is allosterically regulated by [Ca]i such that when [Ca]i is low, NCX current (INCX) deactivates. In this study, we used membrane potential (Em) and INCX to control Ca entry into and Ca efflux from intact cardiac myocytes to investigate whether this allosteric regulation (Ca activation) occurs with [Ca]i in the physiological range. In the absence of Ca activation, the electrochemical effect of increasing [Ca]i would be to increase inward INCX (Ca efflux) and to decrease outward INCX. On the other hand, Ca activation would increase INCX in both directions. Thus, we attributed [Ca]i-dependent increases in outward INCX to allosteric regulation. Ca activation of INCX was observed in ferret myocytes but not in wild-type mouse myocytes, suggesting that Ca regulation of NCX may be species dependent. We also studied transgenic mouse myocytes overexpressing either normal canine NCX or this same canine NCX lacking Ca regulation (Δ680–685). Animals with the normal canine NCX transgene showed Ca activation, whereas animals with the mutant transgene did not, confirming the role of this region in the process. In native ferret cells and in mice with expressed canine NCX, allosteric regulation by Ca occurs under physiological conditions (KmCaAct = 125 ± 16 nM SEM ≈ resting [Ca]i). This, along with the observation that no delay was observed between measured [Ca]i and activation of INCX under our conditions, suggests that beat to beat changes in NCX function can occur in vivo. These changes in the INCX activation state may influence SR Ca load and resting [Ca]i, helping to fine tune Ca influx and efflux from cells under both normal and pathophysiological conditions. Our failure to observe Ca activation in mouse myocytes may be due to either the extent of Ca regulation or to a difference in KmCaAct from other species. Model predictions for Ca activation, on which our estimates of KmCaAct are based, confirm that Ca activation strongly influences outward INCX, explaining why it increases rather than declines with increasing [Ca]i.
机译:心脏肌膜Na-Ca交换子(NCX)由[Ca] i变构调节,使得当[Ca] i低时,NCX电流(INCX)会失活。在这项研究中,我们使用膜电位(Em)和INCX来控制Ca进入完整的心肌细胞并从完整的心肌细胞中流出Ca,以调查这种变构调节(Ca激活)是否在生理范围内发生[Ca] i。在不存在Ca活化的情况下,增加Ca 1的电化学作用将是增加向内的INCX(Ca外排)并减少向外的INCX。另一方面,Ca激活会在两个方向上增加INCX。因此,我们将向外的INCX中[Ca] i依赖性增加归因于变构调节。在雪貂肌细胞中观察到INCX的Ca活化,而在野生型小鼠肌细胞中未观察到CaX的活化,这表明NCX的Ca调节可能是物种依赖性的。我们还研究了过表达正常犬NCX或缺乏Ca调节(Δ680–685)的同一犬NCX的转基因小鼠心肌细胞。具有正常犬NCX转基因的动物显示Ca激活,而具有突变转基因的动物则没有Ca激活,证实了该区域在此过程中的作用。在天然雪貂细胞和表达犬NCX的小鼠中,Ca的变构调节是在生理条件下发生的(KmCaAct = 125±16 nM SEM≈静止[Ca] i)。这与观察到在我们的条件下在所测量的Ca 1和INCX的活化之间未观察到延迟之间的观察一起表明,NCX功能的逐跳变化可以在体内发生。 INCX激活状态的这些变化可能会影响SR Ca负荷和静息Cai,从而有助于微调正常和病理生理条件下细胞的Ca流入和流出。我们未能观察到小鼠心肌细胞中Ca的活化可能是由于Ca调节程度或与其他物种的KmCaAct不同。我们对KmCaAct的估计所基于的Ca活化模型预测证实了Ca活化对向外的INCX有强烈影响,解释了CaI随Cai增加而增加而不是减少的原因。

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