Pott Christian, Philipson Kenneth D, Goldhaber Joshua I
Department of Physiology, David Geffen School of Medicine, University of California, Los Angeles, CA 90095-1760, USA.
Circ Res. 2005 Dec 9;97(12):1288-95. doi: 10.1161/01.RES.0000196563.84231.21. Epub 2005 Nov 17.
Cardiac-specific Na+-Ca2+ exchanger (NCX) knockout (KO) mice surprisingly survive into adulthood without compensatory changes in protein expression levels. To determine how cardiac function is maintained in the absence of NCX, we investigated membrane currents, intracellular Ca2+, and action potentials (APs) in whole cell patch-clamped myocytes from wild-type (WT) and NCX knockout mice. There was no difference in resting Ca2+ or sarcoplasmic reticular Ca2+ load between KO and WT. During prolonged caffeine exposure, the decrease of the Ca2+ transient was drastically slowed in KO versus WT myocytes, indicating that no alternative Ca2+-extrusion mechanism is upregulated to compensate for the absence of NCX. Peak L-type Ca2+ current (ICa) was reduced by 62% in KO myocytes compared with WT. Nevertheless, the corresponding Ca2+ transients were similar, implying an increase in the gain of excitation-contraction coupling in KO cells. APs recorded from KO cells repolarized more rapidly than in WT. In WT myocytes, applying a KO AP waveform voltage clamp reduced Ca2+ influx via ICa by 59% compared with WT AP waveform clamps. Again, the corresponding Ca2+ transients remained similar. Our findings indicate that NCX KO myocytes limit Ca2+ influx to &20% of that in WT by reducing ICa and by abbreviating the AP. Contractility is maintained by an increase in the gain of excitation-contraction coupling resulting from both a more rapid repolarization of the AP and an as yet unidentified AP-independent mechanism.
心脏特异性钠钙交换体(NCX)基因敲除(KO)小鼠出人意料地存活至成年期,且蛋白表达水平无代偿性变化。为了确定在没有NCX的情况下心脏功能是如何维持的,我们研究了野生型(WT)和NCX基因敲除小鼠全细胞膜片钳记录的心肌细胞中的膜电流、细胞内钙离子和动作电位(AP)。基因敲除小鼠和野生型小鼠在静息钙离子或肌浆网钙离子负荷方面没有差异。在长时间咖啡因暴露期间,与野生型心肌细胞相比,基因敲除心肌细胞中钙离子瞬变的下降明显减缓,这表明没有上调替代的钙离子外排机制来补偿NCX的缺失。与野生型相比,基因敲除心肌细胞中的L型钙离子电流峰值(ICa)降低了62%。然而,相应的钙离子瞬变相似,这意味着基因敲除细胞中兴奋-收缩偶联增益增加。基因敲除细胞记录的动作电位复极化比野生型更快。在野生型心肌细胞中,与野生型动作电位波形钳相比,施加基因敲除动作电位波形电压钳使通过ICa的钙离子内流减少了59%。同样,相应的钙离子瞬变仍然相似。我们的研究结果表明,NCX基因敲除心肌细胞通过减少ICa和缩短动作电位将钙离子内流限制在野生型的20%。收缩力通过动作电位更快复极化和一种尚未确定的非动作电位依赖机制导致的兴奋-收缩偶联增益增加得以维持。