pH对Ca +电流的影响及其对心室肌细胞电和Ca +信号传导的控制。

Noriko Saegusa, Emma Moorhouse, Richard D Vaughan-Jones, Kenneth W Spitzer
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引用次数: 0

摘要

心肌细胞中H(+)离子对L型Ca(2+)电流(I(Ca,L))的调节是有争议的,报道了广泛不同的反应。在兔和豚鼠心室肌细胞中测量细胞内Ca(2+)(Ca(2+)(I)或pH(I)(荧光显微镜)时,研究了I(Ca,L)的pH敏感性(全细胞电压钳)。选择性降低细胞外或细胞内pH(pH(o) 6.5和pH(i) 6.7)对i (Ca,L)门控有相反的影响,使稳态激活和失活曲线沿电压轴分别向右和向左移动。在低pH(o)下,这降低了I(Ca,L),而在低pH(I)下,在钳位电位负至0 mV时,它增加了I(Ca,L),尽管在更正的电位下电流减少。当Ca(2+)(i)被BAPTA缓冲时,低pH(i)的刺激作用更加明显,基本没有抑制作用。我们得出的结论是,细胞外H(+)离子抑制细胞内H(+)离子,而细胞内H(+)离子可以刺激I(Ca,L)。低pH(i)和pH(o)对i (Ca,L)的影响是相加的,当适当地结合在一起时趋于抵消。在抑制钙调蛋白激酶II(与KN-93)后,它们持续存在。效果与H(+)离子在肌膜上筛选固定负电荷一致,H(+)(o)和Ca(2+)(i)阻塞了额外的通道。动作电位持续时间(APD)也具有较强的H(+)敏感性,低pH值(o)使APD缩短,低pH值(i)使APD延长,这主要是由H(+)诱导的Ca(2+)通过l型Ca(2+)通道进入后期的变化引起的。ph敏感通道门控的动力学分析与全细胞建模相结合,成功地预测了APD的变化,以及许多伴随的Ca(2+)信号的变化。我们得出结论,i (Ca,L)的pH(i)-与pH(o)控制将对心脏酸碱干扰期间的电和Ca(2+)依赖性信号传导产生重大影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Influence of pH on Ca²⁺ current and its control of electrical and Ca²⁺ signaling in ventricular myocytes.

Influence of pH on Ca²⁺ current and its control of electrical and Ca²⁺ signaling in ventricular myocytes.

Influence of pH on Ca²⁺ current and its control of electrical and Ca²⁺ signaling in ventricular myocytes.

Influence of pH on Ca²⁺ current and its control of electrical and Ca²⁺ signaling in ventricular myocytes.

Modulation of L-type Ca(2+) current (I(Ca,L)) by H(+) ions in cardiac myocytes is controversial, with widely discrepant responses reported. The pH sensitivity of I(Ca,L) was investigated (whole cell voltage clamp) while measuring intracellular Ca(2+) (Ca(2+)(i)) or pH(i) (epifluorescence microscopy) in rabbit and guinea pig ventricular myocytes. Selectively reducing extracellular or intracellular pH (pH(o) 6.5 and pH(i) 6.7) had opposite effects on I(Ca,L) gating, shifting the steady-state activation and inactivation curves to the right and left, respectively, along the voltage axis. At low pH(o), this decreased I(Ca,L), whereas at low pH(i), it increased I(Ca,L) at clamp potentials negative to 0 mV, although the current decreased at more positive potentials. When Ca(2+)(i) was buffered with BAPTA, the stimulatory effect of low pH(i) was even more marked, with essentially no inhibition. We conclude that extracellular H(+) ions inhibit whereas intracellular H(+) ions can stimulate I(Ca,L). Low pH(i) and pH(o) effects on I(Ca,L) were additive, tending to cancel when appropriately combined. They persisted after inhibition of calmodulin kinase II (with KN-93). Effects are consistent with H(+) ion screening of fixed negative charge at the sarcolemma, with additional channel block by H(+)(o) and Ca(2+)(i). Action potential duration (APD) was also strongly H(+) sensitive, being shortened by low pH(o), but lengthened by low pH(i), caused mainly by H(+)-induced changes in late Ca(2+) entry through the L-type Ca(2+) channel. Kinetic analyses of pH-sensitive channel gating, when combined with whole cell modeling, successfully predicted the APD changes, plus many of the accompanying changes in Ca(2+) signaling. We conclude that the pH(i)-versus-pH(o) control of I(Ca,L) will exert a major influence on electrical and Ca(2+)-dependent signaling during acid-base disturbances in the heart.

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