动作电位延长和去极化后不是由于NOS3敲除心室肌细胞钾电流的变化。

Journal of signal transduction Pub Date : 2012-01-01 Epub Date: 2012-08-28 DOI:10.1155/2012/645721
Honglan Wang, Ingrid M Bonilla, Xin Huang, Quanhua He, Mark J Kohr, Cynthia A Carnes, Mark T Ziolo
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引用次数: 10

摘要

内皮型一氧化氮合酶(NOS3(-/-))缺乏的心室肌细胞在β-肾上腺素能(β-AR)刺激时表现出动作电位(AP)持续时间延长和自发活动增强(早期和延迟后去极化)。研究表明,一氧化氮能够调节多种K(+)通道。我们的目的是检查NOS3(-/-)肌细胞是否改变了K(+)电流。在NOS3(-/-)和野生型(WT)肌细胞中测量APs、瞬时外向(I(to))、持续(I(Ksus))和内向整流(I(K1)) K(+)电流。在β-AR刺激期间,与WT肌细胞相比,NOS3的AP持续时间(以90%复极- apd(90)测量)延长(-/-)。然而,我们没有观察到WT和NOS3(-/-)肌细胞之间I(to)、I(Ksus)或I(K1)的差异。我们之前的研究表明,在β-AR刺激下,NOS3(-/-)肌细胞通过l型Ca(2+)通道有更大的Ca(2+)内流。因此,我们测量了β- ar刺激的SR Ca(2+)负荷,发现NOS3(-/-)比WT肌细胞有更大的增加。因此,我们的数据表明NOS3(-/-)肌细胞的AP延长不是由于I(to)、I(Ksus)或I(K1)的变化。此外,NOS3(-/-)肌细胞自发活性的增加可能是由于SR Ca(2+)负荷的增加。这可能对心衰患者有重要意义,心衰患者心律失常增加,NOS3表达减少。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Prolonged Action Potential and After depolarizations Are Not due to Changes in Potassium Currents in NOS3 Knockout Ventricular Myocytes.

Prolonged Action Potential and After depolarizations Are Not due to Changes in Potassium Currents in NOS3 Knockout Ventricular Myocytes.

Prolonged Action Potential and After depolarizations Are Not due to Changes in Potassium Currents in NOS3 Knockout Ventricular Myocytes.

Prolonged Action Potential and After depolarizations Are Not due to Changes in Potassium Currents in NOS3 Knockout Ventricular Myocytes.

Ventricular myocytes deficient in endothelial nitric oxide synthase (NOS3(-/-)) exhibit prolonged action potential (AP) duration and enhanced spontaneous activity (early and delayed afterdepolarizations) during β-adrenergic (β-AR) stimulation. Studies have shown that nitric oxide is able to regulate various K(+) channels. Our objective was to examine if NOS3(-/-) myocytes had altered K(+) currents. APs, transient outward (I(to)), sustained (I(Ksus)), and inward rectifier (I(K1)) K(+) currents were measured in NOS3(-/-) and wild-type (WT) myocytes. During β-AR stimulation, AP duration (measured as 90% repolarization-APD(90)) was prolonged in NOS3(-/-) compared to WT myocytes. Nevertheless, we did not observe differences in I(to), I(Ksus), or I(K1) between WT and NOS3(-/-) myocytes. Our previous work showed that NOS3(-/-) myocytes had a greater Ca(2+) influx via L-type Ca(2+) channels with β-AR stimulation. Thus, we measured β-AR-stimulated SR Ca(2+) load and found a greater increase in NOS3(-/-) versus WT myocytes. Hence, our data suggest that the prolonged AP in NOS3(-/-) myocytes is not due to changes in I(to), I(Ksus), or I(K1). Furthermore, the increase in spontaneous activity in NOS3(-/-) myocytes may be due to a greater increase in SR Ca(2+) load. This may have important implications for heart failure patients, where arrhythmias are increased and NOS3 expression is decreased.

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