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Electrophysiological and molecular identification of voltage-gated sodium channels in murine vascular myocytes.

机译:小鼠血管心肌细胞中电压门控钠通道的电生理和分子鉴定。

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A voltage-gated Na+ current was characterised in freshly dissociated mouse portal vein (PV) smooth muscle myocytes. The current was found superimposed upon the relatively slow L-type Ca2+ current and was resistant to conventional Ca2+ channel blockers but was abolished by external Na+ replacement and tetrodotoxin (TTX, 1 microM). The molecular identity of the channel responsible for this conductance was determined by RT-PCR where only the transcripts for Na+ channel genes SCN7a, 8a and 9a were detected. The presence of the protein counterparts to the SCN8a and 9a genes (NaV1.6 and NaV1.7, respectively) on the individual smooth muscle myocytes were confirmed in immunocytochemistry, which showed diffuse staining around a predominantly plasmalemmal location. TTX inhibited the action potential in individual myocytes generated in the current clamp mode but isometric tissue tension experiments revealed that TTX (1 and 5 microM) had no effect on the inherent mouse PV rhythmicity. However, the Na+ channel opener veratridine (10 and 50 microM) significantly increased the length of contraction and the interval between contractions. This effect was not influenced by pre-incubation with atropine, prazosin and propranolol, but was reversed by TTX (1 microM) and completely abolished by nicardipine (1 microM). Furthermore, preincubation with the reverse-mode Na+-Ca2+ exchange blocker KB-R7943 (10 microM) also inhibited the veratridine response. We have established for the first time the molecular identity of the voltage-gated Na+ channel in freshly dispersed smooth muscle cells and have shown that these channels can modulate contractility through a novel mechanism of action possibly involving reverse mode Na+-Ca2+ exchange.
机译:在刚分离的小鼠门静脉(PV)平滑肌肌细胞中表征了电压门控的Na +电流。发现该电流叠加在相对较慢的L型Ca2 +电流上,并且对常规的Ca2 +通道阻滞剂具有抗性,但由于外部Na +替代和河豚毒素(TTX,1 microM)而被取消。通过RT-PCR确定负责此电导的通道的分子身份,其中仅检测到Na +通道基因SCN7a,8a和9a的转录本。在免疫细胞化学中证实了在单个平滑肌心肌细胞上存在与SCN8a和9a基因(分别为NaV1.6和NaV1.7)相对应的蛋白质,该蛋白质在主要浆膜位置周围弥漫性染色。 TTX抑制了电流钳模式下产生的单个肌细胞的动作电位,但等轴测组织张力实验表明,TTX(1和5 microM)对固有的小鼠PV节律没有影响。但是,Na +通道开放剂藜芦定(10和50 microM)显着增加了收缩的长度和收缩间隔。这种作用不受阿托品,哌唑嗪和普萘洛尔预孵育的影响,但被TTX(1 microM)逆转,被尼卡地平(1 microM)完全消除。此外,与反向模式的Na + -Ca2 +交换阻滞剂KB-R7943(10 microM)一起预孵育也抑制了维拉替丁反应。我们首次建立了电压门控Na +通道在新鲜分散的平滑肌细胞中的分子同一性,并表明这些通道可以通过一种可能涉及逆向Na + -Ca2 +交换的新作用机制来调节收缩力。

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