凝胶在心肌l型钙通道肌动蛋白丝调节中的作用。

A S Lader, D J Kwiatkowski, H F Cantiello
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引用次数: 97

摘要

肌动蛋白细胞骨架是调节细胞功能的重要因素。然而,人们对这种超分子结构在心脏发生的膜事件中的调节作用知之甚少。在本报告中,研究了肌动蛋白丝组织对心肌细胞功能的调节,这些调节来自野生型小鼠和遗传缺乏肌动蛋白丝切断蛋白凝胶(Gsn-/-)的小鼠的新生小鼠心肌细胞(NMCM)。采用全细胞电压钳技术测定心脏l型钙通道电流(I(Ca))。在野生型NMCM中加入肌动蛋白丝稳定剂phalloidin使I(Ca)比对照提高了227%。Gsn-/- NMCM的基础I(Ca)比野生型对照高300%。外源性凝胶在细胞内灌注Gsn-/- NMCM后,这种增加完全逆转。此外,细胞松弛素D (CD)对Gsn-/-或phalloidin透析的野生型NMCM的细胞骨架破坏分别使增强的I(Ca)降低了84%和87%。这些数据表明,肌动蛋白丝的稳定,无论是缺乏凝胶或细胞内透析的phalloidin增加I(Ca),而肌动蛋白丝的破坏,CD或Gsn-/- NMCM透析凝胶降低I(Ca)。我们认为心脏l型钙通道的调节受到肌动蛋白丝组织的严格控制。凝胶介导的肌动蛋白丝重排可能导致钙通道失活。
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Role of gelsolin in the actin filament regulation of cardiac L-type calcium channels.

The actin cytoskeleton is an important contributor to the modulation of the cell function. However, little is known about the regulatory role of this supermolecular structure in the membrane events that take place in the heart. In this report, the regulation of cardiac myocyte function by actin filament organization was investigated in neonatal mouse cardiac myocytes (NMCM) from both wild-type mice and mice genetically devoid of the actin filament severing protein gelsolin (Gsn-/-). Cardiac L-type calcium channel currents (I(Ca)) were assessed using the whole cell voltage-clamp technique. Addition of the actin filament stabilizer phalloidin to wild-type NMCM increased I(Ca) by 227% over control conditions. The basal I(Ca) of Gsn-/- NMCM was 300% higher than wild-type controls. This increase was completely reversed by intracellular perfusion of the Gsn-/- NMCM with exogenous gelsolin. Further, cytoskeletal disruption of either Gsn-/- or phalloidin-dialyzed wild-type NMCM with cytochalasin D (CD) decreased the enhanced I(Ca) by 84% and 87%, respectively. The data indicate that actin filament stabilization by either a lack of gelsolin or intracellular dialysis with phalloidin increase I(Ca), whereas actin filament disruption with CD or dialysis of Gsn-/- NMCM with gelsolin decrease I(Ca). We conclude that cardiac L-type calcium channel regulation is tightly controlled by actin filament organization. Actin filament rearrangement mediated by gelsolin may contribute to calcium channel inactivation.

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