[Analysis of the Divalent Cation Blocking in Ion Channels by Crystal Structure and Molecular Dynamics Simulations].

IF 0.3 4区 医学 Q4 PHARMACOLOGY & PHARMACY Yakugaku zasshi : Journal of the Pharmaceutical Society of Japan Pub Date : 2024-01-01 DOI:10.1248/yakushi.23-00178-3
Katsumasa Irie
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Abstract

Neural activity generates essential responses, such as thinking, memory formation, and muscle contraction. It is controlled by the well-coordinated activity of various cation-selective channels of the cell membrane. The divalent cation block plays an essential role in various tetrameric ion channels. For example, N-methyl-D-aspartic acid receptors, which are tetrameric ion channels involved in memory formation, are inhibited by magnesium ions. Divalent cations are thought to bind in the ion pathway of the ion channel and as a consequence block the channel current, however, direct observation of such a block has not been reported yet. As a consequence, the behavior of these blocking divalent cations remains poorly understood. NavAb, a similar tetrameric sodium channel cloned from Arcobacter butzleri, is one of the most structurally analyzed tetrameric channels that is not inhibited by divalent cations. In this study, we elucidated the molecular mechanism of the divalent cation block by reproducing the divalent cation block in NavAb. The X-ray crystal structure of divalent-cation-block mutants show electron density in the ion transmission pathway of the divalent cation blocked mutants, indicating that the mutations increasing the hydrophilicity of the inner vestibule of the pore domain enable a divalent cation to stack into the ion pathway. In molecular dynamics simulations, the stacked calcium ion repels the sodium ions near the channel lumen's entrance at the selective filter's bottom. These results suggest the primary process of the divalent cation block mechanism in tetrameric cation channels and suggest a process of functional acquisition in ion channel evolution.

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[通过晶体结构和分子动力学模拟分析离子通道中的二价阳离子阻滞]。
神经活动产生基本反应,如思考、记忆形成和肌肉收缩。神经活动由细胞膜上各种阳离子选择性通道的协调活动控制。二价阳离子阻滞在各种四聚体离子通道中发挥着重要作用。例如,参与记忆形成的四聚体离子通道 N-甲基-D-天冬氨酸受体就受到镁离子的抑制。二价阳离子被认为会在离子通道的离子通路中结合,从而阻断通道电流,但尚未有直接观察到这种阻断的报道。因此,人们对这些阻塞性二价阳离子的行为仍然知之甚少。NavAb 是一种从 Arcobacter butzleri 克隆的类似四聚体钠通道,是结构分析最多的不受二价阳离子抑制的四聚体通道之一。在这项研究中,我们通过在 NavAb 中重现二价阳离子阻滞,阐明了二价阳离子阻滞的分子机制。二价阳离子阻滞突变体的 X 射线晶体结构显示,二价阳离子阻滞突变体的离子传输通路中存在电子密度,表明增加孔域内前庭亲水性的突变能够使二价阳离子叠加进入离子通路。在分子动力学模拟中,堆积的钙离子在选择性过滤器底部通道腔入口附近排斥钠离子。这些结果表明了四聚体阳离子通道中二价阳离子阻断机制的主要过程,并提示了离子通道进化过程中的功能获得过程。
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CiteScore
0.60
自引率
0.00%
发文量
169
审稿时长
1 months
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