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The Molecular Mechanism by which PIP2 Opens the Intracellular G-Loop Gate of a Kir3.1 Channel

机译:PIP2打开Kir3.1通道的细胞内G环门的分子机制

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摘要

Inwardly rectifying potassium (Kir) channels are characterized by a long pore comprised of continuous transmembrane and cytosolic portions. A high-resolution structure of a Kir3.1 chimera revealed the presence of the cytosolic (G-loop) gate captured in the closed or open conformations. Here, we conducted molecular-dynamics simulations of these two channel states in the presence and absence of phosphatidylinositol bisphosphate (PIP2), a phospholipid that is known to gate Kir channels. Simulations of the closed state with PIP2 revealed an intermediate state between the closed and open conformations involving direct transient interactions with PIP2, as well as a network of transitional inter- and intrasubunit interactions. Key elements in the G-loop gating transition involved a PIP2-driven movement of the N-terminus and C-linker that removed constraining intermolecular interactions and led to CD-loop stabilization of the G-loop gate in the open state. To our knowledge, this is the first dynamic molecular view of PIP2-induced channel gating that is consistent with existing experimental data.
机译:向内整流钾(Kir)通道的特征是由连续的跨膜部分和胞质部分组成的长孔。 Kir3.1嵌合体的高分辨率结构揭示了在封闭或开放构象中捕获的胞质(G环)门的存在。在这里,我们在存在和不存在磷脂酰肌醇双磷酸酯(PIP2)(一种已知可控制Kir通道的磷脂)存在下,对这两个通道状态进行了分子动力学模拟。用PIP2进行的封闭状态模拟揭示了在封闭和开放构象之间的中间状态,涉及与PIP2的直接瞬时相互作用以及过渡的亚基和亚基内部相互作用的网络。 G环门控过渡中的关键元素涉及PIP2驱动的N端和C连接子的运动,该运动消除了约束性的分子间相互作用,并导致G环门在打开状态下具有CD环稳定性。据我们所知,这是PIP2诱导的通道门控的第一个动态分子视图,与现有实验数据一致。

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