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5IWN

Bacterial sodium channel pore domain, high bromide

5HKT」から置き換えられました
5IWN の概要
エントリーDOI10.2210/pdb5iwn/pdb
関連するPDBエントリー5HJ8 5HK6 5HK7 5HKD 5IWO
分子名称Ion transport protein, BROMIDE ION (2 entities in total)
機能のキーワードbacterial sodium channel, low br, transport protein
由来する生物種Alkalilimnicola ehrlichii
タンパク質・核酸の鎖数4
化学式量合計70013.18
構造登録者
Shaya, D.,Findeisen, F.,Rohaim, A.,Minor, D.L. (登録日: 2016-03-22, 公開日: 2016-03-30, 最終更新日: 2023-09-27)
主引用文献Arrigoni, C.,Rohaim, A.,Shaya, D.,Findeisen, F.,Stein, R.A.,Nurva, S.R.,Mishra, S.,Mchaourab, H.S.,Minor, D.L.
Unfolding of a Temperature-Sensitive Domain Controls Voltage-Gated Channel Activation.
Cell, 164:922-936, 2016
Cited by
PubMed Abstract: Voltage-gated ion channels (VGICs) are outfitted with diverse cytoplasmic domains that impact function. To examine how such elements may affect VGIC behavior, we addressed how the bacterial voltage-gated sodium channel (BacNa(V)) C-terminal cytoplasmic domain (CTD) affects function. Our studies show that the BacNa(V) CTD exerts a profound influence on gating through a temperature-dependent unfolding transition in a discrete cytoplasmic domain, the neck domain, proximal to the pore. Structural and functional studies establish that the BacNa(V) CTD comprises a bi-partite four-helix bundle that bears an unusual hydrophilic core whose integrity is central to the unfolding mechanism and that couples directly to the channel activation gate. Together, our findings define a general principle for how the widespread four-helix bundle cytoplasmic domain architecture can control VGIC responses, uncover a mechanism underlying the diverse BacNa(V) voltage dependencies, and demonstrate that a discrete domain can encode the temperature-dependent response of a channel.
PubMed: 26919429
DOI: 10.1016/j.cell.2016.02.001
主引用文献が同じPDBエントリー
実験手法
X-RAY DIFFRACTION (3.75 Å)
構造検証レポート
Validation report summary of 5iwn
検証レポート(詳細版)ダウンロードをダウンロード

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件を2026-04-22に公開中

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