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细胞外跨膜结构域界面处的乙酰胆碱受体门控:“M1前”连接子

Acetylcholine receptor gating at extracellular transmembrane domain interface: the "pre-M1" linker.

作者信息

Purohit Prasad, Auerbach Anthony

机构信息

Department of Physiology and Biophysics, State University of New York at Buffalo, Buffalo, NY 14214, USA.

出版信息

J Gen Physiol. 2007 Dec;130(6):559-68. doi: 10.1085/jgp.200709857.

Abstract

Charged residues in the beta10-M1 linker region ("pre-M1") are important in the expression and function of neuromuscular acetylcholine receptors (AChRs). The perturbation of a salt bridge between pre-M1 residue R209 and loop 2 residue E45 has been proposed as being a principle event in the AChR gating conformational "wave." We examined the effects of mutations to all five residues in pre-M1 (positions M207-P211) plus E45 in loop 2 in the mouse alpha(1)-subunit. M207, Q208, and P211 mutants caused small (approximately threefold) changes in the gating equilibrium constant (K(eq)), but the changes for R209, L210, and E45 were larger. Of 19 different side chain substitutions at R209 on the wild-type background, only Q, K, and H generated functional channels, with the largest change in K(eq) (67-fold) from R209Q. Various R209 mutants were functional on different E45 backgrounds: H, Q, and K (E45A), H, A, N, and Q (E45R), and K, A, and N (E45L). Phi values for R209 (on the E45A background), L210, and E45 were 0.74, 0.35, and 0.80, respectively. Phi values for R209 on the wt and three other backgrounds could not be estimated because of scatter. The average coupling energy between 209/45 side chains (six different pairs) was only -0.33 kcal/mol (for both alpha subunits, combined). Pre-M1 residues are important for expression of functional channels and participate in gating, but the relatively modest changes in closed- vs. open-state energy caused mutations, the weak coupling energy between these residues and the functional activity of several unmatched-charge pairs are not consistent with the perturbation of a salt bridge between R209 and E45 playing the principle role in gating.

摘要

β10-M1连接区域(“前M1”)中的带电残基在神经肌肉乙酰胆碱受体(AChR)的表达和功能中起重要作用。有人提出前M1残基R209与环2残基E45之间盐桥的扰动是AChR门控构象“波”中的一个主要事件。我们研究了小鼠α(1)亚基中前M1的所有五个残基(位置M207-P211)加上环2中的E45发生突变的影响。M207、Q208和P211突变体导致门控平衡常数(K(eq))发生小的(约三倍)变化,但R209、L210和E45的变化更大。在野生型背景下R209的19种不同侧链取代中,只有Q、K和H产生了功能性通道,其中R209Q导致K(eq)变化最大(67倍)。各种R209突变体在不同的E45背景下具有功能:H、Q和K(E45A),H、A、N和Q(E45R),以及K、A和N(E45L)。R209(在E45A背景下)、L210和E45的Phi值分别为0.74、0.35和0.80。由于数据分散,无法估计野生型和其他三种背景下R209的Phi值。209/45侧链之间(六种不同对)的平均耦合能仅为-0.33千卡/摩尔(两个α亚基合计)。前M1残基对功能性通道的表达很重要,并参与门控,但突变导致的关闭态与开放态能量相对适度的变化、这些残基之间较弱的耦合能以及几个不匹配电荷对的功能活性与R209和E45之间盐桥的扰动在门控中起主要作用不一致。

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1
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3
How to turn the reaction coordinate into time.
J Gen Physiol. 2007 Dec;130(6):543-6. doi: 10.1085/jgp.200709898.
4
Crystal structure of the extracellular domain of nAChR alpha1 bound to alpha-bungarotoxin at 1.94 A resolution.
Nat Neurosci. 2007 Aug;10(8):953-62. doi: 10.1038/nn1942. Epub 2007 Jul 22.
6
Transducing agonist binding to channel gating involves different interactions in 5-HT3 and GABAC receptors.
J Biol Chem. 2007 Aug 31;282(35):25623-30. doi: 10.1074/jbc.M702524200. Epub 2007 Jul 2.
7
Conformational dynamics of the alphaM3 transmembrane helix during acetylcholine receptor channel gating.
Biophys J. 2007 Aug 1;93(3):859-65. doi: 10.1529/biophysj.107.105171. Epub 2007 May 18.
8
A stepwise mechanism for acetylcholine receptor channel gating.
Nature. 2007 Apr 19;446(7138):930-3. doi: 10.1038/nature05721.
9
The pre-M1 segment of the alpha1 subunit is a transduction element in the activation of the GABAA receptor.
J Physiol. 2006 Aug 15;575(Pt 1):11-22. doi: 10.1113/jphysiol.2005.102756. Epub 2006 Jun 8.
10
Charged residues in the alpha1 and beta2 pre-M1 regions involved in GABAA receptor activation.
J Neurosci. 2006 Feb 15;26(7):2031-40. doi: 10.1523/JNEUROSCI.4555-05.2006.

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