Monoi H
Department of Physiology, Tohoku University School of Medicine, Sendai, Japan.
Biophys J. 1991 Apr;59(4):786-94. doi: 10.1016/S0006-3495(91)82291-3.
Electrostatic calculation of the gramicidin channel is performed on the basis of a three-dielectric model in which the peptide backbone of the channel is added as a third dielectric region to the conventional two-dielectric channel model (whose pore radius is often referred to as the effective pore radius reff). A basic principle for calculating electrostatic fields in three-dielectric models is introduced. It is shown that the gramicidin channel has no unique value of reff. The reff with respect to the "self-image energy" (i.e., the image energy in the presence of a single ion) is 2.6-2.7 A, slightly depending upon the position of the ion (the least-square value over the whole length of the pore is 2.6 A). In contrast, the reff with respect to the electric potential due to an ion (and hence the reff with respect to the interaction energy between two ions) is dependent upon the distance s of separation; it ranges from 2.6 to greater than 5 A, increasing with an increase in s. However, for the purpose of rough estimation, the reff with respect to the self-image energy can also be used in calculating the electric potential and the interaction energy, because the error introduced by this approximation is an overestimation of the order of 30% at most. It is also shown that the apparent dielectric constant for the interaction between two charges depends markedly upon the positions of the charges. In the course of this study, the dielectric constant and polarizability of the peptide backbone in the beta-sheet structure is estimated to be 10 and 8.22 A3.
短杆菌肽通道的静电计算是基于一种三电介质模型进行的,在该模型中,通道的肽主链作为第三电介质区域添加到传统的双电介质通道模型中(其孔径通常称为有效孔径reff)。介绍了在三电介质模型中计算静电场的基本原理。结果表明,短杆菌肽通道没有唯一的reff值。相对于“自镜像能量”(即单个离子存在时的镜像能量)的reff为2.6 - 2.7 Å,略有依赖于离子的位置(孔全长上的最小二乘值为2.6 Å)。相比之下,相对于离子产生的电势的reff(因此相对于两个离子之间相互作用能的reff)取决于分离距离s;其范围从2.6到大于5 Å,随s的增加而增加。然而,为了粗略估计,相对于自镜像能量的reff也可用于计算电势和相互作用能,因为这种近似引入的误差最多是高估30%左右。还表明,两个电荷之间相互作用的表观介电常数明显取决于电荷的位置。在本研究过程中,β-折叠结构中肽主链的介电常数和极化率估计分别为10和8.22 ų。