Porschke Dietmar, Antosiewicz Jan M
Max Planck Institut für Biophysikalische Chemie, 37077 Göttingen, Germany.
J Phys Chem B. 2005 Jan 20;109(2):1034-8. doi: 10.1021/jp046009v.
The effect of hydrodynamic coupling on the spatial orientation of rigid bent rods in electric fields has been analyzed by Brownian dynamics simulations. Bead models for smoothly bent rods were constructed with dimensions of DNA double helices, and established simulation procedures were used to calculate their diffusion tensor, including the translational-rotational coupling tensor. The electric and optical parameters were assigned on the basis of known properties of double helices. Brownian dynamics simulations of the orientation of these models in electric fields showed that both transients and amplitudes of the calculated dichroism are very strongly dependent on translational-rotational coupling over a wide range of electric field strengths. For example, the stationary dichroism of a smoothly bent 179 bp DNA fragment calculated at low field strengths is positive in the presence and negative in the absence of hydrodynamic coupling. The transients are converted from a biphasic to a monophasic shape, when hydrodynamic coupling is turned off. The large changes resulting from hydrodynamic coupling were controlled by calculations based on analytical expressions derived for electrooptical response curves in the limit of low electric field strengths; the results obtained by this independent approach are in very satisfactory agreement with our Brownian dynamics simulations. The effect is strongly dependent on the electric dipole and on its direction. In the absence of any dipole the coupling effect was not observed. The coupling effect increases with the size of the bent rods. Because most macromolecular structures are known to have induced and/or permanent dipole moments, large effects of hydrodynamic coupling on both the amplitudes and the transients of the electric dichroism/birefringence must be expected in general for structures with nonsymmetric shape.
通过布朗动力学模拟分析了流体动力耦合对电场中刚性弯曲棒空间取向的影响。构建了尺寸与DNA双螺旋相当的光滑弯曲棒的珠子模型,并使用既定的模拟程序计算其扩散张量,包括平动 - 转动耦合张量。根据双螺旋的已知特性分配电学和光学参数。这些模型在电场中取向的布朗动力学模拟表明,在很宽的电场强度范围内,计算得到的二色性的瞬态和幅度都非常强烈地依赖于平动 - 转动耦合。例如,在低场强下计算得到的179 bp光滑弯曲DNA片段的稳态二色性,在存在流体动力耦合时为正,在不存在时为负。当关闭流体动力耦合时,瞬态从双相转变为单相形状。流体动力耦合引起的大变化由基于低电场强度极限下电光响应曲线推导的解析表达式的计算控制;通过这种独立方法获得的结果与我们的布朗动力学模拟非常吻合。该效应强烈依赖于电偶极子及其方向。在没有任何偶极子的情况下,未观察到耦合效应。耦合效应随弯曲棒的尺寸增加而增大。由于已知大多数大分子结构具有诱导和/或永久偶极矩,因此一般来说,对于形状不对称的结构,流体动力耦合对电二色性/双折射的幅度和瞬态都有很大影响。