Benham C J
Mathematics Department, University of Kentucky, Lexington 40506.
Cell Biophys. 1987 Oct;10(3):193-204. doi: 10.1007/BF02797340.
The linking difference, alpha, imposed upon a superhelically constrained DNA molecule must be partitioned between twisting and bending deformations. Transitions to alternative secondary structures can occur at susceptible sites, altering the local molecular twist by an amount delta Twtrans. That part of the linking difference not accommodated in this way, the residual linking difference alpha res, must be manifested as smooth torsional and flexural deformations of secondary structure. The competition among the alternative ways of accommodating the imposed linking difference alpha determines a stressed equilibrium state. The superhelical free energy, G(alpha), is the excess free energy of the equilibrium state at linking difference alpha above that of the relaxed state under identical conditions. In this paper a method is described by which the free energies associated both to linking, G(alpha), and to residual linking differences can be determined from data on superhelical conformational transitions. The application of this approach to previously published experimental data on the B-Z transition suggests that the free energy associated with alpha res is about 30% larger at substantial superhelicities than it is near the relaxed state. At the onset of transition the functional form of G(alpha) is shown to change in a manner dependent upon the length of the Z-susceptible site.
施加于超螺旋约束DNA分子上的连接差α,必须在扭曲和弯曲变形之间分配。向替代二级结构的转变可在易感位点发生,使局部分子扭曲改变ΔTwtrans量。以这种方式未被容纳的连接差部分,即残余连接差αres,必须表现为二级结构的平滑扭转和弯曲变形。容纳施加的连接差α的替代方式之间的竞争决定了一个应力平衡状态。超螺旋自由能G(α)是在连接差α时平衡状态的过量自由能,高于相同条件下松弛状态的自由能。本文描述了一种方法,通过该方法可以从超螺旋构象转变的数据中确定与连接相关的自由能G(α)以及残余连接差的自由能。将该方法应用于先前发表的关于B-Z转变的实验数据表明,在相当大的超螺旋度下,与αres相关的自由能比在松弛状态附近大约大30%。在转变开始时,G(α)的函数形式显示出以依赖于Z易感位点长度的方式变化。