Department of Chemical Engineering and Materials Science, University of Minnesota-Twin Cities, 421 Washington Ave. SE, Minneapolis, Minnesota 55455, USA.
J Chem Phys. 2010 Sep 28;133(12):125101. doi: 10.1063/1.3480685.
We compare the predictions of a two-bead Brownian dynamics simulation model to melting experiments of DNA hairpins with complementary AT or GC stems and noninteracting loops in buffer A. This system emphasizes the role of stacking and hydrogen bonding energies, which are characteristics of DNA, rather than backbone bending, stiffness, and excluded volume interactions, which are generic characteristics of semiflexible polymers. By comparing high throughput data on the open-close transition of various DNA hairpins to the corresponding simulation data, we (1) establish a suitable metric to compare the simulations to experiments, (2) find a conversion between the simulation and experimental temperatures, and (3) point out several limitations of the model, including the lack of G-quartets and cross stacking effects. Our approach and experimental data can be used to validate similar coarse-grained simulation models.
我们将双珠布朗动力学模拟模型的预测结果与在缓冲液 A 中具有互补 AT 或 GC 茎和非相互作用环的 DNA 发夹的熔化实验进行了比较。该系统强调了堆积和氢键能的作用,这是 DNA 的特征,而不是骨架弯曲、刚性和排除体积相互作用,这是半刚性聚合物的一般特征。通过将各种 DNA 发夹的开-关转变的高通量数据与相应的模拟数据进行比较,我们(1)建立了一种合适的度量标准来比较模拟和实验,(2)找到了模拟和实验温度之间的转换,以及(3)指出了该模型的几个局限性,包括缺乏 G-四联体和交叉堆积效应。我们的方法和实验数据可用于验证类似的粗粒化模拟模型。