Petrov Anton S, Lim-Hing Krista, Harvey Stephen C
School of Biology, Georgia Institute of Technology, 310 Ferst Drive, Atlanta, GA 30332, USA.
Structure. 2007 Jul;15(7):807-12. doi: 10.1016/j.str.2007.05.005.
The structure of bacteriophage epsilon15 has recently been determined by 3D reconstruction of single particle cryo-electron microscopy images. Although this study revealed that the viral genome inside the bacteriophage is on average coaxially spooled, individual DNA conformations inside the capsid could not be determined. In the current study, we present the results of 40 independent simulations of DNA packaging into epsilon15 using the previously described low-resolution model for bacteriophages. In addition to coaxially spooled conformations, we also observe a number of folded-toroidal patterns, but the density averaged over all conformations closely resembles the experimental density. Thermodynamic analysis of the simulations predicts that a force of approximately 125 pN would be required to package DNA into epsilon15. We also show that the origin of this force is predominantly due to electrostatic and entropic contributions. However, the DNA conformation is determined primarily by the need to minimize the DNA bending energy.
噬菌体ε15的结构最近通过单颗粒冷冻电子显微镜图像的三维重建得以确定。尽管这项研究表明噬菌体内部的病毒基因组平均呈同轴缠绕状态,但衣壳内单个DNA的构象仍无法确定。在当前研究中,我们展示了使用先前描述的噬菌体低分辨率模型对DNA包装到ε15中进行的40次独立模拟的结果。除了同轴缠绕构象外,我们还观察到一些折叠环形模式,但所有构象的密度平均值与实验密度非常相似。模拟的热力学分析预测,将DNA包装到ε15中大约需要125皮牛顿的力。我们还表明,这种力的来源主要是静电和熵的贡献。然而,DNA构象主要由使DNA弯曲能量最小化的需求决定。