Na Hyuntae, Song Guang
Computer Science, Penn State Harrisburg, Middletown, Pennsylvania, UNITED STATES.
Computer Science, Iowa State University, 226 Atanasoff Hall, AMES, Iowa, 50010-4844, UNITED STATES.
Phys Biol. 2018 Mar 20. doi: 10.1088/1478-3975/aab813.
Increasingly more and larger structural complexes are being determined experimentally. The sizes of these systems pose a formidable computational challenge to the study of their vibrational dynamics by normal mode analysis. To overcome this challenge, this work presents a novel resonance-inspired approach. Tests on large shell structures of protein capsids demonstrate there is a strong resonance between the vibrations of a whole capsid and those of individual capsomeres. We then show how this resonance can be taken advantage of to significantly speed up normal mode computations.
越来越多且规模越来越大的结构复合体正通过实验来确定。这些系统的规模对通过正常模式分析研究其振动动力学构成了巨大的计算挑战。为了克服这一挑战,本研究提出了一种新颖的受共振启发的方法。对蛋白质衣壳的大型壳结构进行的测试表明,整个衣壳的振动与单个衣壳粒的振动之间存在强烈的共振。然后我们展示了如何利用这种共振来显著加速正常模式计算。