Gibbons Melissa M, Klug William S
Department of Mechanical and Aerospace Engineering, University of California, Los Angeles, California 90095, USA.
Phys Rev E Stat Nonlin Soft Matter Phys. 2007 Mar;75(3 Pt 1):031901. doi: 10.1103/PhysRevE.75.031901. Epub 2007 Mar 1.
Recent atomic force microscope (AFM) nanoindentation experiments measuring mechanical response of the protein shells of viruses have provided a quantitative description of their strength and elasticity. To better understand and interpret these measurements, and to elucidate the underlying mechanisms, this paper adopts a course-grained modeling approach within the framework of three-dimensional nonlinear continuum elasticity. Homogeneous, isotropic, elastic, thick-shell models are proposed for two capsids: the spherical cowpea chlorotic mottle virus (CCMV), and the ellipsocylindrical bacteriophage phi29 . As analyzed by the finite-element method, these models enable parametric characterization of the effects of AFM tip geometry, capsid dimensions, and capsid constitutive descriptions. The generally nonlinear force response of capsids to indentation is shown to be insensitive to constitutive particulars, and greatly influenced by geometric and kinematic details. Nonlinear stiffening and softening of the force response is dependent on the AFM tip dimensions and shell thickness. Fits of the models capture the roughly linear behavior observed in experimental measurements and result in estimates of Young's moduli of approximately 280-360 MPa for CCMV and approximately 4.5 GPa for phi29 .
最近,通过原子力显微镜(AFM)纳米压痕实验测量病毒蛋白壳的力学响应,对其强度和弹性进行了定量描述。为了更好地理解和解释这些测量结果,并阐明其潜在机制,本文在三维非线性连续介质弹性框架内采用了粗粒度建模方法。针对两种衣壳提出了均匀、各向同性、弹性的厚壳模型:球形豇豆花叶病毒(CCMV)和椭圆圆柱形噬菌体phi29。通过有限元方法分析,这些模型能够对AFM针尖几何形状、衣壳尺寸和衣壳本构描述的影响进行参数化表征。衣壳对压痕的一般非线性力响应显示对本构细节不敏感,而受几何和运动学细节的影响很大。力响应的非线性硬化和软化取决于AFM针尖尺寸和壳厚度。模型拟合捕捉了实验测量中观察到的大致线性行为,并得出CCMV的杨氏模量估计值约为280 - 360 MPa,phi29的约为4.5 GPa。