Department of Chemical Engineering, Texas A&M University, College Station, TX 77843-3122, USA.
Nanotechnology. 2010 Mar 19;21(11):115703. doi: 10.1088/0957-4484/21/11/115703. Epub 2010 Feb 22.
Peptide nanostructures present a wide range of opportunities for applications in biomedicine and bionanotechnology; hence experimental and theoretical studies aiming at determination of thermo-mechanical stability of peptide-based nanostructures are critical for the design and development of their technological applications. Here, we present a homogeneous deformation method combined with the finite elasticity theory and molecular dynamics simulations (MD) for the calculation of second-order anisotropic elastic constants for a membrane model made up of self-assembled cyclic peptide nanotubes. We have computed the values of all anisotropic elastic constants at 300 K. The value of the engineering Young's modulus (in the z direction) is 19.6 GPa. We observed a yield behavior in the z direction for a strain value of 6%. Furthermore, we also report calculated heat capacity, thermal expansion coefficient and isothermal compressibility of the system under study.
肽纳米结构在生物医药和生物纳米技术的应用中具有广泛的机会;因此,旨在确定基于肽的纳米结构的热机械稳定性的实验和理论研究对于其技术应用的设计和开发至关重要。在这里,我们提出了一种均匀变形方法,结合有限弹性理论和分子动力学模拟 (MD),用于计算由自组装环状肽纳米管组成的膜模型的二阶各向异性弹性常数。我们已经计算了所有各向异性弹性常数在 300 K 时的值。工程杨氏模量(在 z 方向)的值为 19.6 GPa。我们观察到 z 方向的屈服行为,应变值为 6%。此外,我们还报告了所研究系统的计算热容、热膨胀系数和等温压缩率。