Health Innovations Research Institute, School of Applied Sciences, RMIT University, Melbourne, VIC, Australia.
Eur Biophys J. 2011 Feb;40(2):103-15. doi: 10.1007/s00249-010-0651-6. Epub 2010 Dec 14.
Nanotechnology is set to impact a vast range of fields, including computer science, materials technology, engineering/manufacturing and medicine. As nanotechnology grows so does exposure to nanostructured materials, thus investigation of the effects of nanomaterials on biological systems is paramount. Computational techniques can allow investigation of these systems at the nanoscale, providing insight into otherwise unexaminable properties, related to both the intentional and unintentional effects of nanomaterials. Herein, we review the current literature involving computational modelling of nanoparticles and biological systems. This literature has highlighted the common modes in which nanostructured materials interact with biological molecules such as membranes, peptides/proteins and DNA. Hydrophobic interactions are the most favoured, with π-stacking of the aromatic side-chains common when binding to a carbonaceous nanoparticle or surface. van der Waals forces are found to dominate in the insertion process of DNA molecules into carbon nanotubes. Generally, nanoparticles have been observed to disrupt the tertiary structure of proteins due to the curvature and atomic arrangement of the particle surface. Many hydrophobic nanoparticles are found to be able to transverse a lipid membrane, with some nanoparticles even causing mechanical damage to the membrane, thus potentially leading to cytotoxic effects. Current computational techniques have revealed how some nanoparticles interact with biological systems. However, further research is required to determine both useful applications and possible cytotoxic effects that nanoparticles may have on DNA, protein and membrane structure and function within biosystems.
纳米技术将影响包括计算机科学、材料技术、工程/制造和医学在内的众多领域。随着纳米技术的发展,人们接触纳米结构材料的机会也越来越多,因此研究纳米材料对生物系统的影响至关重要。计算技术可以在纳米尺度上研究这些系统,为研究纳米材料的有意和无意影响提供了深入了解。本文综述了涉及纳米粒子和生物系统计算建模的现有文献。该文献强调了纳米结构材料与生物分子(如膜、肽/蛋白质和 DNA)相互作用的常见模式。疏水性相互作用是最有利的,当与碳纳米粒子或表面结合时,芳香族侧链的π-堆积很常见。研究发现,范德华力在 DNA 分子插入碳纳米管的过程中起主导作用。一般来说,由于粒子表面的曲率和原子排列,纳米粒子会破坏蛋白质的三级结构。许多疏水性纳米粒子能够穿过脂质膜,有些纳米粒子甚至会对膜造成机械损伤,从而可能导致细胞毒性作用。目前的计算技术已经揭示了一些纳米粒子与生物系统相互作用的方式。然而,需要进一步的研究来确定纳米粒子对生物系统中的 DNA、蛋白质和膜结构和功能可能具有的有用应用和潜在的细胞毒性作用。