Institut de Sciences des Matériaux de Mulhouse, CNRS LRC, Université de Haute-Alsace, Mulhouse, France.
Acta Biomater. 2010 Oct;6(10):3824-46. doi: 10.1016/j.actbio.2010.04.001. Epub 2010 Apr 4.
The current development of nanobiotechnologies requires a better understanding of cell-surface interactions on the nanometre scale. Recently, advances in nanoscale patterning and detection have allowed the fabrication of appropriate substrates and the study of cell-substrate interactions. In this review we discuss the methods currently available for nanoscale patterning and their merits, as well as techniques for controlling the surface chemistry of materials at the nanoscale without changing the nanotopography and the possibility of truly characterizing the surface chemistry at the nanoscale. We then discuss the current knowledge of how a cell can interact with a substrate at the nanoscale and the effect of size, morphology, organization and separation of nanofeatures on cell response. Moreover, cell-substrate interactions are mediated by the presence of proteins adsorbed from biological fluids on the substrate. Many questions remain on the effect of nanotopography on protein adsorption. We review papers related to this point. As all these parameters have an influence on cell response, it is important to develop specific studies to point out their relative influence, as well as the biological mechanisms underlying cell responses to nanotopography. This will be the basis for future research in this field. An important topic in tissue engineering is the effect of nanoscale topography on bacteria, since cells have to compete with bacteria in many environments. The limited current knowledge of this topic is also discussed in the light of using topography to encourage cell adhesion while limiting bacterial adhesion. We also discuss current and prospective applications of cell-surface interactions on the nanoscale. Finally, based on questions raised previously that remain to be solved in the field, we propose future directions of research in materials science to help elucidate the relative influence of the physical and chemical aspects of nanotopography on bacteria and cell response with the aim of contributing to the development of nanobiotechnologies.
当前,纳米生物技术的发展需要更好地理解纳米尺度的细胞表面相互作用。最近,纳米级图案化和检测技术的进步使得制造合适的基底和研究细胞-基底相互作用成为可能。在这篇综述中,我们讨论了目前可用于纳米级图案化的方法及其优缺点,以及在不改变纳米形貌的情况下控制材料表面化学的技术,以及在纳米尺度上真正表征表面化学的可能性。然后,我们讨论了目前关于细胞如何与纳米尺度基底相互作用的知识,以及纳米特征的大小、形态、组织和分离对细胞反应的影响。此外,细胞-基底相互作用是由基底上从生物流体中吸附的蛋白质介导的。关于纳米形貌对蛋白质吸附的影响,仍有许多问题尚未解决。我们回顾了与此相关的论文。由于所有这些参数都会影响细胞反应,因此开发特定的研究来指出它们的相对影响,以及细胞对纳米形貌反应的生物学机制非常重要。这将是该领域未来研究的基础。组织工程中的一个重要课题是纳米形貌对细菌的影响,因为在许多环境中,细胞必须与细菌竞争。我们还根据在利用形貌来鼓励细胞黏附同时限制细菌黏附方面的有限的当前知识,讨论了这个课题。我们还讨论了细胞-表面相互作用在纳米尺度上的当前和潜在应用。最后,根据之前提出的尚未解决的问题,我们提出了材料科学未来的研究方向,以帮助阐明纳米形貌的物理和化学方面对细菌和细胞反应的相对影响,目的是为纳米生物技术的发展做出贡献。