Murray Lynn M, Nock Volker, Evans John J, Alkaisi Maan M
The MacDiarmid Institute for Advanced Materials and Nanotechnology, Department of Electrical and Computer Engineering, University of Canterbury, Christchurch, 8140, New Zealand.
The MacDiarmid Institute for Advanced Materials and Nanotechnology, and Centre for Neuroendocrinology, Department of Obstetrics and Gynaecology, University of Otago, Christchurch, 8011, New Zealand.
J Nanobiotechnology. 2014 Dec 30;12:60. doi: 10.1186/s12951-014-0060-6.
It is becoming recognised that traditional methods of culture in vitro on flat substrates do not replicate physiological conditions well, and a number of studies have indicated that the physical environment is crucial to the directed functioning of cells in vivo. In this paper we report the development of a platform with cell-like features that is suitable for in vitro investigation of cell activity. Biological cells were imprinted in hard methacrylate copolymer using soft lithography. The cell structures were replicated at high nanometre scale resolution, as confirmed by atomic force microscopy. Optimisation of the methacrylate-based co-polymer mixture for transparency and biocompatibility was performed, and cytotoxicity and chemical stability of the cured polymer in cell culture conditions were evaluated. Cells of an endometrial adenocarcinoma cell line (Ishikawa) were cultured on bioimprinted substrates.
The cells exhibited differential attachment on the bioimprint substrate surface compared to those on areas of flat surface and preferentially followed the pattern of the original cell footprint.
The results revealed for the first time that the cancer cells distinguished between behavioural cues from surfaces that had features reminiscent of themselves and that of flat areas. Therefore the imprinted platform will lend itself to detailed studies of relevant physical substrate environments on cell behaviour. The material is not degraded and its permanency allows reuse of the same substrate in multiple experimental runs. It is simple and does not require expensive or specialised equipment. In this work cancer cells were studied, and the growth behaviour of the tumour-derived cells was modified by alterations of the cells' physical environment. Implications are also clear for studies in other crucial areas of health, such as wound healing and artificial tissues.
人们逐渐认识到,在平坦基质上进行传统体外培养的方法不能很好地复制生理条件,并且多项研究表明物理环境对体内细胞的定向功能至关重要。在本文中,我们报告了一种具有细胞样特征的平台的开发,该平台适用于体外研究细胞活性。使用软光刻技术将生物细胞印刻在硬质甲基丙烯酸酯共聚物中。原子力显微镜证实,细胞结构在高纳米尺度分辨率下得以复制。对基于甲基丙烯酸酯的共聚物混合物的透明度和生物相容性进行了优化,并评估了固化聚合物在细胞培养条件下的细胞毒性和化学稳定性。在生物印刻的基质上培养子宫内膜腺癌细胞系(石川细胞系)的细胞。
与在平坦表面区域的细胞相比,这些细胞在生物印刻基质表面表现出不同的附着情况,并优先遵循原始细胞足迹的模式。
结果首次表明,癌细胞能够区分来自具有与其自身特征相似的表面和平坦区域表面的行为线索。因此,印刻平台将有助于详细研究相关物理基质环境对细胞行为的影响。该材料不会降解,其永久性允许在多次实验中重复使用同一基质。它操作简单,不需要昂贵或专门的设备。在这项工作中,对癌细胞进行了研究,并且通过改变细胞的物理环境来改变肿瘤衍生细胞的生长行为。这对于伤口愈合和人工组织等其他关键健康领域的研究也具有明显的意义。