Novel device for transplantation of cell sheet and evaluation of thin polymer films by atomic force microscopy

R. Takeuchi, K. Fukumori, Katsuhisa Sakaguchi, Y. Terajima, Tatsuya Shimizu, T. Okano, M. Umezu
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Abstract

Cell therapy is expected to a new tool to treat refractory diseases. In heart regeneration, it has been firstly conducted with needle injection of cell suspensions. Recently, cell sheet engineering emerged as another method of cell therapy. Cell sheet is prepared with a temperature responsive dish by temperature reduction. It is a thin-patch-like tissue construct and its thickness is several tens of micrometers. It is composed of cells and intrinsic extra cellular matrix only. The transplantation of the cell sheet has been already conducted in animal experiments and even in clinical trials. The cell sheet is transplanted at the surface of the heart, but it is difficult to transplant the cell sheet under the beating heart. To overcome this difficulty, we designed a device that was composed of two thin polymer films that have different friction. The films were made of polyurethane, polyethylene, or polypropylene. The cell sheet was set up on the device by sandwiching it with the less frictional film and the more frictional film. In this paper, using two different films having the different friction, the cell sheet was successfully transplanted to the static round polymer surface, the harvested heart, and even the beating heart of pig by removing the films step by step using the difference in friction. Also, surface properties such as friction, adhesion force and roughness of the films were studied by an atomic force microscopy (AFM). From the results of the study, the friction of the film was found to be likely proportional to the adhesion force and the inverse of roughness.
一种新的细胞片移植装置及原子力显微镜对聚合物薄膜的评价
细胞疗法有望成为治疗难治性疾病的新工具。在心脏再生方面,首次采用针注射细胞悬浮液的方法进行。最近,细胞片工程作为细胞治疗的另一种方法出现了。细胞片是用温度反应盘通过温度还原法制备的。它是一种薄片状组织结构,其厚度为几十微米。它仅由细胞和固有的细胞外基质组成。细胞片的移植已经在动物实验甚至临床试验中进行。细胞片移植在心脏表面,但很难移植到跳动的心脏下。为了克服这一困难,我们设计了一种由两种具有不同摩擦的聚合物薄膜组成的装置。这些薄膜由聚氨酯、聚乙烯或聚丙烯制成。将电池片与摩擦较小的膜和摩擦较大的膜夹在一起,建立在设备上。本文采用两种摩擦力不同的膜,利用摩擦力的差异,逐步去除膜,将细胞片移植到静止的圆形聚合物表面、收获的心脏,甚至是跳动的猪心脏上。同时,利用原子力显微镜(AFM)研究了薄膜的摩擦、附着力和粗糙度等表面特性。从研究结果来看,薄膜的摩擦力可能与附着力成正比,与粗糙度成反比。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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