Odeleye Akinlolu Oyekunle Oluseun, Castillo-Avila Sara, Boon Mathew, Martin Haydn, Coopman Karen
Centre for Biological Engineering, Loughborough University, Loughborough LE11 3TU, United Kingdom.
Institute of Biomedical Engineering, University of Oxford, Oxford, United Kingdom.
Biotechnol Bioeng. 2017 Sep;114(9):2032-2042. doi: 10.1002/bit.26328. Epub 2017 May 23.
The emergence of medicinal indications for stem cell therapies has seen a need to develop the manufacturing capacity for adherent cells such as mesenchymal stem cells (MSCs). One such development is in the use of microcarriers, which facilitate enhanced cell densities for adherent stem cell cultures when compared with 2D culture platforms. Given the variety of stem cell expansion systems commercially available, novel methods of non-invasive and automated monitoring of cell number, confluence, and aggregation, within disparate environments, will become imperative to process control, ensuring reliable and consistent performance. The in situ epi-illumination of mouse embryonic fibroblasts and human mesenchymal stem cells attached to Cytodex 1 and 3 microcarriers was achieved using a bespoke microscope. Robust image processing techniques were developed to provide quantitative measurements of confluence, aggregate recognition, and cell number, without the need for fluorescent labeling or cell detachment. Large datasets of cells counted on individual microcarriers were statistically analyzed and compared with NucleoCounter measurements, with an average difference of less than 7% observed from days 0 to 6 of a 12-day culture noted, prior to the onset of aggregation. The developed image acquisition system and post-processing methodologies were successfully applied to dynamically moving colonized microcarriers. The proposed system offers a novel method of cell identification at the individual level, to consistently and accurately assess viable cell number, confluence, and cell distribution, while also minimizing the variability inherent in the current invasive means by which cells adhered to microcarriers are analyzed. Biotechnol. Bioeng. 2017;114: 2032-2042. © 2017 The Authors. Biotechnology and Bioengineering Published by Wiley Periodicals, Inc.
随着干细胞疗法医学适应症的出现,人们需要开发用于培养贴壁细胞(如间充质干细胞(MSC))的生产能力。其中一项进展是使用微载体,与二维培养平台相比,微载体有助于提高贴壁干细胞培养的细胞密度。鉴于市场上有多种干细胞扩增系统,在不同环境中对细胞数量、汇合度和聚集情况进行非侵入性和自动化监测的新方法对于过程控制将变得至关重要,以确保可靠且一致的性能。使用定制显微镜实现了对附着在Cytodex 1和3微载体上的小鼠胚胎成纤维细胞和人间充质干细胞的原位落射照明。开发了强大的图像处理技术,无需荧光标记或细胞分离即可提供汇合度、聚集体识别和细胞数量的定量测量。对在单个微载体上计数的大量细胞数据集进行了统计分析,并与NucleoCounter测量结果进行了比较,发现在为期12天的培养中,从第0天到第6天(聚集开始前)平均差异小于7%。所开发的图像采集系统和后处理方法成功应用于动态移动的定植微载体。所提出的系统提供了一种在个体水平上进行细胞识别的新方法,以一致且准确地评估活细胞数量、汇合度和细胞分布,同时还最大限度地减少了当前分析附着在微载体上的细胞的侵入性方法所固有的变异性。《生物技术与生物工程》2017年;114:2032 - 2042。© 2017作者。《生物技术与生物工程》由威利期刊公司出版