Zeng Jia, Mohammadreza Aida, Gao Weimin, Merza Saeed, Smith Dean, Kelbauskas Laimonas, Meldrum Deirdre R
1] Center for Biosignatures Discovery Automation, The Biodesign Institute, Arizona State University, P.O. Box 876501, Tempe, AZ 85287-6501 [2].
Center for Biosignatures Discovery Automation, The Biodesign Institute, Arizona State University, P.O. Box 876501, Tempe, AZ 85287-6501.
Sci Rep. 2014 Jun 24;4:5424. doi: 10.1038/srep05424.
The field of single-cell analysis has gained a significant momentum over the last decade. Separation and isolation of individual cells is an indispensable step in almost all currently available single-cell analysis technologies. However, stress levels introduced by such manipulations remain largely unstudied. We present a method for minimally invasive retrieval of selected individual adherent cells of different types from cell cultures. The method is based on a combination of mechanical (shear flow) force and biochemical (trypsin digestion) treatment. We quantified alterations in the transcription levels of stress response genes in individual cells exposed to varying levels of shear flow and trypsinization. We report optimal temperature, RNA preservation reagents, shear force and trypsinization conditions necessary to minimize changes in the stress-related gene expression levels. The method and experimental findings are broadly applicable and can be used by a broad research community working in the field of single cell analysis.
在过去十年中,单细胞分析领域取得了显著进展。单个细胞的分离和提取是几乎所有现有单细胞分析技术中不可或缺的一步。然而,此类操作所引入的应激水平在很大程度上仍未得到研究。我们提出了一种从细胞培养物中微创获取选定的不同类型单个贴壁细胞的方法。该方法基于机械(剪切流)力和生化(胰蛋白酶消化)处理的组合。我们对暴露于不同水平剪切流和胰蛋白酶消化的单个细胞中应激反应基因转录水平的变化进行了量化。我们报告了使应激相关基因表达水平变化最小化所需的最佳温度、RNA保存试剂、剪切力和胰蛋白酶消化条件。该方法和实验结果具有广泛的适用性,可供从事单细胞分析领域的广大研究群体使用。