Falck Miniotis Maria, Mukwaya Anthonny, Gjörloff Wingren Anette
Department of Biomedical Laboratory Science, Health and Society, Malmö University and Malmö University Hospital, Malmö, Sweden.
PLoS One. 2014 Sep 10;9(9):e106546. doi: 10.1371/journal.pone.0106546. eCollection 2014.
Digital holographic microscopy (DHM) has emerged as a powerful non-invasive tool for cell analysis. It has the capacity to analyse multiple parameters simultaneously, such as cell- number, confluence and phase volume. This is done while cells are still adhered and growing in their culture flask. The aim of this study was to investigate whether DHM was able to monitor drug-induced cell cycle arrest in cultured cells and thus provide a non-disruptive alternative to flow cytometry. DHM parameters from G1 and G2/M cell cycle arrested L929 mouse fibroblast cells were collected. Cell cycle arrest was verified with flow cytometry. This study shows that DHM is able to monitor phase volume changes corresponding to either a G1 or G2/M cell cycle arrest. G1-phase arrest with staurosporine correlated with a decrease in the average cell phase volume and G2/M-phase arrest with colcemid and etoposide correlated with an increase in the average cell phase volume. Importantly, DHM analysis of average cell phase volume was of comparable accuracy to flow cytometric measurement of cell cycle phase distribution as recorded following dose-dependent treatment with etoposide. Average cell phase volume changes in response to treatment with cell cycle arresting compounds could therefore be used as a DHM marker for monitoring cell cycle arrest in cultured mammalian cells.
数字全息显微镜(DHM)已成为一种用于细胞分析的强大非侵入性工具。它有能力同时分析多个参数,如细胞数量、汇合度和相体积。这是在细胞仍附着于培养瓶并生长时完成的。本研究的目的是调查DHM是否能够监测培养细胞中药物诱导的细胞周期停滞,从而为流式细胞术提供一种非破坏性替代方法。收集了处于G1期和G2/M期细胞周期停滞的L929小鼠成纤维细胞的DHM参数。通过流式细胞术验证细胞周期停滞。本研究表明,DHM能够监测与G1期或G2/M期细胞周期停滞相对应的相体积变化。用星形孢菌素诱导的G1期停滞与平均细胞相体积的减少相关,用秋水仙酰胺和依托泊苷诱导的G2/M期停滞与平均细胞相体积的增加相关。重要的是,对平均细胞相体积的DHM分析与用依托泊苷进行剂量依赖性处理后记录的细胞周期相分布的流式细胞术测量具有相当的准确性。因此,响应细胞周期停滞化合物处理的平均细胞相体积变化可用作DHM标记物,以监测培养的哺乳动物细胞中的细胞周期停滞。