Department of Systems Biology, Harvard Medical School, Boston, MA 02115.
Department of Systems Biology, Harvard Medical School, Boston, MA 02115
Proc Natl Acad Sci U S A. 2020 Nov 3;117(44):27388-27399. doi: 10.1073/pnas.2002152117. Epub 2020 Oct 21.
The fine balance of growth and division is a fundamental property of the physiology of cells, and one of the least understood. Its study has been thwarted by difficulties in the accurate measurement of cell size and the even greater challenges of measuring growth of a single cell over time. We address these limitations by demonstrating a computationally enhanced methodology for quantitative phase microscopy for adherent cells, using improved image processing algorithms and automated cell-tracking software. Accuracy has been improved more than twofold and this improvement is sufficient to establish the dynamics of cell growth and adherence to simple growth laws. It is also sufficient to reveal unknown features of cell growth, previously unmeasurable. With these methodological and analytical improvements, in several cell lines we document a remarkable oscillation in growth rate, occurring throughout the cell cycle, coupled to cell division or birth yet independent of cell cycle progression. We expect that further exploration with this advanced tool will provide a better understanding of growth rate regulation in mammalian cells.
细胞的生长和分裂的精细平衡是其生理学的基本特性之一,也是了解最少的特性之一。由于细胞大小的精确测量存在困难,以及更具挑战性的对单个细胞随时间生长的测量,其研究受到了阻碍。我们通过展示一种用于贴壁细胞的计算增强定量相显微镜方法来解决这些限制,该方法使用了改进的图像处理算法和自动细胞跟踪软件。准确性提高了两倍以上,这种改进足以确定细胞生长和对简单生长规律的附着的动力学。它也足以揭示以前无法测量的细胞生长的未知特征。通过这些方法和分析上的改进,在几种细胞系中,我们记录了一个显著的生长速率振荡,发生在整个细胞周期中,与细胞分裂或出生相关联,但与细胞周期进程无关。我们期望使用这种先进的工具进行进一步的探索,将为哺乳动物细胞的生长速率调节提供更好的理解。