表型
多细胞生物
形态发生
计算生物学
鉴定(生物学)
活体细胞成像
遗传异质性
生物
三维细胞培养
表型筛选
细胞
细胞培养
仿形(计算机编程)
细胞生物学
遗传学
基因
计算机科学
操作系统
植物
作者
Eva C Freckmann,Emma Sandilands,Erin Cumming,Matthew Neilson,Álvaro Román-Fernández,Konstantina Nikolatou,Marisa Nacke,Tamsin R M Lannagan,Ann Hedley,David Strachan,Mark Salji,Jennifer P Morton,Lynn McGarry,Hing Y. Leung,Owen J. Sansom,Crispin J. Miller,David M. Bryant
标识
DOI:10.1038/s41467-022-32958-x
摘要
Single cell profiling by genetic, proteomic and imaging methods has expanded the ability to identify programmes regulating distinct cell states. The 3-dimensional (3D) culture of cells or tissue fragments provides a system to study how such states contribute to multicellular morphogenesis. Whether cells plated into 3D cultures give rise to a singular phenotype or whether multiple biologically distinct phenotypes arise in parallel is largely unknown due to a lack of tools to detect such heterogeneity. Here we develop Traject3d (Trajectory identification in 3D), a method for identifying heterogeneous states in 3D culture and how these give rise to distinct phenotypes over time, from label-free multi-day time-lapse imaging. We use this to characterise the temporal landscape of morphological states of cancer cell lines, varying in metastatic potential and drug resistance, and use this information to identify drug combinations that inhibit such heterogeneity. Traject3d is therefore an important companion to other single-cell technologies by facilitating real-time identification via live imaging of how distinct states can lead to alternate phenotypes that occur in parallel in 3D culture.
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