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scTOP:用于细胞识别和可视化的受物理启发的秩序参数。

scTOP: physics-inspired order parameters for cellular identification and visualization.

机构信息

Department of Physics, Boston University, Boston, MA 02215, USA.

Center for Regenerative Medicine of Boston University and Boston Medical Center, Boston, MA 02118, USA.

出版信息

Development. 2023 Nov 1;150(21). doi: 10.1242/dev.201873. Epub 2023 Nov 3.

Abstract

Advances in single-cell RNA sequencing provide an unprecedented window into cellular identity. The abundance of data requires new theoretical and computational frameworks to analyze the dynamics of differentiation and integrate knowledge from cell atlases. We present 'single-cell Type Order Parameters' (scTOP): a statistical, physics-inspired approach for quantifying cell identity given a reference basis of cell types. scTOP can accurately classify cells, visualize developmental trajectories and assess the fidelity of engineered cells. Importantly, scTOP does this without feature selection, statistical fitting or dimensional reduction (e.g. uniform manifold approximation and projection, principle components analysis, etc.). We illustrate the power of scTOP using human and mouse datasets. By reanalyzing mouse lung data, we characterize a transient hybrid alveolar type 1/alveolar type 2 cell population. Visualizations of lineage tracing hematopoiesis data using scTOP confirm that a single clone can give rise to multiple mature cell types. We assess the transcriptional similarity between endogenous and donor-derived cells in the context of murine pulmonary cell transplantation. Our results suggest that physics-inspired order parameters can be an important tool for understanding differentiation and characterizing engineered cells. scTOP is available as an easy-to-use Python package.

摘要

单细胞 RNA 测序的进展为细胞身份提供了前所未有的窗口。大量的数据需要新的理论和计算框架来分析分化的动态,并整合细胞图谱的知识。我们提出了“单细胞类型序参数”(scTOP):一种基于参考细胞类型的统计物理学方法,用于量化细胞身份。scTOP 可以准确地对细胞进行分类,可视化发育轨迹,并评估工程细胞的保真度。重要的是,scTOP 无需特征选择、统计拟合或降维(例如均匀流形逼近和投影、主成分分析等)。我们使用人类和小鼠数据集说明了 scTOP 的强大功能。通过重新分析小鼠肺数据,我们描述了一种短暂的混合肺泡 1 型/肺泡 2 型细胞群体。使用 scTOP 对谱系追踪造血数据的可视化确认了单个克隆可以产生多种成熟的细胞类型。我们评估了在小鼠肺细胞移植背景下内源性和供体衍生细胞之间的转录相似性。我们的结果表明,受物理学启发的序参数可以成为理解分化和表征工程细胞的重要工具。scTOP 作为一个易于使用的 Python 包提供。

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