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Wishbone identifies bifurcating developmental trajectories from single-cell data

机译:汉语识别单细胞数据的分叉发展轨迹

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Recent single-cell analysis technologies offer an unprecedented opportunity to elucidate developmental pathways. Here we present Wishbone, an algorithm for positioning single cells along bifurcating developmental trajectories with high resolution. Wishbone uses multi-dimensional single-cell data, such as mass cytometry or RNA-Seq data, as input and orders cells according to their developmental progression, and it pinpoints bifurcation points by labeling each cell as pre-bifurcation or as one of two post-bifurcation cell fates. Using 30-channel mass cytometry data, we show that Wishbone accurately recovers the known stages of T-cell development in the mouse thymus, including the bifurcation point. We also apply the algorithm to mouse myeloid differentiation and demonstrate its generalization to additional lineages. A comparison of Wishbone to diffusion maps, SCUBA and Monocle shows that it outperforms these methods both in the accuracy of ordering cells and in the correct identification of branch points.
机译:最近的单细胞分析技术为阐明发展途径提供了前所未有的机会。在这里,我们呈现汉币,一种用于沿着高分辨率的分叉分叉的分叉定位单个细胞的算法。汉语使用多维单细胞数据,例如质量细胞测定法或RNA-SEQ数据,作为根据其发育进展的输入和订单细胞,并且通过将每个单元标记为预分叉或作为两个柱中的一个来定位分叉点。 - 纤维化细胞命名。使用30通道质量细胞仪数据,我们表明汉代精确地恢复小鼠胸腺中T细胞发育的已知阶段,包括分叉点。我们还将算法应用于鼠标髓样差异,并证明其向附加谱系的概括。对于扩散图的汉语与扩散图的比较,Scuba和Monocle表明它既优于订购细胞的准确性,也以正确的分支点的正确识别表达这些方法。

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