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首页> 外文期刊>BMC Bioinformatics >PhyliCS: a Python library to explore scCNA data and quantify spatial tumor heterogeneity
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PhyliCS: a Python library to explore scCNA data and quantify spatial tumor heterogeneity

机译:文学:一种探索SCCNA数据和量化空间肿瘤异质性的Python库

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Tumors are composed by a number of cancer cell subpopulations (subclones), characterized by a distinguishable set of mutations. This phenomenon, known as intra-tumor heterogeneity (ITH), may be studied using Copy Number Aberrations (CNAs). Nowadays ITH can be assessed at the highest possible resolution using single-cell DNA (scDNA) sequencing technology. Additionally, single-cell CNA (scCNA) profiles from multiple samples of the same tumor can in principle be exploited to study the spatial distribution of subclones within a tumor mass. However, since the technology required to generate large scDNA sequencing datasets is relatively recent, dedicated analytical approaches are still lacking. We present PhyliCS, the first tool which exploits scCNA data from multiple samples from the same tumor to estimate whether the different clones of a tumor are well mixed or spatially separated. Starting from the CNA data produced with third party instruments, it computes a score, the Spatial Heterogeneity score, aimed at distinguishing spatially intermixed cell populations from spatially segregated ones. Additionally, it provides functionalities to facilitate scDNA analysis, such as feature selection and dimensionality reduction methods, visualization tools and a flexible clustering module. PhyliCS represents a valuable instrument to explore the extent of spatial heterogeneity in multi-regional tumour sampling, exploiting the potential of scCNA data.
机译:肿瘤由许多癌细胞亚群(亚克酮)组成,其特征在于可区分的突变。可以使用拷贝数像差(CNA)来研究这种已知肿瘤内异质性(ITH)的这种现象。如今,可以使用单细胞DNA(SCDNA)测序技术以最高的分辨率评估。另外,来自同一肿瘤的多个样品的单细胞CNA(SCCNA)曲线原则上可以被利用以研究肿瘤质量内亚克隆的空间分布。然而,由于生成大型SCDNA测序数据集所需的技术相对较近,仍然缺乏专用的分析方法。我们呈现文学,第一工具从同一肿瘤中利用来自多个样品的SCCNA数据来估计肿瘤的不同克隆是否在混合或空间上分离。从第三方仪器产生的CNA数据开始,它计算得分,空间异质性得分,旨在区分空间混合的细胞群从空间隔离的细胞群。此外,它提供了促进SCDNA分析的功能,例如特征选择和维度减少方法,可视化工具和灵活的聚类模块。文学是一种有价值的仪器,用于探讨多区域肿瘤采样中的空间异质性程度,利用SCCNA数据的潜力。

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