Nie Rui, Zheng Caihong, Ren Likun, Teng Yue, Sun Yaoyu, Wang Lifei, Li Junya, Cai Jun
Chinese Academy of Sciences and China National Center for Bioinformation, Beijing, 100101, China.
University of Chinese Academy of Sciences, Beijing, 100049, China.
Adv Sci (Weinh). 2025 Aug;12(29):e05823. doi: 10.1002/advs.202505823. Epub 2025 May 28.
Cell cycle structures vary significantly across cell types, which exhibit distinct phase compositions. Asynchronous DNA replication and dynamic cellular characteristics during the cell cycle result in considerable heterogeneity in DNA dosage, chromatin accessibility, methylation, and expression. Nonetheless, the consequences of cell cycle disruption in the interpretation of multi-omics data remain unclear. Here, we systematically assessed the influence of distinct cell phase structures on the interpretation of omics features in proliferating cells, and proposed solutions for each omics dataset. For copy number variation (CNV) calling, asynchronous replication timing (RT) interference induces false CNVs in cells with high S-phase ratio (SPR), which are significantly decreased following replication timing domain (RTD) correction. Similar noise is observed in the chromatin accessibility data. Moreover, for DNA methylation and transcriptomic analyses, cell cycle-sorted data outperformed direct comparison in elucidating the biological features of compared cells. Additionally, we established an integrated pipeline to identify differentially expressed genes (DEGs) after cell cycle phasing. Consequently, our study demonstrated extensive cell-cycle heterogeneity, warranting consideration in future studies involving cells with diverse cell-cycle structures. RTD correction or phase-specific comparison could reduce the influence of cell cycle composition on the analysis of the differences observed between stem and differentiated cells.
细胞周期结构在不同细胞类型中差异显著,这些细胞类型呈现出不同的阶段组成。细胞周期中异步DNA复制和动态细胞特征导致DNA剂量、染色质可及性、甲基化和表达方面存在相当大的异质性。然而,细胞周期破坏对多组学数据解释的影响仍不清楚。在这里,我们系统地评估了不同细胞阶段结构对增殖细胞中组学特征解释的影响,并针对每个组学数据集提出了解决方案。对于拷贝数变异(CNV)的检测,异步复制时间(RT)干扰会在S期比例(SPR)高的细胞中诱导假CNV,而在复制时间域(RTD)校正后,这些假CNV会显著减少。在染色质可及性数据中也观察到类似的噪声。此外,对于DNA甲基化和转录组分析,细胞周期分选的数据在阐明比较细胞的生物学特征方面优于直接比较。此外,我们建立了一个综合流程来识别细胞周期分期后的差异表达基因(DEG)。因此,我们的研究证明了广泛的细胞周期异质性,这在未来涉及具有不同细胞周期结构的细胞的研究中值得考虑。RTD校正或阶段特异性比较可以减少细胞周期组成对干细胞和分化细胞之间差异分析的影响。