Dissecting the Single-Cell Diversity and Heterogeneity Underlying Cervical Precancerous Lesions and Cancer Tissues.

IF 2.6 3区 医学 Q2 OBSTETRICS & GYNECOLOGY
Reproductive Sciences Pub Date : 2025-05-01 Epub Date: 2024-10-01 DOI:10.1007/s43032-024-01695-5
Yanling Han, Lu Shi, Nan Jiang, Jiamin Huang, Xiuzhi Jia, Bo Zhu
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Abstract

The underlying cellular diversity and heterogeneity from cervix precancerous lesions to cervical squamous cell carcinoma (CSCC) is investigated. Four single-cell datasets including normal tissues, normal adjacent tissues, precancerous lesions, and cervical tumors were integrated to perform disease stage analysis. Single-cell compositional data analysis (scCODA) was utilized to reveal the compositional changes of each cell type. Differentially expressed genes (DEGs) among cell types were annotated using BioCarta. An assay for transposase-accessible chromatin sequencing (ATAC-seq) analysis was performed to correlate epigenetic alterations with gene expression profiles. Lastly, a logistic regression model was used to assess the similarity between the original and new cohort data (HRA001742). After global annotation, seven distinct cell types were categorized. Eight consensus-upregulated DEGs were identified in B cells among different disease statuses, which could be utilized to predict the overall survival of CSCC patients. Inferred copy number variation (CNV) analysis of epithelial cells guided disease progression classification. Trajectory and ATAC-seq integration analysis identified 95 key transcription factors (TF) and one immunohistochemistry (IHC) testified key-node TF (YY1) involved in epithelial cells from CSCC initiation to progression. The consistency of epithelial cell subpopulation markers was revealed with single-cell sequencing, bulk sequencing, and RT-qPCR detection. KRT8 and KRT15, markers of Epi6, showed progressively higher expression with disease progression as revealed by IHC detection. The logistic regression model testified the robustness of the resemblance of clusters among the various datasets utilized in this study. Valuable insights into CSCC cellular diversity and heterogeneity provide a foundation for future targeted therapy.

剖析宫颈癌前病变和癌症组织的单细胞多样性和异质性
研究了从宫颈癌前病变到宫颈鳞状细胞癌(CSCC)的潜在细胞多样性和异质性。整合了四个单细胞数据集,包括正常组织、正常邻近组织、癌前病变和宫颈肿瘤,以进行疾病分期分析。利用单细胞成分数据分析(scCODA)揭示了每种细胞类型的成分变化。细胞类型间的差异表达基因(DEGs)用 BioCarta 进行了注释。为了将表观遗传学改变与基因表达谱相关联,进行了转座酶可获得染色质测序(ATAC-seq)分析。最后,利用逻辑回归模型评估了原始队列数据与新队列数据(HRA001742)之间的相似性。全局注释后,七种不同的细胞类型被归类。在不同疾病状态的B细胞中发现了8个一致上调的DEGs,这些DEGs可用于预测CSCC患者的总生存率。上皮细胞的推断拷贝数变异(CNV)分析为疾病进展分类提供了指导。轨迹和ATAC-seq整合分析确定了95个关键转录因子(TF)和一个经免疫组化(IHC)检验的关键节点TF(YY1),它们参与了CSCC上皮细胞从起始到进展的整个过程。单细胞测序、批量测序和 RT-qPCR 检测显示了上皮细胞亚群标记的一致性。通过 IHC 检测发现,Epi6 的标记物 KRT8 和 KRT15 在疾病进展过程中的表达量逐渐升高。逻辑回归模型证明了本研究中使用的各种数据集之间的聚类相似性的稳健性。对 CSCC 细胞多样性和异质性的宝贵见解为未来的靶向治疗奠定了基础。
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来源期刊
Reproductive Sciences
Reproductive Sciences 医学-妇产科学
CiteScore
5.50
自引率
3.40%
发文量
322
审稿时长
4-8 weeks
期刊介绍: Reproductive Sciences (RS) is a peer-reviewed, monthly journal publishing original research and reviews in obstetrics and gynecology. RS is multi-disciplinary and includes research in basic reproductive biology and medicine, maternal-fetal medicine, obstetrics, gynecology, reproductive endocrinology, urogynecology, fertility/infertility, embryology, gynecologic/reproductive oncology, developmental biology, stem cell research, molecular/cellular biology and other related fields.
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