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整合单细胞和批量 RNA 测序方法识别线粒体自噬相关基因特征:在前列腺癌预后和治疗分层中的意义

英文原题:An Integrated Approach Utilizing Single-Cell and Bulk RNA-Sequencing for the Identification of a Mitophagy-Associated Genes Signature: Implications for Prognostication and Therapeutic Stratification in Prostate Cancer.

查看英文原题

An Integrated Approach Utilizing Single-Cell and Bulk RNA-Sequencing for the Identification of a Mitophagy-Associated Genes Signature: Implications for Prognostication and Therapeutic Stratification in Prostate Cancer.

PubMed 2025/01/27(内容时间) Biomedicines Q2 · IF 4.5(JCR 2025)

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中文摘要

我们使用了来自 GEO 和 TCGA 数据库的单细胞和 bulk RNA 测序数据。我们在单细胞水平上表征了肿瘤微环境,分析细胞相互作用并鉴定与线粒体自噬相关的成纤维细胞。在 bulk 转录组水平上缩小靶基因范围,以构建 PARD 预后预测列线图。无监督共识聚类将 PARD 分为亚型,分析临床特征、免疫浸润和免疫治疗的差异。此外,在体外验证了目标基因的细胞功能。

我们鉴定了十种细胞类型和 160 个线粒体自噬相关单细胞差异表达基因(MR-scDEGs)。在成纤维细胞、内皮细胞、CD8 + T 细胞和 NK 细胞之间观察到强相互作用。与线粒体自噬相关的成纤维细胞被分为六个亚型。将三个 bulk 数据集的 DEGs 与 MR-scDEGs 取交集,鉴定出 26 个关键基因,聚类为两个亚组。COX 回归分析鉴定出七个预后关键基因,从而能够建立预后列线图模型。高风险组和低风险组在临床特征、免疫浸润、免疫治疗和药物敏感性方面显示出显著差异。在前列腺癌细胞系中,CAV1、PALLD 和 ITGB8 上调,而 CLDN7 下调。敲低PALLD显著抑制PC3和DU145细胞的增殖和集落形成能力,提示该基因在前列腺癌进展中具有重要作用。

本研究分析了PARD中的线粒体自噬相关基因,预测预后并辅助亚型鉴定和免疫治疗反应分析。该方法为治疗具有特定分子亚型的前列腺癌提供了新策略,并有助于开发用于个性化医疗策略的潜在生物标志物。

展开英文摘要原文

Introduction : Prostate cancer, notably prostate adenocarcinoma (PARD), has high incidence and mortality rates. Although typically resistant to immunotherapy, recent studies have found immune targets for prostate cancer. Stratifying patients by molecular subtypes may identify those who could benefit from immunotherapy. Methods : We used single-cell and bulk RNA sequencing data from GEO and TCGA databases.

We characterized the tumor microenvironment at the single-cell level, analyzing cell interactions and identifying fibroblasts linked to mitophagy. Target genes were narrowed down at the bulk transcriptome level to construct a PARD prognosis prediction nomogram. Unsupervised consensus clustering classified PARD into subtypes, analyzing differences in clinical features, immune infiltration, and immunotherapy.

Furthermore, the cellular functions of the genes of interest were verified in vitro. Results : We identified ten cell types and 160 mitophagy-related single-cell differentially expressed genes (MR-scDEGs). Strong interactions were observed between fibroblasts, endothelial cells, CD8 + T cells, and NK cells. Fibroblasts linked to mitophagy were divided into six subtypes. Intersection of DEGs from three bulk datasets with MR-scDEGs identified 26 key genes clustered into two subgroups. COX regression analysis identified seven prognostic key genes, enabling a prognostic nomogram model. High and low-risk groups showed significant differences in clinical features, immune infiltration, immunotherapy, and drug sensitivity.

In prostate cancer cell lines, CAV1, PALLD, and ITGB8 are upregulated, while CLDN7 is downregulated. Knockdown of PALLD significantly inhibits the proliferation and colony-forming ability of PC3 and DU145 cells, suggesting the important roles of this gene in prostate cancer progression.

Conclusions : This study analyzed mitophagy-related genes in PARD, predicting prognosis and aiding in subtype identification and immunotherapy response analysis. This approach offers new strategies for treating prostate cancer with specific molecular subtypes and helps develop potential biomarkers for personalized medicine strategies.

论文信息

作者
Zhang Y、Ding L、Zhang Z、Shen L、Guo Y、Zhang W、Yu Y、Gu Z
单位
Department of Urology, Shanghai Tenth People’s Hospital, School of Medicine, Tongji University, 301 Middle Yan Chang Road, Shanghai 200072, China.China
期刊
Biomedicines2025 Jan 27
原文标识
PubMed 40002724 · DOI 10.3390/biomedicines13020311