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肿瘤微环境的系统层面图谱揭示铂耐药卵巢癌中的免疫介导机制与潜在靶点

英文原题:Systems-Level Mapping of the Tumor Microenvironment Reveals Immune-Mediated Mechanisms and Potential Targets in Platinum-Resistant Ovarian Cancer.

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Systems-Level Mapping of the Tumor Microenvironment Reveals Immune-Mediated Mechanisms and Potential Targets in Platinum-Resistant Ovarian Cancer.

PubMed 2026/07/22(内容时间) Res Sq

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研究概要

这些发现强调了肿瘤微环境组分,特别是巨噬细胞和成纤维细胞,作为卵巢癌耐药的关键贡献因素的重要性,并建立了一个潜在的耐药特征用于生物标志物的发现。

研究思路结论见上方概要

卵巢癌仍然是最致命的妇科癌症,尽管有靶向治疗,患者生存改善有限,且复发率高(约80%)。目前一线治疗的标准方案包括铂类化疗,但耐药克隆的出现限制了长期疗效。现有模型往往忽视癌细胞与其微环境之间的关键相互作用。因此,我们研究了卵巢癌微环境,以识别驱动治疗耐药的细胞群体和标志物。

我们采用多模态系统生物学方法,整合多重免疫组化、bulk RNA测序和单细胞RNA测序来表征卵巢癌微环境。使用ImageJ(mIF)和计算解卷积工具(CIBERSORTx、singleR)对良性(n=6-13)和癌症(n=7-20)样本的细胞类型组成进行定量。通过将单细胞数据映射到临床注释参考来确定铂敏感性。进行差异表达分析和通路富集,以识别良性 vs 癌症以及敏感 vs 耐药表型之间的关键生物学过程。此外,使用组合标志物识别工具(COMET)在sc-RNAseq数据集中确定耐药特征,并使用sc-RNAseq中的拟时序和TCGA-OV bulk-RNAseq队列进行验证。

在不同模态中,结果显示与良性组织相比,癌症组织中巨噬细胞和T细胞标志物表达增加,炎症和免疫通路上调,同时成纤维细胞丰度降低。耐药样本还显示巨噬细胞和成纤维细胞标志物高表达,并富集上皮-间质转化通路,而敏感样本显示T细胞和NK细胞标志物高表达以及免疫通路上调。COMET识别出两种不同的耐药程序:一种是以INHBA、TIMP3和NNMT为特征的上皮-间质转化相关成纤维细胞特征;另一种是以SLPI、MMP7和WFDC2为特征的典型上皮性卵巢癌特征。对TCGA-OV队列bulk数据的耐药特征评分预测,特征评分较高的患者治疗无间隔期较短,评分较低的患者治疗无间隔期较长。

展开英文摘要原文

Ovarian cancer remains the most lethal gynecologic cancer, with limited improvements in patient survival despite targeted therapies and a high recurrence rate (~80%). Current standard-of-care for frontline treatment involves platinum-based chemotherapy, but the emergence of resistant clones limits long-term efficacy. Existing models often overlook critical interactions between cancer cells and their microenvironment. Therefore, we investigated the ovarian cancer microenvironment to identify cell populations and markers driving treatment resistance.

We employed a multi-modal systems biology approach, integrating multiplex immunohistochemistry, bulk, and single-cell RNA sequencing to characterize the ovarian cancer microenvironment. Cell type composition was quantified using ImageJ (mIF) and computational deconvolution tools (CIBERSORTx, singleR) for benign (n=6-13) and cancer (n=7-20) samples. Platinum-sensitivity was determined by mapping single-cell data to a clinically annotated reference. Differential expression analysis and pathway enrichment were performed to identify key biological processes between benign vs cancer and sensitive vs resistant phenotypes. Additionally, a combinatorial marker identification tool (COMET) was used to determine a resistant signature in the sc-RNAseq dataset, which was validated using pseudotime in sc-RNAseq and the TCGA-OV bulk-RNAseq cohort.

Across modalities, results showed an increase in macrophage and T cell marker expression with an upregulation of inflammatory and immune pathways, alongside decreased fibroblast abundance, in cancer compared to benign tissues. Resistant samples also showed high expression of macrophage and fibroblast markers paired with an enrichment of the epithelial-to-mesenchymal transition pathway while sensitive samples showed high expression of T and NK cell markers and the upregulation of immune pathways. COMET identified two distinct resistant programs: an EMT-associated fibroblast signature characterized by INHBA, TIMP3 and NNMT; and a canonical epithelial ovarian cancer signature characterized by SLPI, MMP7, and WFDC2. Resistant signature scoring of bulk data from the TCGA-OV cohort predicted shorter treatment-free intervals for patients with higher signature scores and longer treatment-free intervals for patients with lower scores.

These findings highlight the importance of tumor microenvironment components, particularly macrophages and fibroblasts, as key contributors to resistance in ovarian cancer and establish a potential resistant signature for biomarker discovery.

论文信息

作者
Del Pino Herrera A、Martinez MA、Kim M、El-Bakkouri K、Iglesias DA、Ferrall-Fairbanks MC
单位
J. Crayton Pruitt Family Department of Biomedical Engineering, Herbert Wertheim College of Engineering, University of Florida, Gainesville, FL 32611, Unites States.
文献类型
预印本
期刊
Research square2026 Jul 22
原文标识
PubMed 42539139 · DOI 10.21203/rs.3.rs-10385637/v1