基于 DNA 超分子水凝胶的保护性 NK 细胞储库用于增强三阴性乳腺癌治疗
Protective NK Cell Reservoir Based on DNA Supramolecular Hydrogel for Enhanced Triple-Negative Breast Cancer Therapy.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Immune landscape of the tumour microenvironment in Ethiopian breast cancer patients.
Immune landscape of the tumour microenvironment in Ethiopian breast cancer patients.
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免疫基因表达谱分析确定了 TME 的四种不同免疫背景,具有独特的基因表达模式和免疫浸润。划分为不同的免疫亚组可能为预后以及选择接受常规治疗或免疫治疗的患者提供重要信息。
乳腺癌(BC)的临床管理主要基于肿瘤细胞受体表达的评估。然而,对于预后和治疗具有重要价值的新型生物标志物仍存在未满足的需求。肿瘤免疫微环境(TIME)被认为在预后和治疗选择中发挥关键作用,因此本研究旨在描述埃塞俄比亚BC患者中的TIME。
从82名BC女性的福尔马林固定石蜡包埋(FFPE)组织中分离RNA。使用Nanostring平台分析PAM50和54个免疫基因的表达,并使用ROSALIND ® 确定差异表达基因(DEGs)。使用Nanostring的细胞类型分析模块估计不同细胞群的丰度,而TIL(肿瘤浸润淋巴细胞)(TILs)则使用苏木精和伊红(H&E)染色进行分析。此外,使用qPCR对PIK3CA基因的三个热点突变进行基因分型。进行Kaplan-Meier生存分析和log-rank检验,以比较免疫亚组的预后相关性。
通过对免疫基因表达数据进行层次聚类,鉴定出四种离散的免疫表型(IP1-4)。这些IP的特征在于与免疫激活和抑制相关的DEGs以及免疫浸润程度的差异。然而,各IP之间在PIK3CA突变方面没有显著差异。IP2中发现免疫抑制和激活基因的下调以及最低的浸润免疫细胞数量,这与luminal型肿瘤相关。相比之下,IP4显示出活跃的TME,其特征为细胞毒性基因的上调和最高密度的免疫细胞浸润,且不依赖于特定的内在亚型。IP1和IP3表现出中间特征。这些IP具有预后相关性,与大多数免疫基因显著下调的IP相比,具有活跃TME的患者总生存期改善。
The clinical management of breast cancer (BC) is mainly based on the assessment of receptor expression by tumour cells. However, there is still an unmet need for novel biomarkers important for prognosis and therapy. The tumour immune microenvironment (TIME) is thought to play a key role in prognosis and therapy selection, therefore this study aimed to describe the TIME in Ethiopian BC patients.
RNA was isolated from formalin-fixed paraffin-embedded (FFPE) tissue from 82 women with BC. Expression of PAM50 and 54 immune genes was analysed using the Nanostring platform and differentially expressed genes (DEGs) were determined using ROSALIND ® . The abundance of different cell populations was estimated using Nanostring's cell type profiling module, while tumour infiltrating lymphocytes (TILs) were analysed using haematoxylin and eosin (H&E) staining. In addition, the PIK3CA gene was genotyped for three hotspot mutations using qPCR. Kaplan-Meier survival analysis and log-rank test were performed to compare the prognostic relevance of immune subgroups.
Four discrete immune phenotypes (IP1-4) were identified through hierarchical clustering of immune gene expression data. These IPs were characterized by DEGs associated with both immune activation and inhibition as well as variations in the extent of immune infiltration. However, there were no significant differences regarding PIK3CA mutations between the IPs. A downregulation of immune suppressive and activating genes and the lowest number of infiltrating immune cells were found in IP2, which was associated with luminal tumours. In contrast, IP4 displayed an active TME chracterized by an upregulation of cytotoxic genes and the highest density of immune cell infiltrations, independent of the specific intrinsic subtype. IP1 and IP3 exhibited intermediate characteristics. The IPs had a prognostic relevance and patients with an active TME had improved overall survival compared to IPs with a significant downregulation of the majority of immune genes.
Immune gene expression profiling identified four distinct immune contextures of the TME with unique gene expression patterns and immune infiltration. The classification into distinct immune subgroups may provide important information regarding prognosis and the selection of patients undergoing conventional treatments or immunotherapies.
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