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结合 bulk 和 scRNA-seq 探索调控 PDAC 中巨噬细胞亚群不同 efferocytosis 活性的分子机制

英文原题:Combining bulk and scRNA-seq to explore the molecular mechanisms governing the distinct efferocytosis activities of a macrophage subpopulation in PDAC.

查看英文原题

Combining bulk and scRNA-seq to explore the molecular mechanisms governing the distinct efferocytosis activities of a macrophage subpopulation in PDAC.

PubMed 2024/04/01(内容时间) J Cell Mol Med Q2 · IF 4.7(JCR 2025)

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中文摘要

胰腺导管腺癌(PDAC)是一种极具侵袭性的肿瘤,目前是癌症相关死亡的第三大原因。遗憾的是,许多患者在诊断阶段即面临无法手术的问题,导致预后相当差。转移过程的发生在PDAC相关的高死亡率中起着关键作用。出现转移进展的患者仅能接受姑息治疗,预后严峻。仔细分析转移过程的复杂性对于改善PDAC患者的预后至关重要。巨噬细胞胞葬作用对恶性肿瘤的发展有重大影响。目前我们对巨噬细胞胞葬作用在PDAC中的全部活动范围及其与肿瘤细胞之间复杂相互作用的了解仍然有限。

本研究旨在弥合通讯方面的空白,并确定在巨噬细胞群体免疫应答中起关键作用的重要转录因子。我们分析了来自gene expression omnibus的8例PDAC组织样本。

我们利用R软件中的Seurat、DoubletFinder、Harmony、Pi、GSVA、CellChat和Monocle等多个软件包,以及Python中的pySCENIC,对从PDAC样本收集的单细胞RNA测序(scRNA-seq)数据进行了分析。

本研究分析了共22,124个细胞的综合样本,将其划分为不同的细胞类型。这些细胞类型包括内皮细胞和上皮细胞、PDAC细胞,以及多种免疫细胞,包括CD4+ T细胞、CD8+ T细胞、NK细胞、B细胞、浆细胞、肥大细胞、单核细胞、DC细胞和不同亚型的巨噬细胞,即C0巨噬细胞TGM2+、C1巨噬细胞PFN1+、C2巨噬细胞GAS6+和C3巨噬细胞APOC3+。通过实施CopyKat分析,实现了肿瘤细胞与上皮细胞的区分,从而检测并分类了1941个PDAC细胞。在PDAC细胞中观察到的多条染色体上的扩增/缺失模式与上皮细胞中观察到的模式存在显著差异。拟时序轨迹分析表明,表达TGM2+的C0巨噬细胞亚型分化水平最低。

此外,对与胞葬作用相关的基因集评分的检查表明,与其他亚型相比,该亚型在胞葬过程中表现出更高的活性。每种巨噬细胞亚型最活跃的转录因子被鉴定为BACH1、NFE2、TEAD4和ARID3A。

总之,使用免疫荧光分析对人类PDAC组织样本的检查表明,CD68和CD11b在存在角蛋白(KRT)和α-平滑肌肌动蛋白(α-SMA)的区域中共定位。这一观察结果暗示巨噬细胞、成纤维细胞和上皮细胞之间存在空间关联。C0巨噬细胞TGM2+与其他巨噬细胞类型之间胞葬作用相关基因的表达存在差异。这一观察结果暗示巨噬细胞的多样性可能潜在影响PDAC的转移进展。

此外,不同巨噬细胞亚型的核心转录因子为PDAC治疗中的靶向免疫治疗提供了有前景的机会。

展开英文摘要原文

Pancreatic ductal adenocarcinoma (PDAC), a very aggressive tumour, is currently the third leading cause of cancer-related deaths. Unfortunately, many patients face the issue of inoperability at the diagnostic phase leading to a quite dismal prognosis. The onset of metastatic processes has a crucial role in the elevated mortality rates linked to PDAC.

Individuals with metastatic advances receive only palliative therapy and have a grim prognosis. It is essential to carefully analyse the intricacies of the metastatic process to enhance the prognosis for individuals with PDAC. Malignancy development is greatly impacted by the process of macrophage efferocytosis.

Our current knowledge about the complete range of macrophage efferocytosis activities in PDAC and their intricate interactions with tumour cells is still restricted. This work aims to resolve communication gaps and pinpoint the essential transcription factor that is vital in the immunological response of macrophage populations.

We analysed eight PDAC tissue samples sourced from the gene expression omnibus.

We utilized several software packages such as Seurat, DoubletFinder, Harmony, Pi, GSVA, CellChat and Monocle from R software together with pySCENIC from Python, to analyse the single-cell RNA sequencing (scRNA-seq) data collected from the PDAC samples.

This study involved the analysis of a comprehensive sample of 22,124 cells, which were classified into distinct cell types. These cell types encompassed endothelial and epithelial cells, PDAC cells, as well as various immune cells, including CD4+ T cells, CD8+ T cells, NK cells, B cells, plasma cells, mast cells, monocytes, DC cells and different subtypes of macrophages, namely C0 macrophage TGM2+, C1 macrophage PFN1+, C2 macrophage GAS6+ and C3 macrophage APOC3+.

The differentiation between tumour cells and epithelial cells was achieved by the implementation of CopyKat analysis, resulting in the detection and categorization of 1941 PDAC cells. The amplification/deletion patterns observed in PDAC cells on many chromosomes differ significantly from those observed in epithelial cells. The study of Pseudotime Trajectories demonstrated that the C0 macrophage subtype expressing TGM2+ had the lowest level of differentiation.

Additionally, the examination of gene set scores related to efferocytosis suggested that this subtype displayed higher activity during the efferocytosis process compared to other subtypes. The most active transcription factors for each macrophage subtype were identified as BACH1, NFE2, TEAD4 and ARID3A.

In conclusion, the examination of human PDAC tissue samples using immunofluorescence analysis demonstrated the co-localization of CD68 and CD11b within regions exhibiting the presence of keratin (KRT) and alpha-smooth muscle actin (α-SMA). This observation implies a spatial association between macrophages, fibroblasts, and epithelial cells.

There is variation in the expression of efferocytosis-associated genes between C0 macrophage TGM2+ and other macrophage cell types. This observation implies that the diversity of macrophage cells might potentially influence the metastatic advancement of PDAC.

Moreover, the central transcription factor of different macrophage subtypes offers a promising opportunity for targeted immunotherapy in the treatment of PDAC.

论文信息

作者
Zhu S、Cheng Q、Zou M、Li C、Tang Y、Xia L、Jiang Y、Gong Z
单位
Department of Hepatobiliary, Pancreas and Spleen Surgery, The People's Hospital of Guangxi Zhuang Autonomous Region, Guangxi Academy of Medical Sciences, Nanning, China.China
文献类型
非美国政府资助研究
期刊
Journal of cellular and molecular medicine2024 Apr
原文标识
PubMed 38501838 · DOI 10.1111/jcmm.18266