Integrated Analysis of Single-Cell and Bulk RNA-Sequencing Based on EcoTyper Machine Learning Framework Identifies Cell-State-Specific M2 Macrophage Markers Associated with Gastric Cancer Prognosis.

IF 6.2 Q1 IMMUNOLOGY
ImmunoTargets and Therapy Pub Date : 2024-12-11 eCollection Date: 2024-01-01 DOI:10.2147/ITT.S490075
A-Kao Zhu, Guang-Yao Li, Fang-Ci Chen, Jia-Qi Shan, Yu-Qiang Shan, Chen-Xi Lv, Zhi-Qiang Zhu, Yi-Ren He, Lu-Lu Zhai
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引用次数: 0

Abstract

Background: Tumor is a complex and dynamic ecosystem formed by the interaction of numerous diverse cells types and the microenvironments they inhabit. Determining how cellular states change and develop distinct cellular communities in response to the tumor microenvironment is critical to understanding cancer progression. Tumour-associated macrophages (TAMs) are an important component of the tumour microenvironment and play a crucial role in cancer progression. This study was designed to identify cell-state-specific M2 macrophage markers associated with gastric cancer (GC) prognosis through integrative analysis of single-cell RNA sequencing (scRNA-seq) and bulk RNA-seq data using a machine learning framework named EcoTyper.

Results: The results showed that TAMs were classified into M1 macrophages, M2 macrophages, monocytes, undefined macrophages and dendritic cells, with M2 macrophages predominating. EcoTyper assigned macrophages to different cell states and ecotypes. A total of 168 cell-state-specific M2 macrophage markers were obtained by integrative analysis of scRNA-seq and bulk RNA-seq data. These markers could categorize GC patients into two clusters (clusters A and B) with different survival and M2 macrophages infiltration abundance. Cell adhesion molecules, cytokine-cytokine receptor interaction, JAK/STAT pathway, MAPK pathway were significantly enriched in cluster A, which had worse survival and higher M2 macrophages infiltration.

Conclusion: In conclusion, this study profiles a single-cell atlas of intratumor heterogeneity and defines the cell states and ecotypes of TAMs in GC. Furthermore, we have identified prognostically relevant cell-state-specific M2 macrophage markers. These findings provide novel insights into the tumor ecosystem and cancer progression.

基于EcoTyper机器学习框架的单细胞和整体rna测序综合分析鉴定与胃癌预后相关的细胞状态特异性M2巨噬细胞标志物
背景:肿瘤是一个复杂的、动态的生态系统,由众多不同类型的细胞及其所处的微环境相互作用而形成。确定细胞状态如何改变和发展不同的细胞群落以响应肿瘤微环境是了解癌症进展的关键。肿瘤相关巨噬细胞(tam)是肿瘤微环境的重要组成部分,在癌症进展中起着至关重要的作用。本研究旨在利用EcoTyper机器学习框架,通过对单细胞RNA测序(scRNA-seq)和大量RNA-seq数据的综合分析,鉴定与胃癌(GC)预后相关的细胞状态特异性M2巨噬细胞标志物。结果:tam分为M1巨噬细胞、M2巨噬细胞、单核细胞、未定义巨噬细胞和树突状细胞,以M2巨噬细胞为主。EcoTyper将巨噬细胞分配到不同的细胞状态和生态型。通过对scRNA-seq和大量RNA-seq数据的整合分析,共获得168个细胞状态特异性M2巨噬细胞标志物。这些标志物可以将GC患者分为A、B两类,分别具有不同的生存期和M2巨噬细胞浸润丰度。细胞粘附分子、细胞因子-细胞因子受体相互作用、JAK/STAT通路、MAPK通路在集群A中显著富集,存活较差,M2巨噬细胞浸润较高。结论:总之,本研究绘制了肿瘤内异质性的单细胞图谱,并确定了GC中tam的细胞状态和生态型。此外,我们已经确定了与预后相关的细胞状态特异性M2巨噬细胞标志物。这些发现为肿瘤生态系统和癌症进展提供了新的见解。
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来源期刊
CiteScore
16.50
自引率
0.00%
发文量
7
审稿时长
16 weeks
期刊介绍: Immuno Targets and Therapy is an international, peer-reviewed open access journal focusing on the immunological basis of diseases, potential targets for immune based therapy and treatment protocols employed to improve patient management. Basic immunology and physiology of the immune system in health, and disease will be also covered.In addition, the journal will focus on the impact of management programs and new therapeutic agents and protocols on patient perspectives such as quality of life, adherence and satisfaction.
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