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胃癌中 m6A 相关 lncRNAs 的肿瘤免疫微环境综合分析与预后评估。

Comprehensive analysis of tumor immune microenvironment and prognosis of m6A-related lncRNAs in gastric cancer.

机构信息

Department of Radiology, Zhongshan Hospital, Fudan University, Shanghai Institute of Medical Imaging, Xuhui District, Shanghai, 200032, China.

Department of Liver Surgery and Transplantation, Liver Cancer Institute, Zhongshan Hospital, Fudan University, Shanghai, 200032, China.

出版信息

BMC Cancer. 2022 Mar 24;22(1):316. doi: 10.1186/s12885-022-09377-8.

Abstract

BACKGROUND

N6-methyladenosine (m6A) modification and long non-coding RNAs (lncRNAs) play pivotal roles in gastric cancer (GC) progression. The emergence of immunotherapy in GC has created a paradigm shift in the approaches of treatment, whereas there is significant heterogeneity with regard to degree of treatment responses, which results from the variability of tumor immune microenvironment (TIME). How the interplay between m6A and lncRNAs enrolling in the shaping of TIME remains unclear.

METHODS

The RNA sequencing and clinical data of GC patients were collected from TCGA database. Pearson correlation test and univariate Cox analysis were used to screen out m6A-related lncRNAs. Consensus clustering method was implemented to classify GC patients into two clusters. Survival analysis, the infiltration level of immune cells, Gene set enrichment analysis (GSEA) and the mutation profiles were analyzed and compared between two clusters. A competing endogenous RNA (ceRNA) network and Kyoto Encyclopedia of Genes and Genomes (KEGG) pathway analysis were applied for the identification of pathways in which m6A-related lncRNAs enriched. Then least absolute shrinkage and selection operator (LASSO) COX regression was implemented to select pivotal lncRNAs, and risk model was constructed accordingly. The prognosis value of the risk model was explored. In addition, the response to immune checkpoint inhibitors (ICIs) therapy were compared between different risk groups. Finally, we performed qRT-PCR to detect expression patterns of the selected lncRNAs in the 35 tumor tissues and their paired adjacent normal tissues, and validated the prognostic value of risk model in our cohort (N = 35).

RESULTS

The expression profiles of 15 lncRNAs were included to cluster patients into 2 subtypes. Cluster1 with worse prognosis harbored higher immune score, stromal score, ESTIMATE score and lower mutation rates of the genes. Different immune cell infiltration patterns were also displayed between the two clusters. GSEA showed that cluster1 preferentially enriched in tumor hallmarks and tumor-related biological pathways. KEGG pathway analysis found that the target mRNAs which m6A-related lncRNAs regulated by sponging miRNAs mainly enriched in vascular smooth muscle contraction, cAMP signaling pathway and cGMP-PKG signaling pathway. Next, eight lncRNAs were selected by LASSO regression algorithm to construct risk model. Patients in the high-risk group had poor prognoses, which were consistent in our cohort. As for predicting responses to ICIs therapy, patients from high-risk group were found to have lower tumor mutation burden (TMB) scores and account for large proportion in the Microsatellite Instability-Low (MSI-L) subtype. Moreover, patients had distinct immunophenoscores in different risk groups.

CONCLUSION

Our study revealed that the interplay between m6A modification and lncRNAs might have critical role in predicting GC prognosis, sculpting TIME landscape and predicting the responses to ICIs therapy.

摘要

背景

N6-甲基腺苷(m6A)修饰和长非编码 RNA(lncRNA)在胃癌(GC)进展中发挥着关键作用。免疫疗法在 GC 中的出现改变了治疗方法,然而,由于肿瘤免疫微环境(TIME)的异质性,治疗反应的程度存在显著差异。m6A 与参与塑造 TIME 的 lncRNA 之间的相互作用尚不清楚。

方法

从 TCGA 数据库中收集 GC 患者的 RNA 测序和临床数据。采用 Pearson 相关检验和单因素 Cox 分析筛选出 m6A 相关 lncRNA。采用共识聚类方法将 GC 患者分为两个亚群。对两个亚群进行生存分析、免疫细胞浸润水平、基因集富集分析(GSEA)和突变谱分析比较。应用竞争性内源性 RNA(ceRNA)网络和京都基因与基因组百科全书(KEGG)通路分析鉴定 m6A 相关 lncRNA 富集的通路。然后采用最小绝对收缩和选择算子(LASSO)COX 回归筛选关键 lncRNA,并构建相应的风险模型。探讨风险模型的预后价值。此外,比较不同风险组之间对免疫检查点抑制剂(ICIs)治疗的反应。最后,我们采用 qRT-PCR 检测 35 例肿瘤组织及其配对的相邻正常组织中选定 lncRNA 的表达模式,并在我们的队列(N=35)中验证风险模型的预后价值。

结果

将 15 个 lncRNA 的表达谱纳入聚类患者为 2 个亚群。预后较差的簇 1 具有更高的免疫评分、基质评分、ESTIMATE 评分和更低的基因突变率。两个亚群之间还显示出不同的免疫细胞浸润模式。GSEA 显示簇 1 优先富集于肿瘤特征和肿瘤相关的生物学途径。KEGG 通路分析发现,m6A 相关 lncRNA 调控靶 mRNAs 主要富集于血管平滑肌收缩、cAMP 信号通路和 cGMP-PKG 信号通路。接下来,采用 LASSO 回归算法筛选出 8 个 lncRNA 构建风险模型。高风险组患者预后不良,在我们的队列中也一致。在预测 ICIs 治疗反应方面,高风险组患者的肿瘤突变负担(TMB)评分较低,并且在微卫星不稳定低(MSI-L)亚型中占很大比例。此外,不同风险组患者的免疫表型评分也不同。

结论

本研究表明,m6A 修饰与 lncRNA 之间的相互作用可能在预测 GC 预后、塑造 TIME 景观和预测 ICIs 治疗反应方面具有重要作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ca33/8943990/a6854d33739c/12885_2022_9377_Fig1_HTML.jpg

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