Identification of a chemoresistance-related prognostic gene signature by comprehensive analysis and experimental validation in pancreatic cancer

被引:9
作者
Chen, Junliang [1 ]
Liu, Zhihao [1 ]
Wu, Zhiyuan [1 ]
Li, Wenjun [1 ]
Tan, Xiaodong [1 ]
机构
[1] China Med Univ, Shengjing Hosp, Dept Gen Surg, Shenyang, Liaoning, Peoples R China
基金
中国国家自然科学基金;
关键词
pancreatic cancer; chemoresistance; gemcitabine; prognosis; immunotherapy; tumor microenvironment; tumor mutation burden; TUMOR MUTATIONAL BURDEN; PLUS GEMCITABINE; ONCOGENIC KRAS; CELLS; EXPRESSION; REVEAL; ERAP2;
D O I
10.3389/fonc.2023.1132424
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
BackgroundChemoresistance is a major hurdle to improving the prognosis of pancreatic cancer (PC). This study aimed to identify key genes regulating chemoresistance and develop a chemoresistance-related gene signature for prognosis prediction. MethodsA total of 30 PC cell lines were subtyped according to gemcitabine sensitivity data from the Cancer Therapeutics Response Portal (CTRP v2). Differentially expressed genes (DEGs) between gemcitabine-resistant and gemcitabine-sensitive cells were subsequently identified. These upregulated DEGs associated with prognostic values were incorporated to build a LASSO Cox risk model for The Cancer Genome Atlas (TCGA) cohort. Four datasets (GSE28735, GSE62452, GSE85916, and GSE102238) from the Gene Expression Omnibus (GEO) were used as an external validation cohort. Then, a nomogram was developed based on independent prognostic factors. The responses to multiple anti-PC chemotherapeutics were estimated by the "oncoPredict" method. Tumor mutation burden (TMB) was calculated using the "TCGAbiolinks" package. Analysis of the tumor microenvironment (TME) was performed using the "IOBR" package, while the TIDE and "easier" algorithms were employed to estimate immunotherapy efficacy. Finally, RT-qPCR, Western blot and CCK-8 assays were conducted to validate the expression and functions of ALDH3B1 and NCEH1. ResultsA five-gene signature and a predictive nomogram were developed from six prognostic DEGs, including EGFR, MSLN, ERAP2, ALDH3B1, and NCEH1. Bulk and single-cell RNA sequencing analyses indicated that all five genes were highly expressed in tumor samples. This gene signature was not only an independent prognostic factor but also a biomarker forecasting chemoresistance, TMB, and immune cells. In vitro experiments suggested that ALDH3B1 and NCEH1 were involved in PC progression and gemcitabine chemoresistance. ConclusionThis chemoresistance-related gene signature links prognosis with chemoresistance, TMB, and immune features. ALDH3B1 and NCEH1 are two promising targets for treating PC.
引用
收藏
页数:18
相关论文
共 86 条
[1]   Pharmacological Targeting of Cell Cycle, Apoptotic and Cell Adhesion Signaling Pathways Implicated in Chemoresistance of Cancer Cells [J].
Alimbetov, Dauren ;
Askarova, Sholpan ;
Umbayev, Bauyrzhan ;
Davis, Terence ;
Kipling, David .
INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2018, 19 (06)
[2]   Pancreatic Cancer Chemoresistance to Gemcitabine [J].
Amrutkar, Manoj ;
Gladhaug, Ivar P. .
CANCERS, 2017, 9 (11)
[3]   Reference-based analysis of lung single-cell sequencing reveals a transitional profibrotic macrophage [J].
Aran, Dvir ;
Looney, Agnieszka P. ;
Liu, Leqian ;
Wu, Esther ;
Fong, Valerie ;
Hsu, Austin ;
Chak, Suzanna ;
Naikawadi, Ram P. ;
Wolters, Paul J. ;
Abate, Adam R. ;
Butte, Atul J. ;
Bhattacharya, Mallar .
NATURE IMMUNOLOGY, 2019, 20 (02) :163-+
[4]   xCell: digitally portraying the tissue cellular heterogeneity landscape [J].
Aran, Dvir ;
Hu, Zicheng ;
Butte, Atul J. .
GENOME BIOLOGY, 2017, 18
[5]   H2A.Z overexpression suppresses senescence and chemosensitivity in pancreatic ductal adenocarcinoma [J].
Avila-Lopez, P. A. ;
Guerrero, G. ;
Nunez-Martinez, H. N. ;
Peralta-Alvarez, C. A. ;
Hernandez-Montes, G. ;
Alvarez-Hilario, L. G. ;
Herrera-Goepfert, R. ;
Albores-Saavedra, J. ;
Villegas-Sepulveda, N. ;
Cedillo-Barron, L. ;
Montes-Gomez, A. E. ;
Vargas, M. ;
Schnoor, M. ;
Recillas-Targa, F. ;
Hernandez-Rivas, R. .
ONCOGENE, 2021, 40 (11) :2065-2080
[6]   Tumor-Derived Granulocyte-Macrophage Colony-Stimulating Factor Regulates Myeloid Inflammation and T Cell Immunity in Pancreatic Cancer [J].
Bayne, Lauren J. ;
Beatty, Gregory L. ;
Jhala, Nirag ;
Clark, Carolyn E. ;
Rhim, Andrew D. ;
Stanger, Ben Z. ;
Vonderheide, Robert H. .
CANCER CELL, 2012, 21 (06) :822-835
[7]   Estimating the population abundance of tissue-infiltrating immune and stromal cell populations using gene expression [J].
Becht, Etienne ;
Giraldo, Nicolas A. ;
Lacroix, Laetitia ;
Buttard, Benedicte ;
Elarouci, Nabila ;
Petitprez, Florent ;
Selves, Janick ;
Laurent-Puig, Pierre ;
Sautes-Fridman, Catherine ;
Fridman, Wolf H. ;
de Reynies, Aurelien .
GENOME BIOLOGY, 2016, 17
[8]   Hypoxia Dictates Metabolic Rewiring of Tumors: Implications for Chemoresistance [J].
Belisario, Dimas Carolina ;
Kopecka, Joanna ;
Pasino, Martina ;
Akman, Muhlis ;
De Smaele, Enrico ;
Donadelli, Massimo ;
Riganti, Chiara .
CELLS, 2020, 9 (12)
[9]   Spatiotemporal Dynamics of Intratumoral Immune Cells Reveal the Immune Landscape in Human Cancer [J].
Bindea, Gabriela ;
Mlecnik, Bernhard ;
Tosolini, Marie ;
Kirilovsky, Amos ;
Waldner, Maximilian ;
Obenauf, Anna C. ;
Angell, Helen ;
Fredriksen, Tessa ;
Lafontaine, Lucie ;
Berger, Anne ;
Bruneval, Patrick ;
Fridman, Wolf Herman ;
Becker, Christoph ;
Pages, Franck ;
Speicher, Michael R. ;
Trajanoski, Zlatko ;
Galon, Jerome .
IMMUNITY, 2013, 39 (04) :782-795
[10]   KRAS Oncogenic Signaling Extends beyond Cancer Cells to Orchestrate the Microenvironment [J].
Carvalho, Patricia Dias ;
Guimaraes, Carlos F. ;
Cardoso, Ana P. ;
Mendonca, Susana ;
Costa, Angela M. ;
Oliveira, Maria J. ;
Velho, Sergia .
CANCER RESEARCH, 2018, 78 (01) :7-14