New molecular mechanisms in cholangiocarcinoma: signals triggering interleukin-6 production in tumor cells and KRAS co-opted epigenetic mediators driving metabolic reprogramming

被引:27
作者
Colyn, Leticia [1 ]
Alvarez-Sola, Gloria [1 ,2 ]
Ujue Latasa, M. [1 ,3 ]
Uriarte, Iker [1 ,2 ]
Herranz, Jose M. [1 ,2 ]
Arechederra, Maria [1 ,2 ,3 ]
Vlachogiannis, George [4 ]
Rae, Colin [5 ]
Pineda-Lucena, Antonio [6 ]
Casadei-Gardini, Andrea [7 ]
Pedica, Federica [8 ]
Aldrighetti, Luca [9 ]
Lopez-Lopez, Angeles [10 ]
Lopez-Gonzalvez, Angeles [10 ]
Barbas, Coral [10 ]
Ciordia, Sergio [11 ]
Van Liempd, Sebastiaan M. [12 ,13 ]
Falcon-Perez, Juan M. [2 ,12 ,13 ,14 ]
Urman, Jesus [3 ,15 ]
Sangro, Bruno [2 ,3 ,16 ]
Vicent, Silve [3 ,17 ,18 ]
Iraburu, Maria J. [19 ]
Prosper, Felipe [20 ]
Nelson, Leonard J. [21 ]
Banales, Jesus M. [2 ,19 ,22 ]
Luz Martinez-Chantar, Maria [2 ,23 ]
Marin, Jose J. G. [2 ,24 ]
Braconi, Chiara [5 ,25 ]
Trautwein, Christian [26 ]
Corrales, Fernando J. [2 ,11 ]
Javier Cubero, F. [2 ,27 ]
Berasain, Carmen [1 ,2 ,3 ]
Fernandez-Barrena, Maite G. [1 ,2 ,3 ]
Avila, Matias A. [1 ,2 ,3 ]
机构
[1] Univ Navarra, CIMA, Hepatol Program, Pamplona, Spain
[2] CIBERehd, Madrid, Spain
[3] Inst Invest Sanitarias Navarra IdiSNA, Pamplona, Spain
[4] Imperial Coll London, Div Surg & Canc, London, England
[5] Univ Glasgow, Inst Canc Sci, Glasgow, Lanark, Scotland
[6] Univ Navarra, CIMA, Mol Therapies Program, Pamplona, Spain
[7] Osped San Raffaele, Dept Oncol, Milan, Italy
[8] IRCCS San Raffaele Sci Inst, Dept Expt Oncol, Pathol Unit, Milan, Italy
[9] Univ Vita Salute San Raffaele, IRCCS San Raffaele Hosp, Hepatobiliary Surg Div, Milan, Italy
[10] Univ San Pablo CEU, Ctr Metab & Bioanal CEMBIO, Fac Farm, Boadilla Del Monte, Spain
[11] Proteored ISCIII, CNB CSIC, Funct Prote Lab, Madrid, Spain
[12] CIC bioGUNE BRTA, Exosomes Lab, Derio, Spain
[13] CIC bioGUNE BRTA, Metab Platform, Derio, Spain
[14] Basque Fdn Sci, Ikerbaske, Bilbao, Spain
[15] Hosp Univ Navarra, Gastroenterol Dept, Pamplona, Spain
[16] Clin Univ Navarra, Hepatol Unit, Pamplona, Spain
[17] Univ Navarra, CIMA, Solid Tumors Program, Pamplona, Spain
[18] CIBERonc, Madrid, Spain
[19] Univ Navarra, Dept Biochem & Genet, Pamplona, Spain
[20] Univ Navarra, CIMA, Oncohematol Program, Pamplona, Spain
[21] Univ Edimburgh, Sch Engn, Inst Engn, Faraday Bldg, Edinburgh, Midlothian, Scotland
[22] Donostia Univ Hosp, Dept Liver & Gastrointestinal Dis, Ikerbasque, Biodonostia Hlth Res Inst, San Sebastian, Spain
[23] CIC bioGUNE, Liver Res Lab, Derio, Spain
[24] Univ Salamanca, Physiol & Pharmacol Dept, IBSAL, HEVEPHARM, Salamanca, Spain
[25] Beatson West Scotland Canc Ctr, Glasgow, Lanark, Scotland
[26] Rhein Westfal TH Aachen, Dept Internal Med III, Univ Hosp, Aachen, Germany
[27] Univ Complutense Madrid, Sch Med, Dept Immunol Ophthalmol & ENT, Madrid, Spain
基金
欧盟地平线“2020”;
关键词
Cholangiocarcinoma; Bile; Inflammation; Interleukin-6; KRAS; G9a histone methyl-transferase; Serine-glycine pathway; Metabolic reprogramming; SERINE SYNTHESIS; BILE; G9A; ADENOCARCINOMA; ACID;
D O I
10.1186/s13046-022-02386-2
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Background Cholangiocarcinoma (CCA) is still a deadly tumour. Histological and molecular aspects of thioacetamide (TAA)-induced intrahepatic CCA (iCCA) in rats mimic those of human iCCA. Carcinogenic changes and therapeutic vulnerabilities in CCA may be captured by molecular investigations in bile, where we performed bile proteomic and metabolomic analyses that help discovery yet unknown pathways relevant to human iCCA. Methods Cholangiocarcinogenesis was induced in rats (TAA) and mice (Jnk(Delta hepa) + CCl4 + DEN model). We performed proteomic and metabolomic analyses in bile from control and CCA-bearing rats. Differential expression was validated in rat and human CCAs. Mechanisms were addressed in human CCA cells, including Huh28-KRAS(G12D) cells. Cell signaling, growth, gene regulation and [U-C-13]-D-glucose-serine fluxomics analyses were performed. In vivo studies were performed in the clinically-relevant iCCA mouse model. Results Pathways related to inflammation, oxidative stress and glucose metabolism were identified by proteomic analysis. Oxidative stress and high amounts of the oncogenesis-supporting amino acids serine and glycine were discovered by metabolomic studies. Most relevant hits were confirmed in rat and human CCAs (TCGA). Activation of interleukin-6 (IL6) and epidermal growth factor receptor (EGFR) pathways, and key genes in cancer-related glucose metabolic reprogramming, were validated in TAA-CCAs. In TAA-CCAs, G9a, an epigenetic pro-tumorigenic writer, was also increased. We show that EGFR signaling and mutant KRAS(G12D) can both activate IL6 production in CCA cells. Furthermore, phosphoglycerate dehydrogenase (PHGDH), the rate-limiting enzyme in serine-glycine pathway, was upregulated in human iCCA correlating with G9a expression. In a G9a activity-dependent manner, KRAS(G12D) promoted PHGDH expression, glucose flow towards serine synthesis, and increased CCA cell viability. KRAS(G12D) CAA cells were more sensitive to PHGDH and G9a inhibition than controls. In mouse iCCA, G9a pharmacological targeting reduced PHGDH expression. Conclusions In CCA, we identified new pro-tumorigenic mechanisms: Activation of EGFR signaling or KRAS mutation drives IL6 expression in tumour cells; Glucose metabolism reprogramming in iCCA includes activation of the serine-glycine pathway; Mutant KRAS drives PHGDH expression in a G9a-dependent manner; PHGDH and G9a emerge as therapeutic targets in iCCA.
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页数:18
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