BackgroundMetabolism reprogramming plays a vital role in glioblastoma (GBM) progression and recurrence by producing enough energy for highly proliferating tumor cells. In addition, metabolic reprogramming is crucial for tumor growth and immune-escape mechanisms. Epidermal growth factor receptor (EGFR) amplification and EGFR-vIII mutation are often detected in GBM cells, contributing to the malignant behavior. This study aimed to investigate the functional role of the EGFR pathway on fatty acid metabolism remodeling and energy generation.MethodsClinical GBM specimens were selected for single-cell RNA sequencing and untargeted metabolomics analysis. A metabolism-associated RTK-fatty acid-gene signature was constructed and verified. MK-2206 and MK-803 were utilized to block the RTK pathway and mevalonate pathway induced abnormal metabolism. Energy metabolism in GBM with activated EGFR pathway was monitored. The antitumor effect of Osimertinib and Atorvastatin assisted by temozolomide (TMZ) was analyzed by an intracranial tumor model in vivo.ResultsGBM with high EGFR expression had characteristics of lipid remodeling and maintaining high cholesterol levels, supported by the single-cell RNA sequencing and metabolomics of clinical GBM samples. Inhibition of the EGFR/AKT and mevalonate pathways could remodel energy metabolism by repressing the tricarboxylic acid cycle and modulating ATP production. Mechanistically, the EGFR/AKT pathway upregulated the expressions of acyl-CoA synthetase short-chain family member 3 (ACSS3), acyl-CoA synthetase long-chain family member 3 (ACSL3), and long-chain fatty acid elongation-related gene ELOVL fatty acid elongase 2 (ELOVL2) in an NF-kappa B-dependent manner. Moreover, inhibition of the mevalonate pathway reduced the EGFR level on the cell membranes, thereby affecting the signal transduction of the EGFR/AKT pathway. Therefore, targeting the EGFR/AKT and mevalonate pathways enhanced the antitumor effect of TMZ in GBM cells and animal models.ConclusionsOur findings not only uncovered the mechanism of metabolic reprogramming in EGFR-activated GBM but also provided a combinatorial therapeutic strategy for clinical GBM management.
基金:
We are thankful to the patients who donated GBM samples to this study. We acknowledge Dr. Liang Xu from Shanghai IBS Biotech. Co., Ltd for supporting lentiviral reagents, Shanghai Genechem Co., Ltd for their support in the single-cell RNA sequencing and da; Shanghai OE Biotech Co., Ltd
第一作者机构:[1]Tianjin Med Univ Gen Hosp, Tianjin Neurol Inst, Lab Neurooncol, Tianjin, Peoples R China[2]Minist Educ & Tianjin City, Key Lab Postneuro Injury Neurorepair & Regenerat C, Tianjin, Peoples R China
共同第一作者:
通讯作者:
通讯机构:[1]Tianjin Med Univ Gen Hosp, Tianjin Neurol Inst, Lab Neurooncol, Tianjin, Peoples R China[2]Minist Educ & Tianjin City, Key Lab Postneuro Injury Neurorepair & Regenerat C, Tianjin, Peoples R China[3]Capital Med Univ, Beijing Tiantan Hosp, Dept Neurosurg, Beijing, Peoples R China[4]Chinese Glioma Genome Atlas Network CGGA, Beijing, Peoples R China[5]Asian Glioma Genome Atlas Network AGGA, Beijing, Peoples R China[8]Hebei Univ,Affiliated Hosp,Dept Neurosurg,Baoding,Hebei,Peoples R China[9]Hebei Key Lab Precise Diag & Treatment Glioma, Baoding, Hebei, Peoples R China[14]Capital Med Univ, Beijing Neurosurg Inst, Dept Mol Neuropathol, Beijing, Peoples R China[15]Chinese Acad Med Sci, Res Unit Accurate Diag Treatment & Translat Med Br, Beijing, Peoples R China
推荐引用方式(GB/T 7714):
Cui Xiaoteng,Zhao Jixing,Li Guanzhang,et al.Blockage of EGFR/AKT and mevalonate pathways synergize the antitumor effect of temozolomide by reprogramming energy metabolism in glioblastoma[J].CANCER COMMUNICATIONS.2023,43(12):1326-1353.doi:10.1002/cac2.12502.
APA:
Cui, Xiaoteng,Zhao, Jixing,Li, Guanzhang,Yang, Chao,Yang, Shixue...&Kang, Chunsheng.(2023).Blockage of EGFR/AKT and mevalonate pathways synergize the antitumor effect of temozolomide by reprogramming energy metabolism in glioblastoma.CANCER COMMUNICATIONS,43,(12)
MLA:
Cui, Xiaoteng,et al."Blockage of EGFR/AKT and mevalonate pathways synergize the antitumor effect of temozolomide by reprogramming energy metabolism in glioblastoma".CANCER COMMUNICATIONS 43..12(2023):1326-1353