Characterization of starvation response‐related genes for predicting prognosis in breast cancer
暂无分享,去创建一个
[1] Q. Cheng,et al. The Comprehensive Analysis Identified an Autophagy Signature for the Prognosis and the Immunotherapy Efficiency Prediction in Lung Adenocarcinoma , 2022, Frontiers in Immunology.
[2] Ying Sun,et al. Low glucose-induced overexpression of HOXC-AS3 promotes metabolic reprogramming of breast cancer. , 2022, Cancer research.
[3] Hang Tong,et al. Starvation induced autophagy promotes the progression of bladder cancer by LDHA mediated metabolic reprogramming , 2021, Cancer Cell International.
[4] Siyuan Wen,et al. In silico development and clinical validation of novel 8 gene signature based on lipid metabolism related genes in colon adenocarcinoma. , 2021, Pharmacological research.
[5] J. Yun,et al. Glucose deprivation induced aberrant FUT1-mediated fucosylation drives cancer stemness in hepatocellular carcinoma. , 2021, The Journal of clinical investigation.
[6] Minoru Kanehisa,et al. KEGG: integrating viruses and cellular organisms , 2020, Nucleic Acids Res..
[7] Zhe Zhang,et al. Identification of a novel glycolysis-related gene signature for predicting metastasis and survival in patients with lung adenocarcinoma , 2019, Journal of Translational Medicine.
[8] M. Gnant,et al. Breast cancer , 2019, Nature Reviews Disease Primers.
[9] F. Popp,et al. A robust 6-mRNA signature for prognosis prediction of pancreatic ductal adenocarcinoma , 2019, International journal of biological sciences.
[10] Yun Cui,et al. LncRNA GLCC1 promotes colorectal carcinogenesis and glucose metabolism by stabilizing c-Myc , 2019, Nature Communications.
[11] H. Olschewski,et al. Gluconeogenesis in cancer cells - Repurposing of a starvation-induced metabolic pathway? , 2019, Biochimica et biophysica acta. Reviews on cancer.
[12] Zhong Zhou,et al. CircACC1 Regulates Assembly and Activation of AMPK Complex under Metabolic Stress. , 2019, Cell metabolism.
[13] C. Goding,et al. Starvation and Pseudo-Starvation as Drivers of Cancer Metastasis through Translation Reprogramming. , 2019, Cell metabolism.
[14] C. Kanduri,et al. FOXK1 and FOXK2 regulate aerobic glycolysis , 2019, Nature.
[15] Feixiang Wu,et al. Starvation‐induced autophagy promotes the invasion and migration of human bladder cancer cells via TGF‐β1/Smad3‐mediated epithelial‐mesenchymal transition activation , 2018, Journal of cellular biochemistry.
[16] F. Gonzalez,et al. The role of hypoxia-inducible factors in metabolic diseases , 2018, Nature Reviews Endocrinology.
[17] Yutaka Inagaki,et al. Glucose starvation induces LKB1-AMPK-mediated MMP-9 expression in cancer cells , 2018, Scientific Reports.
[18] D. Sinclair,et al. Amino Acid Restriction Triggers Angiogenesis via GCN2/ATF4 Regulation of VEGF and H2S Production , 2018, Cell.
[19] B. Loos,et al. Autophagy is essential for the maintenance of amino acids and ATP levels during acute amino acid starvation in MDAMB231 cells , 2018, Cell biochemistry and function.
[20] Xiaodong Zhang,et al. Autophagy promotes metastasis and glycolysis by upregulating MCT1 expression and Wnt/β-catenin signaling pathway activation in hepatocellular carcinoma cells , 2018, Journal of Experimental & Clinical Cancer Research.
[21] J. Fang,et al. Role of JMJD2B in colon cancer cell survival under glucose-deprived conditions and the underlying mechanisms , 2018, Oncogene.
[22] Daniel H. Miller,et al. Cancer-specific PERK signaling drives invasion and metastasis through CREB3L1 , 2017, Nature Communications.
[23] E. White,et al. Recent insights into the function of autophagy in cancer , 2016, Genes & development.
[24] Libing Song,et al. cMyc-mediated activation of serine biosynthesis pathway is critical for cancer progression under nutrient deprivation conditions , 2015, Cell Research.
[25] G. Berchem,et al. Autophagy: an adaptive metabolic response to stress shaping the antitumor immunity. , 2014, Biochemical pharmacology.
[26] E. Sokol,et al. Epithelial-to-mesenchymal transition activates PERK-eIF2α and sensitizes cells to endoplasmic reticulum stress. , 2014, Cancer discovery.
[27] X. Cen,et al. 1H-NMR based metabonomic profiling of human esophageal cancer tissue , 2013, Molecular Cancer.
[28] Aleksey A. Porollo,et al. Control of Nutrient Stress-Induced Metabolic Reprogramming by PKCζ in Tumorigenesis , 2013, Cell.
[29] R. Hamanaka,et al. Warburg Effect and Redox Balance , 2011, Science.
[30] Heather R. Roberts,et al. Colon tumour cells increase PGE(2) by regulating COX-2 and 15-PGDH to promote survival during the microenvironmental stress of glucose deprivation. , 2011, Carcinogenesis.
[31] D. Hanahan,et al. Hallmarks of Cancer: The Next Generation , 2011, Cell.
[32] T. Reichert,et al. Metabolic and proteomic differentials in head and neck squamous cell carcinomas and normal gingival tissue , 2011, Journal of Cancer Research and Clinical Oncology.
[33] C. Koumenis,et al. PERK promotes cancer cell proliferation and tumor growth by limiting oxidative DNA damage , 2010, Oncogene.
[34] K. Kinzler,et al. Glucose Deprivation Contributes to the Development of KRAS Pathway Mutations in Tumor Cells , 2009, Science.
[35] M. Tomita,et al. Quantitative metabolome profiling of colon and stomach cancer microenvironment by capillary electrophoresis time-of-flight mass spectrometry. , 2009, Cancer research.
[36] Y. Atomi,et al. Autophagy is activated in colorectal cancer cells and contributes to the tolerance to nutrient deprivation. , 2007, Cancer research.
[37] M. Ashburner,et al. Gene Ontology: tool for the unification of biology , 2000, Nature Genetics.
[38] O. Warburg. [Origin of cancer cells]. , 1956, Oncologia.
[39] António S. Barros,et al. NMR metabolomics of human lung tumours reveals distinct metabolic signatures for adenocarcinoma and squamous cell carcinoma. , 2015, Carcinogenesis.