Inborn and acquired metabolic defects in cancer
暂无分享,去创建一个
Eyal Gottlieb | Christian Frezza | E. Gottlieb | C. Frezza | P. Pollard | Patrick J Pollard | Patrick J. Pollard
[1] M. Caligiuri,et al. IDH1 and IDH2 gene mutations identify novel molecular subsets within de novo cytogenetically normal acute myeloid leukemia: a Cancer and Leukemia Group B study. , 2010, Journal of clinical oncology : official journal of the American Society of Clinical Oncology.
[2] L. Aaltonen,et al. Downregulation of SRF–FOS–JUNB pathway in fumarate hydratase deficiency and in uterine leiomyomas , 2009, Oncogene.
[3] K. Clarke,et al. Dysregulation of hypoxia pathways in fumarate hydratase-deficient cells is independent of defective mitochondrial metabolism. , 2010, Human molecular genetics.
[4] Eyal Gottlieb,et al. Mitochondrial tumour suppressors: a genetic and biochemical update , 2005, Nature Reviews Cancer.
[5] Jens Vilstrup Johansen,et al. The Histone Demethylases JMJD1A and JMJD2B Are Transcriptional Targets of Hypoxia-inducible Factor HIF* , 2008, Journal of Biological Chemistry.
[6] Ken Chen,et al. Recurring mutations found by sequencing an acute myeloid leukemia genome. , 2009, The New England journal of medicine.
[7] Johan Auwerx,et al. Histone methyl transferases and demethylases; can they link metabolism and transcription? , 2010, Cell metabolism.
[8] E. Maher,et al. SDHB-associated renal oncocytoma suggests a broadening of the renal phenotype in hereditary paragangliomatosis , 2009, Familial Cancer.
[9] D. Mechan,et al. Renal carcinoma with giant mitochondria associated with germ‐line mutation and somatic loss of the succinate dehydrogenase B gene , 2010, Histopathology.
[10] A. Paetau,et al. Germline mutations in FH predispose to dominantly inherited uterine fibroids, skin leiomyomata and papillary renal cell cancer , 2002, Nature Genetics.
[11] Eyal Gottlieb,et al. Succinate links TCA cycle dysfunction to oncogenesis by inhibiting HIF-alpha prolyl hydroxylase. , 2005, Cancer cell.
[12] N. Oldham,et al. Structural and Mechanistic Studies on the Inhibition of the Hypoxia-inducible Transcription Factor Hydroxylases by Tricarboxylic Acid Cycle Intermediates* , 2007, Journal of Biological Chemistry.
[13] J. Peti-Peterdi. High glucose and renin release: the role of succinate and GPR91. , 2010, Kidney international.
[14] E. Gottlieb,et al. Targeting metabolic transformation for cancer therapy , 2010, Nature Reviews Cancer.
[15] E. Gottlieb,et al. Redox stress is not essential for the pseudo-hypoxic phenotype of succinate dehydrogenase deficient cells. , 2006, Biochimica et biophysica acta.
[16] J. Carney,et al. The triad of paragangliomas, gastric stromal tumours and pulmonary chondromas (Carney triad), and the dyad of paragangliomas and gastric stromal sarcomas (Carney–Stratakis syndrome): molecular genetics and clinical implications , 2009, Journal of internal medicine.
[17] C. Cremers,et al. SDHAF2 mutations in familial and sporadic paraganglioma and phaeochromocytoma. , 2010, The Lancet. Oncology.
[18] Christopher J. Schofield,et al. Oxygen sensing by HIF hydroxylases , 2004, Nature Reviews Molecular Cell Biology.
[19] Andrey Korshunov,et al. Analysis of the IDH1 codon 132 mutation in brain tumors , 2008, Acta Neuropathologica.
[20] Jinhai Gao,et al. Citric acid cycle intermediates as ligands for orphan G-protein-coupled receptors , 2004, Nature.
[21] Tak W. Mak,et al. Cancer-associated metabolite 2-hydroxyglutarate accumulates in acute myelogenous leukemia with isocitrate dehydrogenase 1 and 2 mutations , 2010, The Journal of experimental medicine.
[22] Andrew L. Kung,et al. A HIF1-alpha Regulatory Loop Links Hypoxiaand Mitochondrial Signals in Pheochromocytomas , 2005 .
[23] J R Griffiths,et al. Accumulation of Krebs cycle intermediates and over-expression of HIF1alpha in tumours which result from germline FH and SDH mutations. , 2005, Human molecular genetics.
[24] N. Chandel,et al. Loss of the SdhB, but Not the SdhA, Subunit of Complex II Triggers Reactive Oxygen Species-Dependent Hypoxia-Inducible Factor Activation and Tumorigenesis , 2007, Molecular and Cellular Biology.
[25] C. Ricketts,et al. Germline SDHB mutations and familial renal cell carcinoma. , 2008, Journal of the National Cancer Institute.
[26] R. McLendon,et al. IDH1 and IDH2 mutations in gliomas. , 2009, The New England journal of medicine.
[27] M. Mata,et al. Cells silenced for SDHB expression display characteristic features of the tumor phenotype. , 2008, Cancer research.
[28] M. Attimonelli,et al. The genetic and metabolic signature of oncocytic transformation implicates HIF1alpha destabilization. , 2010, Human molecular genetics.
[29] L. Aravind,et al. Impaired hydroxylation of 5-methylcytosine in myeloid cancers with mutant TET2 , 2010, Nature.
[30] Ulrich Müller,et al. Mutations in SDHC cause autosomal dominant paraganglioma, type 3 , 2000, Nature Genetics.
[31] Omar Abdel-Wahab,et al. The common feature of leukemia-associated IDH1 and IDH2 mutations is a neomorphic enzyme activity converting alpha-ketoglutarate to 2-hydroxyglutarate. , 2010, Cancer cell.
[32] R. Janknecht,et al. Succinate inhibition of α-ketoglutarate-dependent enzymes in a yeast model of paraganglioma , 2007 .
[33] P. Schumacker,et al. Mitochondrial dysfunction resulting from loss of cytochrome c impairs cellular oxygen sensing and hypoxic HIF-alpha activation. , 2005, Cell metabolism.
[34] R. Janknecht,et al. Succinate inhibition of alpha-ketoglutarate-dependent enzymes in a yeast model of paraganglioma. , 2007, Human molecular genetics.
[35] P. Rustin,et al. The R22X mutation of the SDHD gene in hereditary paraganglioma abolishes the enzymatic activity of complex II in the mitochondrial respiratory chain and activates the hypoxia pathway. , 2001, American journal of human genetics.
[36] Yong Liu,et al. Novel Role of Fumarate Metabolism in Dahl-Salt Sensitive Hypertension , 2009, Hypertension.
[37] E S Husebye,et al. Gene mutations in the succinate dehydrogenase subunit SDHB cause susceptibility to familial pheochromocytoma and to familial paraganglioma. , 2001, American journal of human genetics.
[38] E. Gottlieb,et al. Cell-Permeating α-Ketoglutarate Derivatives Alleviate Pseudohypoxia in Succinate Dehydrogenase-Deficient Cells , 2007, Molecular and Cellular Biology.
[39] O. Warburg. [Origin of cancer cells]. , 1956, Oncologia.
[40] W. Kaelin. SDH5 mutations and familial paraganglioma: somewhere Warburg is smiling. , 2009, Cancer cell.
[41] L. Aaltonen,et al. Increased risk of cancer in patients with fumarate hydratase germline mutation , 2005, Journal of Medical Genetics.
[42] D. Busam,et al. An Integrated Genomic Analysis of Human Glioblastoma Multiforme , 2008, Science.
[43] X. Mu,et al. The succinate receptor GPR91 in neurons has a major role in retinal angiogenesis , 2008, Nature Medicine.
[44] Kristiina Aittomäki,et al. Distinct expression profile in fumarate-hydratase-deficient uterine fibroids. , 2006, Human molecular genetics.
[45] M. Meyerson,et al. The kinesin KIF1Bbeta acts downstream from EglN3 to induce apoptosis and is a potential 1p36 tumor suppressor. , 2008, Genes & development.
[46] W. Linehan,et al. Fumarate Hydratase Deficiency in Renal Cancer Induces Glycolytic Addiction and Hypoxia-Inducible Transcription Factor 1α Stabilization by Glucose-Dependent Generation of Reactive Oxygen Species , 2009, Molecular and Cellular Biology.
[47] P. Ratcliffe,et al. Regulation of Jumonji-domain-containing histone demethylases by hypoxia-inducible factor (HIF)-1alpha. , 2008, The Biochemical journal.
[48] A. Marchetti,et al. IDH1 mutations at residue p.R132 (IDH1R132) occur frequently in high‐grade gliomas but not in other solid tumors , 2009, Human mutation.
[49] D. Berney,et al. Adult leydig cell tumors of the testis caused by germline fumarate hydratase mutations. , 2006, The Journal of clinical endocrinology and metabolism.
[50] P. Devilee,et al. Inhibition of succinate dehydrogenase dysregulates histone modification in mammalian cells , 2009, Molecular Cancer.
[51] E. Gottlieb,et al. Mitochondria in cancer: not just innocent bystanders. , 2009, Seminars in cancer biology.
[52] Steven P. Gygi,et al. SDH5, a Gene Required for Flavination of Succinate Dehydrogenase, Is Mutated in Paraganglioma , 2009, Science.
[53] P. Ratcliffe,et al. Puzzling Patterns of Predisposition , 2009, Science.
[54] Sandro Santagata,et al. A HIF1α Regulatory Loop Links Hypoxia and Mitochondrial Signals in Pheochromocytomas , 2005, PLoS genetics.
[55] L. Liau,et al. Cancer-associated IDH1 mutations produce 2-hydroxyglutarate , 2009, Nature.
[56] L. Aaltonen,et al. Inherited susceptibility to uterine leiomyomas and renal cell cancer , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[57] W. Kaelin,et al. Neuronal apoptosis linked to EglN3 prolyl hydroxylase and familial pheochromocytoma genes: developmental culling and cancer. , 2005, Cancer cell.
[58] P Barbry,et al. miR-210 is overexpressed in late stages of lung cancer and mediates mitochondrial alterations associated with modulation of HIF-1 activity , 2011, Cell Death and Differentiation.
[59] Yuen-Li Chung,et al. HIF overexpression correlates with biallelic loss of fumarate hydratase in renal cancer: novel role of fumarate in regulation of HIF stability. , 2005, Cancer cell.
[60] W. Dinjens,et al. Somatic SDHB mutation in an extraadrenal pheochromocytoma. , 2007, The New England journal of medicine.
[61] E. Gottlieb,et al. IDH1 mutations in gliomas: when an enzyme loses its grip. , 2010, Cancer cell.
[62] David G. Watson,et al. Succinate links TCA cycle dysfunction to oncogenesis by inhibiting HIF-alpha prolyl hydroxylase. , 2005, Cancer cell.
[63] P. Bénit,et al. SDHA is a tumor suppressor gene causing paraganglioma. , 2010, Human molecular genetics.
[64] J. Ragoussis,et al. The histone demethylase JMJD2B is regulated by estrogen receptor alpha and hypoxia, and is a key mediator of estrogen induced growth. , 2010, Cancer research.
[65] B. Devlin,et al. Mutations in SDHD, a mitochondrial complex II gene, in hereditary paraganglioma. , 2000, Science.
[66] Kun-Liang Guan,et al. Glioma-Derived Mutations in IDH1 Dominantly Inhibit IDH1 Catalytic Activity and Induce HIF-1α , 2009, Science.
[67] M. Grossmann,et al. G Protein-coupled Receptors , 1998, The Journal of Biological Chemistry.
[68] P. Schumacker,et al. Mitochondrial complex III is required for hypoxia-induced ROS production and cellular oxygen sensing. , 2005, Cell metabolism.
[69] J. Licht,et al. Leukemic IDH1 and IDH2 mutations result in a hypermethylation phenotype, disrupt TET2 function, and impair hematopoietic differentiation. , 2010, Cancer cell.
[70] Ian Tomlinson,et al. Molecular and Cellular Pathobiology Expression Profiling in Progressive Stages of Fumarate- Hydratase Deficiency: the Contribution of Metabolic Changes to Tumorigenesis , 2022 .
[71] Frank M. Sacks,et al. IDH 1 and IDH 2 Mutations in Gliomas , 2009 .