| 1 |
Primary liver cancer: Worldwide incidence and trends  |
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| 2 |
Global Cancer Statistics, 2002  |
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| 3 |
Hepatocellular carcinoma  |
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| 4 |
Expression of nicotinamide N-methyltransferase in hepatocellular carcinoma is associated with poor prognosis  |
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| 5 |
Identification and Characterization of Antioxidants from Sophora flavescens  |
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| 6 |
Antimalarial Activity of Lavandulyl Flavanones Isolated from the Roots of Sophora flavescens (Pharmacognosy)  |
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| 7 |
Estrogenic and anticarcinogenic properties of kurarinone, a lavandulyl flavanone from the roots of Sophora flavescens.  |
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| 8 |
Kim HA, You HK, Shin HS, Kim YC, Kang TH, Yu HH, You YO. Effects of aqueous extract of Sophora flavescens on the expression of cell cycle regulatory proteins in human oral mucosal fibroblasts. J Chin Med 31, 563-572, 2003. |
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| 9 |
Determination of isoprenyl and lavandulyl positions of flavonoids fromSophora flavescens by NMR experiment.  |
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| 10 |
Hanahan D, Weinberg RA. The hallmarks of cancer review. Cell 100, 57-70, 2000. |
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| 11 |
Apoptosis: a link between cancer genetics and chemotherapy.  |
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| 12 |
Caspases: Enemies Within  |
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| 13 |
Death Receptors: Signaling and Modulation  |
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| 14 |
Peter ME, Krammer PH. The CD95 (APO-1/Fas) DISC and beyond. Cell Death Differ 10, 26-35, 2003. |
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| 15 |
Autophagy as a Regulated Pathway of Cellular Degradation  |
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| 16 |
Approaching the Molecular Mechanism of Autophagy  |
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| 17 |
Autophagy in the eukaryotic cell.  |
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| 18 |
Bursch W. The autophagosomal-lysosomal compartment in programmed cell death. Cell Death Differ 8, 569-581, 2001. |
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| 19 |
Autophagy as a cell death and tumor suppressor mechanism.  |
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| 20 |
Genome-Wide Analyses of Steroid- and Radiation-Triggered Programmed Cell Death in Drosophila  |
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| 21 |
A SAGE Approach to Discovery of Genes Involved in Autophagic Cell Death  |
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| 22 |
Autophagy Is Activated by Apoptotic Signalling in Sympathetic Neurons: An Alternative Mechanism of Death Execution  |
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| 23 |
Tumor Necrosis Factor-Related Apoptosis-Inducing Ligand (TRAIL) Is Required for Induction of Autophagy during Lumen Formation in vitro  |
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| 24 |
Cloning and Genomic Organization of Beclin 1, a Candidate Tumor Suppressor Gene on Chromosome 17q21  |
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| 25 |
Induction of autophagy and inhibition of tumorigenesis by beclin 1.  |
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| 26 |
Beclin 1, an Autophagy Gene Essential for Early Embryonic Development, Is a Haploinsufficient Tumor Suppressor  |
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| 27 |
Promotion of tumorigenesis by heterozygous disruption of the beclin 1 autophagy gene.  |
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| 28 |
DAP Kinase and DRP-1 Mediate Membrane Blebbing and the Formation of Autophagic Vesicles during Programmed Cell Death  |
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| 29 |
DAP Kinase—A Proapoptotic Gene That Functions as a Tumor Suppressor  |
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| 30 |
Hypermethylation of the Death-Associated Protein (DAP) Kinase Promoter and Aggressiveness in Stage I Non-Small-Cell Lung Cancer  |
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| 31 |
Promoter methylation of DAP-kinase: association with advanced stage in non-small cell lung cancer.  |
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| 32 |
Autophagy: process and function.  |
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| 33 |
Atg5 regulates phenethyl isothiocyanate-induced autophagic and apoptotic cell death in human prostate cancer cells.  |
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| 34 |
mTOR regulation of autophagy.  |
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| 35 |
Morphine induces Beclin 1- and ATG5-dependent autophagy in human neuroblastoma SH-SY5Y cells and in the rat hippocampus.  |
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| 36 |
Epidemiology of Hepatocellular Carcinoma  |
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| 37 |
Apoptosis in cancer  |
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| 38 |
FADD is required for DR4- and DR5-mediated apoptosis: lack of trail-induced apoptosis in FADD-deficient mouse embryonic fibroblasts.  |
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| 39 |
Phosphorylation of FADD/ MORT1 at serine 194 and association with a 70-kDa cell cycle-regulated protein kinase.  |
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| 40 |
DNA fragmentation factor 45-deficient cells are more resistant to apoptosis and exhibit different dying morphology than wild-type control cells.  |
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| 41 |
MiR-145, a new regulator of the DNA Fragmentation Factor-45 (DFF45)-mediated apoptotic network  |
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