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Autophagy, ISSN 1554-8635, 10/2014, Volume 5, Issue 1, pp. 61 - 74
Autophagy is a lysosome-dependent degradative pathway frequently activated in tumor cells treated with chemotherapy or radiation. PARP-1 has been implicated in... 
Binding | Proteins | Landes | Calcium | Bioscience | Biology | Cell | Cycle | Cancer | Organogenesis | DNA damage | ATG-5 | Beclin 1 | mTOR | Energy depletion | Autophagy | Doxorubicin | PARP-1 | Life Sciences & Biomedicine | Science & Technology | Cell Biology | Protein Kinases - metabolism | Adenosine Triphosphate - deficiency | Mitochondria - enzymology | Apoptosis - drug effects | Microtubule-Associated Proteins - metabolism | Quinolones - pharmacology | Mitochondria - ultrastructure | Autophagy - drug effects | NAD - deficiency | Gene Deletion | 1-Naphthylamine - pharmacology | Autophagy - genetics | Beclin-1 | Cell Survival - drug effects | Subcellular Fractions - drug effects | Mitochondria - drug effects | Enzyme Activation - drug effects | Poly(ADP-ribose) Polymerase Inhibitors | Subcellular Fractions - metabolism | 1-Naphthylamine - analogs & derivatives | Up-Regulation - drug effects | Poly(ADP-ribose) Polymerases - metabolism | Animals | Apoptosis Regulatory Proteins | Naphthalimides - pharmacology | Proteins - metabolism | Autophagy-Related Protein 5 | Models, Biological | Mice | TOR Serine-Threonine Kinases | DNA Damage | 3T3 Cells | Doxorubicin - pharmacology | Necrosis - enzymology | Index Medicus | Up-Regulation | Poly(ADP-ribose) Polymerases | Adenosine Triphosphate | Necrosis | Quinolones | Life Sciences | Mitochondria | Biomolecules | Cell Survival | Biochemistry, Molecular Biology | Microtubule-Associated Proteins | Naphthalimides | NAD | Protein Kinases | 1-Naphthylamine | Enzyme Activation | Subcellular Fractions | Apoptosis
Journal Article
Plant physiology (Bethesda), ISSN 0032-0889, 8/2011, Volume 156, Issue 4, pp. 1837 - 1850
Receptor-like kinase-mediated cell signaling pathways play fundamental roles in many aspects of plant growth and development. A pair of Arabidopsis... 
Proteins | DEVELOPMENT AND HORMONE ACTION | Receptors | Protoplasts | Alleles | Cell membranes | Plants | Plasma interactions | Genetic mutation | Abscission | Plant cells | Life Sciences & Biomedicine | Plant Sciences | Science & Technology | Phosphotransferases - metabolism | Arabidopsis - physiology | Arabidopsis - enzymology | Molecular Sequence Data | Substrate Specificity | Flowers - ultrastructure | Arabidopsis Proteins - metabolism | Plant Stomata - cytology | Receptors, Cell Surface - chemistry | Phosphotransferases - genetics | Protein-Serine-Threonine Kinases - metabolism | Plant Stomata - enzymology | Amino Acid Sequence | Cytoplasm - enzymology | Arabidopsis Proteins - genetics | Flowers - enzymology | Arabidopsis - cytology | Flowers - cytology | Protein-Serine-Threonine Kinases - genetics | Arabidopsis - ultrastructure | Receptors, Cell Surface - metabolism | Plant Roots - cytology | Mutation - genetics | Organ Specificity | Protein Transport | Phosphotransferases - chemistry | Cell Membrane - enzymology | Myristic Acid - metabolism | Arabidopsis Proteins - chemistry | Models, Biological | Plant Roots - enzymology | Protein Binding | Flowers - physiology | Protein-Serine-Threonine Kinases - chemistry | Subcellular Fractions - enzymology | Receptors, Cell Surface - genetics | Arabidopsis thaliana | Physiological aspects | Genetic aspects | Research | Phytochemistry | Index Medicus
Journal Article
Toxicology and applied pharmacology, ISSN 0041-008X, 09/2014, Volume 279, Issue 3, pp. 266 - 274
Journal Article
Journal Article
PloS one, ISSN 1932-6203, 03/2014, Volume 9, Issue 3, pp. e90936 - e90936
Premature infants exposed to hyperoxia suffer acute and long-term pulmonary consequences. Nevertheless, neonates survive hyperoxia better than adults. The... 
Science & Technology - Other Topics | Multidisciplinary Sciences | Science & Technology | Heme Oxygenase-1 - metabolism | Lung Injury - pathology | Cell Proliferation | Hyperoxia - physiopathology | Oxidative Stress | Humans | Pulmonary Alveoli - enzymology | Lung - enzymology | Lung Injury - enzymology | Pulmonary Alveoli - physiopathology | Cytoprotection | Disease Models, Animal | Animals, Newborn | Lung - pathology | Pulmonary Alveoli - pathology | Oxidation-Reduction | Subcellular Fractions - drug effects | Epithelial Cells - pathology | Mice, Transgenic | Lung - physiopathology | DNA - metabolism | Carcinogenesis - pathology | Hydrolysis | Hyperoxia - pathology | Magnetic Resonance Imaging | Hyperoxia - enzymology | Lung Injury - physiopathology | Poly Adenosine Diphosphate Ribose - metabolism | Poly(ADP-ribose) Polymerases - metabolism | Animals | Epithelial Cells - enzymology | Mice | DNA Damage | Respiratory Function Tests | Subcellular Fractions - enzymology | Apoptosis | Infants (Premature) | Genetic engineering | Heme | Cell proliferation | Neonates | Pediatrics | Oxidative stress | Respiratory function | Toxicity | Brain cancer | DNA damage | Cytotoxicity | Infants | DNA repair | Nuclei | Proteins | Data recovery | Transgenic animals | Ribose | Rodents | Localization | Alveoli | Injuries | Deoxyribonucleic acid--DNA | Animal care | Enzymes | Oxygen | Pulmonary arteries | Transgenic mice | Heme oxygenase (decyclizing) | Poly(ADP-ribose) polymerase | Adenosine diphosphate | Exposure | Gene expression | Wall thickness | Oxygenase | Lungs | Hyperoxia | Pulmonary functions | Adults | Endoplasmic reticulum | Index Medicus | Deoxyribonucleic acid | DNA
Journal Article
The Plant cell, ISSN 1040-4651, 4/2012, Volume 24, Issue 4, pp. 1534 - 1548
Journal Article