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by Schormair, Barbara and Zhao, Chen and Bell, Steven and Tilch, Erik and Salminen, Aaro V and Pütz, Benno and Dauvilliers, Yves and Stefani, Ambra and Högl, Birgit and Poewe, Werner and Kemlink, David and Sonka, Karel and Bachmann, Cornelius G and Paulus, Walter and Trenkwalder, Claudia and Oertel, Wolfgang H and Hornyak, Magdolna and Teder-Laving, Maris and Metspalu, Andres and Hadjigeorgiou, Georgios M and Polo, Olli and Fietze, Ingo and Ross, Owen A and Wszolek, Zbigniew and Butterworth, Adam S and Soranzo, Nicole and Ouwehand, Willem H and Roberts, David J and Danesh, John and Allen, Richard P and Earley, Christopher J and Ondo, William G and Xiong, Lan and Montplaisir, Jacques and Gan-Or, Ziv and Perola, Markus and Vodicka, Pavel and Dina, Christian and Franke, Andre and Tittmann, Lukas and Stewart, Alexandre F R and Shah, Svati H and Gieger, Christian and Peters, Annette and Rouleau, Guy A and Berger, Klaus and Oexle, Konrad and Di Angelantonio, Emanuele and Hinds, David A and Müller-Myhsok, Bertram and Winkelmann, Juliane and Balkau, B and Ducimetière, P and Eschwège, E and Rancière, F and Alhenc-Gelas, F and Gallois, Y and Girault, A and Fumeron, F and Marre, M and Roussel, R and Bonnet, F and Bonnefond, A and Cauchi, S and Froguel, P and Cogneau, J and Born, C and Caces, E and Cailleau, M and Lantieri, O and Moreau, JG and Rakotozafy, F and Tichet, J and Vol, S and Agee, Michelle and Alipanahi, Babak and Auton, Adam and Bell, Robert K and Bryc, Katarzyna and Elson, Sarah L and Fontanillas, Pierre and Furlotte, Nicholas A and Hromatka, Bethann S and Huber, Karen E and Kleinman, Aaron and Litterman, Nadia K and McIntyre, Matthew H and Mountain, Joanna L and Northover, Carrie AM and Pitts, Steven J and Sathirapongsasuti, J Fah and Sazonova, Olga V and Shelton, Janie F and Shringarpure, Suyash and Tian, Chao and Tung, Joyce Y and Vacic, Vladimir and Wilson, Catherine H and DESIR study group and 23andMe Research Team and Collaboration 23andMe Res Team and DESIR Study Grp
Lancet neurology, ISSN 1474-4422, 2017, Volume 16, Issue 11, pp. 898 - 907
Journal Article
PloS one, ISSN 1932-6203, 09/2012, Volume 7, Issue 9, p. e46307
Bone morphogenetic proteins (BMPs) are members of the transforming growth factor beta superfamily that exert their effects via type I and type II serine threonine kinase receptors and the SMAD intracellular signaling pathway... 
Bone Morphogenetic Protein 5 - chemistry | Bone Morphogenetic Protein 6 - chemistry | Bone Morphogenetic Protein 7 - chemistry | Hemochromatosis Protein | Bone Morphogenetic Protein 7 - genetics | Humans | Nerve Tissue Proteins - chemistry | Transfection | Bone Morphogenetic Protein 6 - genetics | Solutions | Growth Differentiation Factors - genetics | Genes, Reporter | Cell Line | Cell Adhesion Molecules, Neuronal - chemistry | Signal Transduction | Membrane Proteins - genetics | Bone Morphogenetic Protein 5 - genetics | Recombinant Proteins - chemistry | Histocompatibility Antigens Class I - genetics | Recombinant Proteins - genetics | Histocompatibility Antigens Class I - chemistry | Nerve Tissue Proteins - genetics | Cell Adhesion Molecules, Neuronal - genetics | GPI-Linked Proteins - chemistry | Membrane Proteins - chemistry | Protein Binding | Ligands | Kinetics | GPI-Linked Proteins - genetics | Growth Differentiation Factors - chemistry | Physiological aspects | Bone morphogenetic proteins | Genetic aspects | Research | Protein binding | Smad protein | Phosphorylation | Nephrology | Transforming growth factor-b | Homeostasis | Intracellular signalling | Iron | Biology | Kinases | Medical schools | Proteins | Signal transduction | Receptors | Rodents | Growth factors | Binding | Bone morphogenetic protein 6 | Bone morphogenetic protein 5 | Bone morphogenetic protein 4 | Bone morphogenetic protein 2 | Threonine | Research & development--R&D | Anemia | Affinity | Protein-serine/threonine kinase | Surface plasmon resonance | Mutation | Receptor mechanisms | Bone morphogenetic protein 9 | Bone morphogenetic protein 7 | Research & development | R&D
Journal Article
PLoS genetics, ISSN 1553-7404, 2006, Volume 2, Issue 8, pp. e131 - 1206
The transcription factor signal transducer and activator of transcription-1 (STAT1) plays a key role in immunity against mycobacterial and viral infections.... 
PHOSPHORYLATED STAT-1 | INTERFERON-GAMMA-RECEPTOR | IMMUNITY | INHERITED INTERLEUKIN-12 DEFICIENCY | TARGETED DISRUPTION | GENETIC DISSECTION | CHAIN DEFICIENCY | BACILLE CALMETTE-GUERIN | IFN-GAMMA | SUSCEPTIBILITY | GENETICS & HEREDITY | Humans | GPI-Linked Proteins | Child, Preschool | Infant | Male | Interferon-gamma - metabolism | DNA-Binding Proteins - metabolism | STAT1 Transcription Factor - metabolism | Transfection - methods | Genes, Dominant | DNA Mutational Analysis | Mycobacterium Infections - genetics | Adult | Female | Transcription, Genetic | Membrane Proteins - metabolism | Child | Interferon-alpha - metabolism | Mycobacterium Infections - etiology | Cell Cycle Proteins - metabolism | Cells, Cultured | Gene Expression Regulation | Models, Molecular | STAT1 Transcription Factor - genetics | Genes, Recessive | Interferon-Stimulated Gene Factor 3, gamma Subunit - metabolism | Immunity, Active - genetics | Models, Biological | Pedigree | Mutant Proteins - chemistry | Adolescent | Alleles | Protein Binding | Heterozygote | Mutation | Allelomorphism | Mycobacterial infections | Genetic aspects | Research | Health aspects | Proteins | Phosphorylation | Disease | Respiratory distress syndrome | Cloning | Genetics | Kinases | Experiments | Viral infections | Interferon-Stimulated Gene Factor 3, gamma Subunit | Adaptive immunology | Life Sciences | Immunology | Interferon Type II | DNA-Binding Proteins | Immunity, Active | STAT1 Tra | Interferon-alpha | Mycobacterium Infections | Membrane Proteins | Mutant Proteins | Cell Cycle Proteins | Infectious Diseases | Homo (Human) | Genetics of Disease
Journal Article
Journal Article
PloS one, ISSN 1932-6203, 2010, Volume 5, Issue 2, p. e9344
Background: Forsters resonance energy transfer (FRET) microscopy is widely used for the analysis of protein interactions in intact cells... 
DOWN-MODULATION | ACTIVATION | BINDS | MULTIDISCIPLINARY SCIENCES | VIRUS TYPE-1 NEF | VPU PROTEIN | RESONANCE ENERGY-TRANSFER | DEGRADATION | FLUORESCENT PROTEIN | HIV-1 VPU | EXPRESSION | Flow Cytometry - methods | Immunoprecipitation | Membrane Glycoproteins - metabolism | Humans | GPI-Linked Proteins | Gene Products, nef - genetics | Antigens, CD - genetics | Recombinant Fusion Proteins - metabolism | Viral Proteins - metabolism | Antigens, CD - metabolism | Transfection | Gene Products, nef - metabolism | Cell Line | HIV-1 - metabolism | Jurkat Cells | Viral Regulatory and Accessory Proteins - genetics | Viral Proteins - genetics | Binding Sites - genetics | Viral Regulatory and Accessory Proteins - metabolism | Membrane Glycoproteins - genetics | Human Immunodeficiency Virus Proteins - metabolism | Microscopy, Confocal | Protein Interaction Mapping - methods | Animals | Protein Binding | Recombinant Fusion Proteins - genetics | Fluorescence Resonance Energy Transfer - methods | Human Immunodeficiency Virus Proteins - genetics | Luminescent Proteins - genetics | Simian Immunodeficiency Virus - metabolism | HeLa Cells | Mutation | Luminescent Proteins - metabolism | Proteins | Health aspects | Protein-protein interactions | Flow cytometry | Target recognition | Medical treatment | Cloning | Viruses | Assaying | Virology | Studies | Cytometry | Immunology | Nef protein | Microscopy | Human immunodeficiency virus--HIV | Cells (biology) | Proteomics | Fluorescence resonance energy transfer | Protein interaction | Energy transfer | HIV | Human immunodeficiency virus
Journal Article
Proteins: Structure, Function, and Bioinformatics, ISSN 0887-3585, 09/2016, Volume 84, Issue S1, pp. 370 - 391
...INTRODUCTION Protein structure prediction has long been a tool in the biological sciences, since the structures of the first proteins were determined... 
protein function | missense mutation phenotype prediction | CASP11 | protein docking | protein structure prediction | Missense mutation phenotype prediction | Protein structure prediction | Protein docking | Protein function | COMPLEX | CRYSTAL-STRUCTURE | BIOCHEMISTRY & MOLECULAR BIOLOGY | MISSENSE MUTATIONS | SWISS-MODEL | CHAIN | BIOPHYSICS | DYSTROGLYCAN O-MANNOSYLATION | AUTOMATED PROTEIN DOCKING | HOMOLOGY MODELS | EGG-WHITE LYSOZYME | BINDING RESIDUE PREDICTIONS | HIV Envelope Protein gp120 - genetics | Humans | Protein Multimerization | Cyclic AMP-Dependent Protein Kinases - chemistry | Proto-Oncogene Proteins - chemistry | Structure-Activity Relationship | Mutation, Missense | HIV Envelope Protein gp120 - metabolism | Thermodynamics | Cyclic AMP-Dependent Protein Kinases - genetics | Hepatocyte Growth Factor - genetics | Protein Domains | HIV Envelope Protein gp120 - chemistry | Hepatocyte Growth Factor - chemistry | Binding Sites | Amidohydrolases - metabolism | Cyclic AMP-Dependent Protein Kinases - metabolism | Protein Structure, Tertiary | Proto-Oncogene Proteins - metabolism | Computational Biology - methods | Protein Structure, Secondary | Amidohydrolases - genetics | Proto-Oncogene Proteins - genetics | Models, Statistical | Amidohydrolases - chemistry | GPI-Linked Proteins - metabolism | Protein Folding | Hepatocyte Growth Factor - metabolism | Sequence Homology, Amino Acid | Phenotype | GPI-Linked Proteins - chemistry | Protein Binding | Ligands | Molecular Docking Simulation | GPI-Linked Proteins - genetics
Journal Article
Journal Article
Cell death and differentiation, ISSN 1476-5403, 2018, Volume 25, Issue 8, pp. 1426 - 1441
Identification and characterization of functional molecular targets conferring stemness properties in hepatocellular carcinoma (HCC) offers crucial insights to... 
EPITHELIAL-MESENCHYMAL TRANSITION | PROGENITOR CELLS | BREAST-CANCER | COLORECTAL TUMORS | ELEVATED EXPRESSION | SIGNALING PATHWAY | GASTRIC-CANCER | POOR-PROGNOSIS | BIOCHEMISTRY & MOLECULAR BIOLOGY | PROGNOSTIC-SIGNIFICANCE | BETA-CATENIN | CELL BIOLOGY | Axin Protein - genetics | Apoptosis - drug effects | Humans | Dishevelled Proteins - metabolism | Neoplasm Proteins - antagonists & inhibitors | Low Density Lipoprotein Receptor-Related Protein-6 - chemistry | Neoplasm Proteins - metabolism | Axin Protein - metabolism | Intercellular Signaling Peptides and Proteins - metabolism | RNA Interference | Frizzled Receptors - chemistry | Liver Neoplasms - pathology | Dishevelled Proteins - chemistry | GPI-Linked Proteins - antagonists & inhibitors | Neoplasm Proteins - genetics | Wnt Signaling Pathway | Intercellular Signaling Peptides and Proteins - genetics | Frizzled Receptors - metabolism | Sorafenib - pharmacology | Mice, SCID | beta Catenin - metabolism | GPI-Linked Proteins - metabolism | Low Density Lipoprotein Receptor-Related Protein-6 - metabolism | Animals | Carcinoma, Hepatocellular - pathology | Liver Neoplasms - metabolism | Cell Line, Tumor | Protein Binding | Mice, Inbred NOD | Mice | Carcinoma, Hepatocellular - metabolism | Drug Resistance, Neoplasm - drug effects | GPI-Linked Proteins - genetics | RNA, Small Interfering - metabolism | Cell proliferation | Phenotypes | Wnt protein | Frizzled protein | c-Myc protein | Chemoresistance | Hepatocellular carcinoma | Tumorigenicity | Transplantation | Myc protein | Metastases | β-catenin | Liver cancer | Signal transduction | Xenografts | Receptor density | Cell migration | Dishevelled protein
Journal Article
Journal Article