The polypharmacology browser: a web-based multi-fingerprint target prediction tool using ChEMBL bioactivity data
暂无分享,去创建一个
[1] Ryan G. Coleman,et al. ZINC: A Free Tool to Discover Chemistry for Biology , 2012, J. Chem. Inf. Model..
[2] Alex M. Clark,et al. New target prediction and visualization tools incorporating open source molecular fingerprints for TB Mobile 2.0 , 2014, Journal of Cheminformatics.
[3] Tudor I. Oprea,et al. ChemProt-3.0: a global chemical biology diseases mapping , 2016, Database J. Biol. Databases Curation.
[4] Anders Wallqvist,et al. Exploring Polypharmacology Using a ROCS-Based Target Fishing Approach , 2012, J. Chem. Inf. Model..
[5] David S. Wishart,et al. DrugBank: a comprehensive resource for in silico drug discovery and exploration , 2005, Nucleic Acids Res..
[6] Pierre Baldi,et al. When is Chemical Similarity Significant? The Statistical Distribution of Chemical Similarity Scores and Its Extreme Values , 2010, J. Chem. Inf. Model..
[7] Tudor I. Oprea,et al. ChemProt-3.0: a global chemical biology diseases mapping , 2016, Database J. Biol. Databases Curation.
[8] Timothy Clark,et al. Quantum-mechanics-based molecular interaction fields for 3D-QSAR , 2014, Journal of Cheminformatics.
[9] Peter Willett,et al. Fusing similarity rankings in ligand-based virtual screening , 2013, Computational and structural biotechnology journal.
[10] Andreas Bender,et al. From in silico target prediction to multi-target drug design: current databases, methods and applications. , 2011, Journal of proteomics.
[11] Jean-Louis Reymond,et al. Visualization and Virtual Screening of the Chemical Universe Database GDB-17 , 2013, J. Chem. Inf. Model..
[12] Péter Hári,et al. Virtual Affinity Fingerprints for Target Fishing: A New Application of Drug Profile Matching , 2013, J. Chem. Inf. Model..
[13] Pierre Baldi,et al. Accurate and efficient target prediction using a potency-sensitive influence-relevance voter , 2015, Journal of Cheminformatics.
[14] Richard E. Turner,et al. A multi-label approach to target prediction taking ligand promiscuity into account , 2015, Journal of Cheminformatics.
[15] Xia Wang,et al. Enhancing the Enrichment of Pharmacophore-Based Target Prediction for the Polypharmacological Profiles of Drugs , 2016, J. Chem. Inf. Model..
[16] J. Irwin,et al. Benchmarking sets for molecular docking. , 2006, Journal of medicinal chemistry.
[17] Jean-Louis Reymond,et al. A multi-fingerprint browser for the ZINC database , 2014, Nucleic Acids Res..
[18] J. Reymond. The chemical space project. , 2015, Accounts of chemical research.
[19] Kai Huang,et al. PharmMapper server: a web server for potential drug target identification using pharmacophore mapping approach , 2010, Nucleic Acids Res..
[20] Petra Schneider,et al. Identifying the macromolecular targets of de novo-designed chemical entities through self-organizing map consensus , 2014, Proceedings of the National Academy of Sciences.
[21] George Karypis,et al. Target Fishing for Chemical Compounds Using Target-Ligand Activity Data and Ranking Based Methods , 2009, J. Chem. Inf. Model..
[22] John P. Overington,et al. How many drug targets are there? , 2006, Nature Reviews Drug Discovery.
[23] Michael K. Gilson,et al. BindingDB in 2015: A public database for medicinal chemistry, computational chemistry and systems pharmacology , 2015, Nucleic Acids Res..
[24] Xian Liu,et al. TarPred: a web application for predicting therapeutic and side effect targets of chemical compounds , 2015, Bioinform..
[25] Thomas Steinke,et al. The MoSGrid - e-science gateway: molecular simulations in a distributed computing environment , 2013, Journal of Cheminformatics.
[26] Xiaofeng Liu,et al. ChemMapper: a versatile web server for exploring pharmacology and chemical structure association based on molecular 3D similarity method , 2013, Bioinform..
[27] Tudor I. Oprea,et al. WOMBAT and WOMBAT‐PK: Bioactivity Databases for Lead and Drug Discovery , 2008 .
[28] Zheng Yin,et al. Improving chemical similarity ensemble approach in target prediction , 2016, Journal of Cheminformatics.
[29] Jean-Louis Reymond,et al. SMIfp (SMILES fingerprint) Chemical Space for Virtual Screening and Visualization of Large Databases of Organic Molecules , 2013, J. Chem. Inf. Model..
[30] Zhiyong Lu,et al. The CHEMDNER corpus of chemicals and drugs and its annotation principles , 2015, Journal of Cheminformatics.
[31] Andreas Bender,et al. Ligand-Target Prediction Using Winnow and Naive Bayesian Algorithms and the Implications of Overall Performance Statistics , 2008, J. Chem. Inf. Model..
[32] Monica Campillos,et al. HitPick: a web server for hit identification and target prediction of chemical screenings , 2013, Bioinform..
[33] Meir Glick,et al. Prediction of Biological Targets for Compounds Using Multiple-Category Bayesian Models Trained on Chemogenomics Databases , 2006, J. Chem. Inf. Model..
[34] Vladimir Poroikov,et al. PASS: prediction of activity spectra for biologically active substances , 2000, Bioinform..
[35] Peter Ertl,et al. JSME: a free molecule editor in JavaScript , 2013, Journal of Cheminformatics.
[36] J. Bajorath,et al. Polypharmacology: challenges and opportunities in drug discovery. , 2014, Journal of medicinal chemistry.
[37] David Rogers,et al. Extended-Connectivity Fingerprints , 2010, J. Chem. Inf. Model..
[38] Jean-Louis Reymond,et al. Discovery of α7-Nicotinic Receptor Ligands by Virtual Screening of the Chemical Universe Database GDB-13 , 2011, J. Chem. Inf. Model..
[39] Lirong Wang,et al. TargetHunter: An In Silico Target Identification Tool for Predicting Therapeutic Potential of Small Organic Molecules Based on Chemogenomic Database , 2013, The AAPS Journal.
[40] David S. Goodsell,et al. The RCSB Protein Data Bank: views of structural biology for basic and applied research and education , 2014, Nucleic Acids Res..
[41] Adrià Cereto-Massagué,et al. Tools for in silico target fishing. , 2015, Methods.
[42] Lorenz C. Blum,et al. Classification of Organic Molecules by Molecular Quantum Numbers , 2009, ChemMedChem.
[43] Thomas R. Hagadone,et al. Molecular substructure similarity searching: efficient retrieval in two-dimensional structure databases , 1992, J. Chem. Inf. Comput. Sci..
[44] John P. Overington,et al. ChEMBL: a large-scale bioactivity database for drug discovery , 2011, Nucleic Acids Res..
[45] Yanli Wang,et al. Predicting Molecular Targets for Small‐Molecule Drugs with a Ligand‐Based Interaction Fingerprint Approach , 2016, ChemMedChem.
[46] A. Bender,et al. In silico target fishing: Predicting biological targets from chemical structure , 2006 .
[47] Evan Bolton,et al. PubChem3D: conformer ensemble accuracy , 2013, Journal of Cheminformatics.
[48] Lin He,et al. DRAR-CPI: a server for identifying drug repositioning potential and adverse drug reactions via the chemical–protein interactome , 2011, Nucleic Acids Res..
[49] Michael J. Keiser,et al. Relating protein pharmacology by ligand chemistry , 2007, Nature Biotechnology.
[50] Aurélien Grosdidier,et al. SwissTargetPrediction: a web server for target prediction of bioactive small molecules , 2014, Nucleic Acids Res..
[51] Jean-Louis Reymond,et al. Optimization of TRPV6 Calcium Channel Inhibitors Using a 3D Ligand-Based Virtual Screening Method. , 2015, Angewandte Chemie.
[52] Antonio Lavecchia,et al. In silico methods to address polypharmacology: current status, applications and future perspectives. , 2016, Drug discovery today.
[53] Lorenz C. Blum,et al. 970 million druglike small molecules for virtual screening in the chemical universe database GDB-13. , 2009, Journal of the American Chemical Society.
[54] Liliane Mouawad,et al. vSDC: a method to improve early recognition in virtual screening when limited experimental resources are available , 2016, Journal of Cheminformatics.
[55] Mathias Dunkel,et al. SuperPred: update on drug classification and target prediction , 2014, Nucleic Acids Res..
[56] Xiaomin Luo,et al. TarFisDock: a web server for identifying drug targets with docking approach , 2006, Nucleic Acids Res..
[57] Björn Sommer,et al. Membrane Packing Problems: A short Review on computational Membrane Modeling Methods and Tools , 2013, Computational and structural biotechnology journal.
[58] Yanli Wang,et al. PubChem: a public information system for analyzing bioactivities of small molecules , 2009, Nucleic Acids Res..
[59] Alex Clark. Putting together the pieces: building a reaction-centric electronic lab notebook for mobile devices , 2014, Journal of Cheminformatics.
[60] Jean-Louis Reymond,et al. Atom Pair 2D-Fingerprints Perceive 3D-Molecular Shape and Pharmacophores for Very Fast Virtual Screening of ZINC and GDB-17 , 2014, J. Chem. Inf. Model..
[61] Lazaros Mavridis,et al. Predicting the protein targets for athletic performance-enhancing substances , 2013, Journal of Cheminformatics.