George Papadatos

dblp:126/0334 · DBLP profile ↗
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4ranked-venue papers
0as first author
0since 2021 · last 2015
0000-0002-8314-7061ORCID · verified

Domains — the database's venue-derived domains; a paper can count in several

Applied, interdisciplinary, general and emerging computing · 4

Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.

Interdisciplinary, comprehensive, and emerging computing
3 papers
Bioinformatics and computational biology · 90% Medical and health informatics · 10%
Databases, data mining, and information retrieval
1 paper
Database system architecture and tuning · 100%

Topics — the 5 heaviest of 7, each with the papers that count most for it

TopicWeightPapersLastEvidence papers
Bioinformatics and computational biology
comparative genomics
0.212015
ADME SARfari: comparative genomics of drug metabolizing systems · Bioinform. 2015
Bioinformatics and computational biology › molecular informatics
cheminformatics
0.212014
myChEMBL: a virtual machine implementation of open data and cheminformatics tools · Bioinform. 2014
Bioinformatics and computational biology › molecular informatics › cheminformatics
chemogenomics
0.212013
ChEMBLSpace - a graphical explorer of the chemogenomic space covered by the ChEMBL database · Bioinform. 2013
Medical and health informatics
pharmacokinetics
0.112015
ADME SARfari: comparative genomics of drug metabolizing systems · Bioinform. 2015
Bioinformatics and computational biology
drug discovery
0.012013
ChEMBLSpace - a graphical explorer of the chemogenomic space covered by the ChEMBL database · Bioinform. 2013

Methods — techniques the papers use, named apart from their topics

predictive modeling · 0.2data integration · 0.2graphical exploration · 0.2
YearPublicationVenuePosition
2015 ADME SARfari: comparative genomics of drug metabolizing systems
abstract
MOTIVATION: ADME SARfari is a freely available web resource that enables comparative analyses of drug-disposition genes. It does so by integrating a number of publicly available data sources, which have subsequently been used to build data mining services, predictive tools and visualizations for drug metabolism researchers. The data include the interactions of small molecules with ADME (absorption, distribution, metabolism and excretion) proteins responsible for the metabolism and transport of molecules; available pharmacokinetic (PK) data; protein sequences of ADME-related molecular targets for pre-clinical model species and human; alignments of the orthologues including information on known SNPs (Single Nucleotide Polymorphism) and information on the tissue distribution of these proteins. In addition, in silico models have been developed, which enable users to predict which ADME relevant protein targets a novel compound is likely to interact with.
Mark Davies, Nathan Dedman, Anne Hersey, George Papadatos, Matthew D. Hall, Lourdes Cucurull-Sanchez, Phil Jeffrey, Samiul Hasan, Peter J. Eddershaw, John P. Overington
Bioinform.4
2014 myChEMBL: a virtual machine implementation of open data and cheminformatics tools
abstract
UNLABELLED: myChEMBL is a completely open platform, which combines public domain bioactivity data with open source database and cheminformatics technologies. myChEMBL consists of a Linux (Ubuntu) Virtual Machine featuring a PostgreSQL schema with the latest version of the ChEMBL database, as well as the latest RDKit cheminformatics libraries. In addition, a self-contained web interface is available, which can be modified and improved according to user specifications. AVAILABILITY AND IMPLEMENTATION: The VM is available at: ftp://ftp.ebi.ac.uk/pub/databases/chembl/VM/myChEMBL/current. The web interface and web services code is available at: https://github.com/rochoa85/myChEMBL.
Rodrigo Ochoa, Mark Davies, George Papadatos, Francis Atkinson, John P. Overington
Bioinform.3
2013 ChEMBLSpace - a graphical explorer of the chemogenomic space covered by the ChEMBL database
abstract
MOTIVATION: The ChEMBLSpace graphical explorer enables the identification of compounds from the ChEMBL database, which exhibit a desirable polypharmacology profile. This profile can be predefined or created iteratively, and the tool can be extended to other data sources.
Nikolas Fechner, George Papadatos, David A. Evans 0002, John Richard Morphy, Suzanne Clare Brewerton, David A. Thorner, Michael J. Bodkin
Bioinform.2
2013 Target Prediction for an Open Access Set of Compounds Active against Mycobacterium tuberculosis
abstract
Mycobacterium tuberculosis, the causative agent of tuberculosis (TB), infects an estimated two billion people worldwide and is the leading cause of mortality due to infectious disease. The development of new anti-TB therapeutics is required, because of the emergence of multi-drug resistance strains as well as co-infection with other pathogens, especially HIV. Recently, the pharmaceutical company GlaxoSmithKline published the results of a high-throughput screen (HTS) of their two million compound library for anti-mycobacterial phenotypes. The screen revealed 776 compounds with significant activity against the M. tuberculosis H37Rv strain, including a subset of 177 prioritized compounds with high potency and low in vitro cytotoxicity. The next major challenge is the identification of the target proteins. Here, we use a computational approach that integrates historical bioassay data, chemical properties and structural comparisons of selected compounds to propose their potential targets in M. tuberculosis. We predicted 139 target--compound links, providing a necessary basis for further studies to characterize the mode of action of these compounds. The results from our analysis, including the predicted structural models, are available to the wider scientific community in the open source mode, to encourage further development of novel TB therapeutics.
Francisco Martínez-Jiménez, George Papadatos, Lun Yang, Iain M. Wallace, Ursula Pieper 0001, Andrej Sali, James R. Brown, John P. Overington, Marc A. Martí-Renom
PLoS Comput. Biol.2