Olivier Taboureau

dblp:02/9442 · DBLP profile ↗
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3ranked-venue papers
1as first author
0since 2021 · last 2019
0000-0001-7081-2491ORCID · verified

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

Applied, interdisciplinary, general and emerging computing · 3 · 1 first-author

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
2 papers
Bioinformatics and computational biology · 68% Environmental and earth informatics · 32%

Topics — the 4 heaviest of 4, each with the papers that count most for it

TopicWeightPapersLastEvidence papers
Bioinformatics and computational biology › genomics
toxicogenomics
0.522019
sAOP: linking chemical stressors to adverse outcomes pathway networks · Bioinform. 2019
HExpoChem: a systems biology resource to explore human exposure to chemicals · Bioinform. 2013
Environmental and earth informatics
adverse outcome pathway
0.412019
sAOP: linking chemical stressors to adverse outcomes pathway networks · Bioinform. 2019
Bioinformatics and computational biology
systems biology
0.212013
HExpoChem: a systems biology resource to explore human exposure to chemicals · Bioinform. 2013
Bioinformatics and computational biology › drug discovery
compound prioritization
0.112019
sAOP: linking chemical stressors to adverse outcomes pathway networks · Bioinform. 2019

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

toxcast data integration · 0.4network mapping · 0.4protein-protein interaction network analysis · 0.2phenotypic enrichment · 0.2
YearPublicationVenuePosition
2019 sAOP: linking chemical stressors to adverse outcomes pathway networks
abstract
MOTIVATION: Adverse outcome pathway (AOP) is a toxicological concept proposed to provide a mechanistic representation of biological perturbation over different layers of biological organization. Although AOPs are by definition chemical-agnostic, many chemical stressors can putatively interfere with one or several AOPs and such information would be relevant for regulatory decision-making. RESULTS: With the recent development of AOPs networks aiming to facilitate the identification of interactions among AOPs, we developed a stressor-AOP network (sAOP). Using the 'cytotoxitiy burst' (CTB) approach, we mapped bioactive compounds from the ToxCast data to a list of AOPs reported in AOP-Wiki database. With this analysis, a variety of relevant connections between chemicals and AOP components can be identified suggesting multiple effects not observed in the simplified 'one-biological perturbation to one-adverse outcome' model. The results may assist in the prioritization of chemicals to assess risk-based evaluations in the context of human health. AVAILABILITY AND IMPLEMENTATION: sAOP is available at http://saop.cpr.ku.dk. SUPPLEMENTARY INFORMATION: Supplementary data are available at Bioinformatics online.
Alejandro Aguayo-Orozco, Karine Audouze, Troels Siggaard, Robert Barouki, Søren Brunak, Olivier Taboureau
Bioinform.6
2013 HExpoChem: a systems biology resource to explore human exposure to chemicals
abstract
SUMMARY: Humans are exposed to diverse hazardous chemicals daily. Although an exposure to these chemicals is suspected to have adverse effects on human health, mechanistic insights into how they interact with the human body are still limited. Therefore, acquisition of curated data and development of computational biology approaches are needed to assess the health risks of chemical exposure. Here we present HExpoChem, a tool based on environmental chemicals and their bioactivities on human proteins with the objective of aiding the qualitative exploration of human exposure to chemicals. The chemical-protein interactions have been enriched with a quality-scored human protein-protein interaction network, a protein-protein association network and a chemical-chemical interaction network, thus allowing the study of environmental chemicals through formation of protein complexes and phenotypic outcomes enrichment. AVAILABILITY: HExpoChem is available at http://www.cbs.dtu.dk/services/HExpoChem-1.0/.
Olivier Taboureau, Ulrik Plesner Jacobsen, Christian Gram Kalhauge, Daniel Edsgärd, Olga Rigina, Ramneek Gupta, Karine Audouze
Bioinform.1
2010 Deciphering Diseases and Biological Targets for Environmental Chemicals using Toxicogenomics Networks
abstract
Exposure to environmental chemicals and drugs may have a negative effect on human health. A better understanding of the molecular mechanism of such compounds is needed to determine the risk. We present a high confidence human protein-protein association network built upon the integration of chemical toxicology and systems biology. This computational systems chemical biology model reveals uncharacterized connections between compounds and diseases, thus predicting which compounds may be risk factors for human health. Additionally, the network can be used to identify unexpected potential associations between chemicals and proteins. Examples are shown for chemicals associated with breast cancer, lung cancer and necrosis, and potential protein targets for di-ethylhexyl-phthalate, 2,3,7,8-tetrachlorodibenzo-p-dioxin, pirinixic acid and permethrine. The chemical-protein associations are supported through recent published studies, which illustrate the power of our approach that integrates toxicogenomics data with other data types.
Karine Audouze, Agnieszka Sierakowska Juncker, Francisco S. Roque, Konrad Krysiak-Baltyn, Nils Weinhold, Olivier Taboureau, Thomas Skøt Jensen, Søren Brunak
PLoS Comput. Biol.6