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Collaborative development of predictive toxicology applications

OpenTox provides an interoperable, standards-based Framework for the support of predictive toxicology data management, algorithms, modelling, validation and reporting. It is relevant to satisfying the chemical safety assessment requirements of the REACH legislation as it supports access to experimen...

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Autores principales: Hardy, Barry, Douglas, Nicki, Helma, Christoph, Rautenberg, Micha, Jeliazkova, Nina, Jeliazkov, Vedrin, Nikolova, Ivelina, Benigni, Romualdo, Tcheremenskaia, Olga, Kramer, Stefan, Girschick, Tobias, Buchwald, Fabian, Wicker, Joerg, Karwath, Andreas, Gütlein, Martin, Maunz, Andreas, Sarimveis, Haralambos, Melagraki, Georgia, Afantitis, Antreas, Sopasakis, Pantelis, Gallagher, David, Poroikov, Vladimir, Filimonov, Dmitry, Zakharov, Alexey, Lagunin, Alexey, Gloriozova, Tatyana, Novikov, Sergey, Skvortsova, Natalia, Druzhilovsky, Dmitry, Chawla, Sunil, Ghosh, Indira, Ray, Surajit, Patel, Hitesh, Escher, Sylvia
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2941473/
https://www.ncbi.nlm.nih.gov/pubmed/20807436
http://dx.doi.org/10.1186/1758-2946-2-7
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author Hardy, Barry
Douglas, Nicki
Helma, Christoph
Rautenberg, Micha
Jeliazkova, Nina
Jeliazkov, Vedrin
Nikolova, Ivelina
Benigni, Romualdo
Tcheremenskaia, Olga
Kramer, Stefan
Girschick, Tobias
Buchwald, Fabian
Wicker, Joerg
Karwath, Andreas
Gütlein, Martin
Maunz, Andreas
Sarimveis, Haralambos
Melagraki, Georgia
Afantitis, Antreas
Sopasakis, Pantelis
Gallagher, David
Poroikov, Vladimir
Filimonov, Dmitry
Zakharov, Alexey
Lagunin, Alexey
Gloriozova, Tatyana
Novikov, Sergey
Skvortsova, Natalia
Druzhilovsky, Dmitry
Chawla, Sunil
Ghosh, Indira
Ray, Surajit
Patel, Hitesh
Escher, Sylvia
author_facet Hardy, Barry
Douglas, Nicki
Helma, Christoph
Rautenberg, Micha
Jeliazkova, Nina
Jeliazkov, Vedrin
Nikolova, Ivelina
Benigni, Romualdo
Tcheremenskaia, Olga
Kramer, Stefan
Girschick, Tobias
Buchwald, Fabian
Wicker, Joerg
Karwath, Andreas
Gütlein, Martin
Maunz, Andreas
Sarimveis, Haralambos
Melagraki, Georgia
Afantitis, Antreas
Sopasakis, Pantelis
Gallagher, David
Poroikov, Vladimir
Filimonov, Dmitry
Zakharov, Alexey
Lagunin, Alexey
Gloriozova, Tatyana
Novikov, Sergey
Skvortsova, Natalia
Druzhilovsky, Dmitry
Chawla, Sunil
Ghosh, Indira
Ray, Surajit
Patel, Hitesh
Escher, Sylvia
author_sort Hardy, Barry
collection PubMed
description OpenTox provides an interoperable, standards-based Framework for the support of predictive toxicology data management, algorithms, modelling, validation and reporting. It is relevant to satisfying the chemical safety assessment requirements of the REACH legislation as it supports access to experimental data, (Quantitative) Structure-Activity Relationship models, and toxicological information through an integrating platform that adheres to regulatory requirements and OECD validation principles. Initial research defined the essential components of the Framework including the approach to data access, schema and management, use of controlled vocabularies and ontologies, architecture, web service and communications protocols, and selection and integration of algorithms for predictive modelling. OpenTox provides end-user oriented tools to non-computational specialists, risk assessors, and toxicological experts in addition to Application Programming Interfaces (APIs) for developers of new applications. OpenTox actively supports public standards for data representation, interfaces, vocabularies and ontologies, Open Source approaches to core platform components, and community-based collaboration approaches, so as to progress system interoperability goals. The OpenTox Framework includes APIs and services for compounds, datasets, features, algorithms, models, ontologies, tasks, validation, and reporting which may be combined into multiple applications satisfying a variety of different user needs. OpenTox applications are based on a set of distributed, interoperable OpenTox API-compliant REST web services. The OpenTox approach to ontology allows for efficient mapping of complementary data coming from different datasets into a unifying structure having a shared terminology and representation. Two initial OpenTox applications are presented as an illustration of the potential impact of OpenTox for high-quality and consistent structure-activity relationship modelling of REACH-relevant endpoints: ToxPredict which predicts and reports on toxicities for endpoints for an input chemical structure, and ToxCreate which builds and validates a predictive toxicity model based on an input toxicology dataset. Because of the extensible nature of the standardised Framework design, barriers of interoperability between applications and content are removed, as the user may combine data, models and validation from multiple sources in a dependable and time-effective way.
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spelling pubmed-29414732010-09-18 Collaborative development of predictive toxicology applications Hardy, Barry Douglas, Nicki Helma, Christoph Rautenberg, Micha Jeliazkova, Nina Jeliazkov, Vedrin Nikolova, Ivelina Benigni, Romualdo Tcheremenskaia, Olga Kramer, Stefan Girschick, Tobias Buchwald, Fabian Wicker, Joerg Karwath, Andreas Gütlein, Martin Maunz, Andreas Sarimveis, Haralambos Melagraki, Georgia Afantitis, Antreas Sopasakis, Pantelis Gallagher, David Poroikov, Vladimir Filimonov, Dmitry Zakharov, Alexey Lagunin, Alexey Gloriozova, Tatyana Novikov, Sergey Skvortsova, Natalia Druzhilovsky, Dmitry Chawla, Sunil Ghosh, Indira Ray, Surajit Patel, Hitesh Escher, Sylvia J Cheminform Research Article OpenTox provides an interoperable, standards-based Framework for the support of predictive toxicology data management, algorithms, modelling, validation and reporting. It is relevant to satisfying the chemical safety assessment requirements of the REACH legislation as it supports access to experimental data, (Quantitative) Structure-Activity Relationship models, and toxicological information through an integrating platform that adheres to regulatory requirements and OECD validation principles. Initial research defined the essential components of the Framework including the approach to data access, schema and management, use of controlled vocabularies and ontologies, architecture, web service and communications protocols, and selection and integration of algorithms for predictive modelling. OpenTox provides end-user oriented tools to non-computational specialists, risk assessors, and toxicological experts in addition to Application Programming Interfaces (APIs) for developers of new applications. OpenTox actively supports public standards for data representation, interfaces, vocabularies and ontologies, Open Source approaches to core platform components, and community-based collaboration approaches, so as to progress system interoperability goals. The OpenTox Framework includes APIs and services for compounds, datasets, features, algorithms, models, ontologies, tasks, validation, and reporting which may be combined into multiple applications satisfying a variety of different user needs. OpenTox applications are based on a set of distributed, interoperable OpenTox API-compliant REST web services. The OpenTox approach to ontology allows for efficient mapping of complementary data coming from different datasets into a unifying structure having a shared terminology and representation. Two initial OpenTox applications are presented as an illustration of the potential impact of OpenTox for high-quality and consistent structure-activity relationship modelling of REACH-relevant endpoints: ToxPredict which predicts and reports on toxicities for endpoints for an input chemical structure, and ToxCreate which builds and validates a predictive toxicity model based on an input toxicology dataset. Because of the extensible nature of the standardised Framework design, barriers of interoperability between applications and content are removed, as the user may combine data, models and validation from multiple sources in a dependable and time-effective way. BioMed Central 2010-08-31 /pmc/articles/PMC2941473/ /pubmed/20807436 http://dx.doi.org/10.1186/1758-2946-2-7 Text en Copyright ©2010 Hardy et al; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Hardy, Barry
Douglas, Nicki
Helma, Christoph
Rautenberg, Micha
Jeliazkova, Nina
Jeliazkov, Vedrin
Nikolova, Ivelina
Benigni, Romualdo
Tcheremenskaia, Olga
Kramer, Stefan
Girschick, Tobias
Buchwald, Fabian
Wicker, Joerg
Karwath, Andreas
Gütlein, Martin
Maunz, Andreas
Sarimveis, Haralambos
Melagraki, Georgia
Afantitis, Antreas
Sopasakis, Pantelis
Gallagher, David
Poroikov, Vladimir
Filimonov, Dmitry
Zakharov, Alexey
Lagunin, Alexey
Gloriozova, Tatyana
Novikov, Sergey
Skvortsova, Natalia
Druzhilovsky, Dmitry
Chawla, Sunil
Ghosh, Indira
Ray, Surajit
Patel, Hitesh
Escher, Sylvia
Collaborative development of predictive toxicology applications
title Collaborative development of predictive toxicology applications
title_full Collaborative development of predictive toxicology applications
title_fullStr Collaborative development of predictive toxicology applications
title_full_unstemmed Collaborative development of predictive toxicology applications
title_short Collaborative development of predictive toxicology applications
title_sort collaborative development of predictive toxicology applications
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2941473/
https://www.ncbi.nlm.nih.gov/pubmed/20807436
http://dx.doi.org/10.1186/1758-2946-2-7
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