Literature DB >> 30496580

Screening for Developmental Neurotoxicity at the National Toxicology Program: The Future Is Here.

Mamta Behl1, Kristen Ryan1, Jui-Hua Hsieh2, Frederick Parham1, Andrew J Shapiro1, Bradley J Collins1, Nisha S Sipes1, Linda S Birnbaum1, John R Bucher1, Paul M D Foster1, Nigel J Walker1, Richard S Paules1, Raymond R Tice3.   

Abstract

The National Toxicology Program (NTP) receives requests to evaluate chemicals with potential to cause adverse health effects, including developmental neurotoxicity (DNT). Some recent requests have included classes of chemicals such as flame retardants, polycyclic aromatic compounds, perfluoroalkyl substances, and bisphenol A analogs with approximately 20-50 compounds per class, many of which include commercial mixtures. However, all the compounds within a class cannot be tested using traditional DNT animal testing guideline studies due to resource and time limitations. Hence, a rapid and biologically relevant screening approach is required to prioritize compounds for further in vivo testing. Because neurodevelopment is a complex process involving multiple distinct cellular processes, one assay will unlikely address the complexity. Hence, the NTP sought to characterize a battery of in vitro and alternative animal assays to quantify chemical effects on a variety of neurodevelopmental processes. A culmination of this effort resulted in a NTP-hosted collaborative project with approximately 40 participants spanning across domains of academia, industry, government, and regulatory agencies; collaborators presented data on cell-based assays and alternative animal models that was generated using a targeted set of compounds provided by the NTP. The NTP analyzed the assay results using benchmark concentration (BMC) modeling to be able to compare results across the divergent assays. The results were shared with the contributing researchers on a private web application during the workshop, and are now publicly available. This article highlights the overview and goals of the project, and describes the NTP's approach in creating the chemical library, development of NTPs data analysis strategy, and the structure of the web application. Finally, we discuss key issues with emphasis on the utility of this approach, and knowledge gaps that need to be addressed for its use in regulatory decision making.

Entities:  

Year:  2019        PMID: 30496580      PMCID: PMC6657567          DOI: 10.1093/toxsci/kfy278

Source DB:  PubMed          Journal:  Toxicol Sci        ISSN: 1096-0929            Impact factor:   4.849


  13 in total

1.  Heavy Metal Neurotoxicants Induce ALS-Linked TDP-43 Pathology.

Authors:  Peter E A Ash; Uma Dhawan; Samantha Boudeau; Shuwen Lei; Yari Carlomagno; Mark Knobel; Louloua F A Al Mohanna; Steven R Boomhower; M Christopher Newland; David H Sherr; Benjamin Wolozin
Journal:  Toxicol Sci       Date:  2019-01-01       Impact factor: 4.849

2.  Detection and Prioritization of Developmentally Neurotoxic and/or Neurotoxic Compounds Using Zebrafish.

Authors:  Celia Quevedo; Mamta Behl; Kristen Ryan; Richard S Paules; Aintzane Alday; Arantza Muriana; Ainhoa Alzualde
Journal:  Toxicol Sci       Date:  2019-03-01       Impact factor: 4.849

3.  Current status and future directions for a neurotoxicity hazard assessment framework that integrates in silico approaches.

Authors:  Kevin M Crofton; Arianna Bassan; Mamta Behl; Yaroslav G Chushak; Ellen Fritsche; Jeffery M Gearhart; Mary Sue Marty; Moiz Mumtaz; Manuela Pavan; Patricia Ruiz; Magdalini Sachana; Rajamani Selvam; Timothy J Shafer; Lidiya Stavitskaya; David T Szabo; Steven T Szabo; Raymond R Tice; Dan Wilson; David Woolley; Glenn J Myatt
Journal:  Comput Toxicol       Date:  2022-03-17

4.  In silico prediction of parkinsonian motor deficits-related neurotoxicants based on the adverse outcome pathway concept.

Authors:  Hung-Lin Kan; Chun-Wei Tung; Shao-En Chang; Ying-Chi Lin
Journal:  Arch Toxicol       Date:  2022-09-29       Impact factor: 6.168

5.  Potential frameworks to support evaluation of mechanistic data for developmental neurotoxicity outcomes: A symposium report.

Authors:  Laura M Carlson; Frances A Champagne; Deborah A Cory-Slechta; Laura Dishaw; Elaine Faustman; William Mundy; Deborah Segal; Christina Sobin; Carol Starkey; Michele Taylor; Susan L Makris; Andrew Kraft
Journal:  Neurotoxicol Teratol       Date:  2020-02-14       Impact factor: 3.763

6.  Developmental Exposure to PCB153 (2,2',4,4',5,5'-Hexachlorobiphenyl) Alters Circadian Rhythms and the Expression of Clock and Metabolic Genes.

Authors:  Neelakanteswar Aluru; Keegan S Krick; Adriane M McDonald; Sibel I Karchner
Journal:  Toxicol Sci       Date:  2020-01-01       Impact factor: 4.849

7.  Screening for neurotoxic potential of 15 flame retardants using freshwater planarians.

Authors:  Siqi Zhang; Danielle Ireland; Nisha S Sipes; Mamta Behl; Eva-Maria S Collins
Journal:  Neurotoxicol Teratol       Date:  2019-03-31       Impact factor: 4.071

8.  Evaluation of chemical compounds that inhibit neurite outgrowth using GFP-labeled iPSC-derived human neurons.

Authors:  Shuaizhang Li; Li Zhang; Ruili Huang; Tuan Xu; Fred Parham; Mamta Behl; Menghang Xia
Journal:  Neurotoxicology       Date:  2021-01-27       Impact factor: 4.398

9.  25th anniversary of the Berlin workshop on developmental toxicology: DevTox database update, challenges in risk assessment of developmental neurotoxicity and alternative methodologies in bone development and growth.

Authors:  Philip Marx-Stoelting; Marize de L M Solano; Hiroaki Aoyama; Ralf H Adams; Anna Bal-Price; Jochen Buschmann; Ibrahim Chahoud; Ruth Clark; Tian Fang; Michio Fujiwara; Michael Gelinsky; Konstanze Grote; Masao Horimoto; Susanne Hougaard Bennekou; Rupert Kellner; Makiko Kuwagata; Marcel Leist; Annemarie Lang; Weihua Li; Alberto Mantovani; Susan L Makris; Francisco Paumgartten; Monique Perron; Magdalini Sachana; Anne Schmitt; Steffen Schneider; Gilbert Schönfelder; Frank Schulze; Kohei Shiota; Roland Solecki
Journal:  Reprod Toxicol       Date:  2020-12-02       Impact factor: 3.421

10.  The EU-ToxRisk method documentation, data processing and chemical testing pipeline for the regulatory use of new approach methods.

Authors:  Alice Krebs; Barbara M A van Vugt-Lussenburg; Tanja Waldmann; Wiebke Albrecht; Jan Boei; Bas Ter Braak; Maja Brajnik; Thomas Braunbeck; Tim Brecklinghaus; Francois Busquet; Andras Dinnyes; Joh Dokler; Xenia Dolde; Thomas E Exner; Ciarán Fisher; David Fluri; Anna Forsby; Jan G Hengstler; Anna-Katharina Holzer; Zofia Janstova; Paul Jennings; Jaffar Kisitu; Julianna Kobolak; Manoj Kumar; Alice Limonciel; Jessica Lundqvist; Balázs Mihalik; Wolfgang Moritz; Giorgia Pallocca; Andrea Paola Cediel Ulloa; Manuel Pastor; Costanza Rovida; Ugis Sarkans; Johannes P Schimming; Bela Z Schmidt; Regina Stöber; Tobias Strassfeld; Bob van de Water; Anja Wilmes; Bart van der Burg; Catherine M Verfaillie; Rebecca von Hellfeld; Harry Vrieling; Nanette G Vrijenhoek; Marcel Leist
Journal:  Arch Toxicol       Date:  2020-07-06       Impact factor: 5.153

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