Expanding the test set: Chemicals with potential to disrupt mammalian brain development

William R Mundy1, Stephanie Padilla1, Joseph M Breier1

  • 1National Health and Environmental Effects Research Laboratory, U.S. Environmental Protection Agency, Research Triangle Park, NC, USA.

Insights

Developing new assays for developmental neurotoxicity requires specific chemical "training sets." A comprehensive test battery needs a "test set" of chemicals with known adverse effects on neurodevelopment, including animal data, to evaluate predictive ability.

Area of Science:

  • Toxicology
  • Neuroscience
  • Developmental Biology

Background:

  • High-throughput assays are crucial for detecting developmental neurotoxicants.
  • Evaluating individual assays uses chemical "training sets."
  • Assessing a full test battery requires a distinct chemical "test set."

Purpose of the Study:

  • To compile a comprehensive test set for evaluating developmental neurotoxicity (DN) test batteries.
  • To expand the available test set beyond chemicals with known human neurodevelopmental effects.
  • To identify chemicals with demonstrated adverse effects on neurodevelopment in mammalian studies.

Main Methods:

  • Conducted a literature review of mammalian studies and U.S. EPA regulatory data.
  • Defined developmental neurotoxicity to include behavioral, morphological, and neurochemical changes.
  • Included chemicals with data from multiple independent laboratories and human evidence where available.

Main Results:

  • Identified approximately 100 chemicals for the developmental neurotoxicity test set.
  • Excluded compounds causing neurotoxicity only at maternally toxic or lethal doses.
  • Found that 22% of the identified chemicals have supporting evidence from human studies.

Conclusions:

  • An expanded test set, including animal data, is necessary for evaluating comprehensive developmental neurotoxicity test batteries.
  • The identified set of ~100 chemicals provides a basis for validating predictive models.
  • Further research and data are needed to strengthen the evaluation of developmental neurotoxicants.

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