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February 25, 2026Cell Biology and Toxicology5 citationsOpen Access

Brain organoids in environmental neurotoxicology: applications, mechanisms, and future perspectives

JLJiayi LiuChangchun University of Science and TechnologyYXYanling XieSichuan UniversityMZMeihui ZhuSichuan University

Key Points

  • This review aims to highlight the significance of brain organoids in understanding environmental neurotoxicology and their mechanisms.
  • Review of the literature on brain organoids and neurotoxicology
  • Analysis of brain organoid construction principles and advantages
  • Discussion on sensitivity of brain organoids to low-dose environmental exposures
  • Evaluation of future model enhancements including AI integration and vascularization
  • Brain organoids show enhanced sensitivity to chronic low-dose environmental contaminants
  • They effectively replicate complex human brain development characteristics
  • Integration with adverse outcome pathways improves mechanistic insights
  • Future developments will focus on model complexity and standardized frameworks

Abstract

The advent of human induced pluripotent stem cell (hiPSC)-derived brain organoids represents a significant advance in environmental neurotoxicology, propelling the discipline toward human-relevant, mechanistic, and predictive in vitro paradigms. This review explores the utility of brain organoids in environmental neurotoxicology, which uniquely address critical limitations of traditional models by recapitulating key aspects of human brain development, including three-dimensional (3D) cytoarchitecture, multilineage cellular heterogeneity, and functional network activity. This review systematically elaborates on their construction principles, unique advantages in neurotoxicological research, and the significant progress made in elucidating mechanisms of toxicity. Notably, brain organoids exhibit enhanced sensitivity in identifying the subtle adverse outcomes of chronic, low-dose exposures to environmental contaminants, often eluding conventional approaches. Their key advantage lies in the greater capacity to deconstruct complex toxicological pathways, enabling precise tracing of adverse outcome pathways (AOPs). Future development requires enhancing model complexity through vascularization, promoting automation and standardization, and integrating artificial intelligence (AI) for data analysis. Concurrently, establishing sustained ethical oversight and standardized frameworks is essential to ultimately advance the field toward more precise and efficient hazard identification and risk characterization.Highlights1. Human brain organoids bridge species gaps for more human-relevant neurotoxicity assessment.2. Brain organoids effectively recapitulate chronic, low-dose and mixture environmental risks.3. Integrating brain organoid data into the AOP frameworks enhances mechanistic understanding.4. Coupling brain organoids with organ-on-a-chip and AI advances next-generation risk assessment.

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Cite This Study

Liu et al. (2026) studied this question.

synapsesocial.com/papers/699e9143f5123be5ed04ea0ehttps://doi.org/10.1007/s10565-026-10161-8
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