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Perinatal exposure to the immune-suppressant di-n-octyltin dichloride affects brain development in rats
Didima M G de Groot1, Louisa Linders1, Reinier Kayser1
1Department of Toxicology and Applied Pharmacology, TNO Nutrition and Food Research (as part of TNO Quality of Life), Zeist, the Netherlands.
Abstract:
Disruption of the immune system during embryonic brain development by environmental chemicals was proposed as a possible cause of neurodevelopmental disorders. We previously found adverse effects of di-n-octyltin dichloride (DOTC) on maternal and developing immune systems of rats in an extended one-generation reproductive toxicity study according to the OECD 443 test guideline. We hypothesize that the DOTC-induced changes in the immune system can affect neurodevelopment. Therefore, we used in-vivo MRI and PET imaging and genomics, in addition to behavioral testing and neuropathology as proposed in OECD test guideline 443, to investigate the effect of DOTC on structural and functional brain development. Male rats were exposed to DOTC (0, 3, 10, or 30 mg/kg of diet) from 2 weeks prior to mating of the F0-generation until sacrifice of F1-animals. The brains of rats, exposed to DOTC showed a transiently enlarged volume of specific brain regions (MRI), altered specific gravity, and transient hyper-metabolism ([18F]FDG PET). The alterations in brain development concurred with hyper-responsiveness in auditory startle response and slight hyperactivity in young adult animals. Genomics identified altered transcription of key regulators involved in neurodevelopment and neural function (e.g. Nrgrn, Shank3, Igf1r, Cck, Apba2, Foxp2); and regulators involved in cell size, cell proliferation, and organ development, especially immune system development and functioning (e.g. LOC679869, Itga11, Arhgap5, Cd47, Dlg1, Gas6, Cml5, Mef2c). The results suggest the involvement of immunotoxicity in the impairment of the nervous system by DOTC and support the hypothesis of a close connection between the immune and nervous systems in brain development.
Insights
Environmental chemical di-n-octyltin dichloride (DOTC) disrupts immune and brain development in rats. This study links immunotoxicity to neurodevelopmental effects, highlighting the immune-nervous system connection.
Area of Science:
- Neuroscience
- Immunology
- Toxicology
Background:
- Environmental chemicals can disrupt immune system development, potentially causing neurodevelopmental disorders.
- Di-n-octyltin dichloride (DOTC) previously showed adverse effects on maternal and developing immune systems in rats.
- A link between DOTC-induced immunotoxicity and neurodevelopmental effects is hypothesized.
Purpose of the Study:
- To investigate the impact of DOTC exposure on structural and functional brain development in rats.
- To explore the connection between DOTC's effects on the immune system and neurodevelopment.
- To utilize advanced imaging and genomics to assess DOTC's neurodevelopmental toxicity.
Main Methods:
- Male rats (F0 generation) were exposed to DOTC (0, 3, 10, or 30 mg/kg diet) from pre-mating until F1 offspring sacrifice.
- In-vivo MRI and [18F]FDG PET imaging were used to assess brain structure and metabolism.
- Behavioral testing, neuropathology, and genomics were employed to evaluate neurodevelopmental and immunological changes.
Main Results:
- DOTC exposure led to transiently enlarged brain regions (MRI) and altered specific gravity.
- Transient hyper-metabolism in the brain ([18F]FDG PET) and auditory startle hyper-responsiveness were observed.
- Genomics revealed altered transcription of key neurodevelopmental, neural function, and immune system regulators.
Conclusions:
- DOTC exposure impacts brain structure, function, and behavior in developing rats.
- Results suggest immunotoxicity plays a role in DOTC-induced nervous system impairment.
- The study supports a strong connection between the immune and nervous systems during brain development.

