Brominated and organophosphate flame retardants target different neurodevelopmental stages, characterized with
Theodore A Slotkin1, Samantha Skavicus1, Heather M Stapleton2
1Department of Pharmacology & Cancer Biology, Duke University Medical Center, Durham, NC 27710, USA.
Abstract:
In addition to their activity as endocrine disruptors, brominated and organophosphate flame retardants are suspected to be developmental neurotoxicants, although identifying their specific mechanisms for that activity has been elusive. In the current study, we evaluated the effects of several flame retardants on neurodifferentiation using two in vitro models that assess distinct "decision nodes" in neural cell development: embryonic rat neural stem cells (NSCs), which evaluate the origination of neurons and glia from precursors, and rat neuronotypic PC12 cells, which characterize a later stage where cells committed to a neuronal phenotype undergo neurite outgrowth and neurotransmitter specification. In NSCs, both brominated and organophosphate flame retardants diverted the phenotype in favor of glia and away from formation of neurons, leading to an increased glia/neuron ratio, a common hallmark of the in vivo effects of neurotoxicants. For this early decision node, the brominated flame retardants were far more potent than the organophosphates. In PC12 cells, the brominated flame retardants were far less effective, whereas tris (1,3-dichloro-2-propyl) phosphate, an organophosphate, was more effective. Thus, the two classes of flame retardants differentially impact the two distinct vulnerable periods of neurodifferentiation. Furthermore, the effects on neurodifferentiation were separable from outright cytotoxicity, an important requirement in establishing a specific effect of these agents on neural cell development. These results reinforce the likelihood that flame retardants act as developmental neurotoxicants via direct effects on neural cell differentiation, over and above other activities that can impact nervous system development, such as endocrine disruption.
Insights
Flame retardants act as developmental neurotoxicants by disrupting neural cell differentiation. Both brominated and organophosphate flame retardants alter the balance of neuron and glia formation, with differing potencies at distinct developmental stages.
Area of Science:
- Environmental Toxicology
- Neuroscience
- Developmental Biology
Background:
- Flame retardants, including brominated and organophosphate compounds, are recognized endocrine disruptors.
- These chemicals are also suspected developmental neurotoxicants, but their specific mechanisms remain unclear.
- Identifying precise mechanisms is crucial for understanding risks to neural development.
Purpose of the Study:
- To investigate the effects of flame retardants on neurodifferentiation using in vitro models.
- To assess how different classes of flame retardants impact distinct stages of neural cell development.
- To determine if neurodifferentiation effects are separable from general cytotoxicity.
Main Methods:
- Utilized two in vitro models: embryonic rat neural stem cells (NSCs) and rat neuronotypic PC12 cells.
- NSCs model the early decision between neuronal and glial precursor fates.
- PC12 cells model later-stage neuronal differentiation, including neurite outgrowth.
Main Results:
- Both brominated and organophosphate flame retardants increased the glia/neuron ratio in NSCs, favoring glia over neurons.
- Brominated flame retardants were more potent than organophosphates in affecting early neurodifferentiation in NSCs.
- Organophosphate (tris (1,3-dichloro-2-propyl) phosphate) was more effective in PC12 cells, while brominated flame retardants were less effective, indicating differential impact on later stages.
Conclusions:
- Flame retardants differentially impact distinct vulnerable periods of neurodifferentiation.
- Observed effects on neurodifferentiation were independent of cytotoxicity, suggesting specific mechanisms.
- Results support flame retardants acting as developmental neurotoxicants through direct effects on neural cell differentiation.


