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Updated: Jun 14, 2026

Rapid Detection of Neurodevelopmental Phenotypes in Human Neural Precursor Cells (NPCs)
Published on: March 2, 2018
Organophosphate exposure during a critical developmental stage reprograms adenylyl cyclase signaling in PC12 cells
Abayomi A Adigun1, Ian T Ryde, Frederic J Seidler
1Department of Pharmacology & Cancer Biology, Duke University Medical Center, Durham, NC 27710, USA.
Abstract:
Early-life organophosphate (OP) exposures elicit neurobehavioral deficits through mechanisms other than inhibiting cholinesterase. Cell signaling cascades are postulated as critical noncholinesterase targets that mediate both the initial alterations in neurodevelopment as well as subsequent abnormalities of synaptic function. We exposed PC12 cells to chlorpyrifos, diazinon or parathion in the undifferentiated state and during neurodifferentiation; we then assessed the function of the adenylyl cyclase (AC) signaling cascade, measuring basal AC activity as well as responses to stimulants acting at G-proteins or on the AC molecule itself. In undifferentiated cells, a 2day exposure to the OPs had no significant effect on AC signaling but the same treatment in differentiating cells produced deficits in all AC measures when exposure commenced at the initiation of differentiation. However, when exposure of the differentiating cells was continued for 6days, AC activities then became supranormal. The same increase was obtained if cells were exposed only for the first two days of differentiation, followed by four subsequent days without the OPs. Furthermore, the OP effects on cell signaling were entirely distinct from those on indices of cell number and neurite outgrowth. These results indicate that OP exposure reprograms the AC pathway during a discrete developmental stage at the commencement of neurodifferentiation, with effects that continue to emerge after OP exposure is discontinued. Importantly, the same sequence is seen with OP exposures in neonatal rats, indicating that direct effects of these agents to reprogram cell signaling provide a major mechanism for functional effects unrelated to cholinesterase inhibition.
Insights
Early-life organophosphate (OP) exposure reprograms cell signaling pathways during neurodevelopment. These effects on adenylyl cyclase (AC) signaling persist even after exposure ceases, impacting future neurobehavioral outcomes.
Area of Science:
- Neuroscience
- Toxicology
- Developmental Biology
Background:
- Organophosphate (OP) pesticides can cause neurodevelopmental deficits via non-cholinesterase inhibition pathways.
- Cell signaling cascades are implicated as key targets in OP-induced neurotoxicity.
- Adenylyl cyclase (AC) signaling is crucial for neurodevelopment and synaptic function.
Purpose of the Study:
- To investigate the impact of early-life organophosphate (OP) exposure on the adenylyl cyclase (AC) signaling cascade during neurodifferentiation.
- To determine if OP-induced alterations in AC signaling are linked to neurodevelopmental outcomes.
- To explore the persistence and developmental timing of OP effects on cell signaling.
Main Methods:
- PC12 cells were exposed to chlorpyrifos, diazinon, or parathion during undifferentiated and differentiating states.
- Basal and stimulated adenylyl cyclase (AC) activity were measured.
- Effects on cell number and neurite outgrowth were assessed.
Main Results:
- OP exposure during early neurodifferentiation impaired AC signaling, with effects persisting and even increasing after exposure cessation.
- These signaling alterations were distinct from effects on cell proliferation and neurite outgrowth.
- Similar patterns of AC pathway reprogramming were observed in neonatal rat models.
Conclusions:
- Early-life OP exposure reprograms the AC signaling pathway during a critical window of neurodifferentiation.
- These reprogramming effects on cell signaling are a significant mechanism for non-cholinesterase-related neurobehavioral deficits.
- The findings highlight the importance of developmental timing in OP toxicity and suggest persistent functional consequences.
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