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.

Brain Research
|March 20, 2010
PubMed

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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