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Updated: May 1, 2026

Methods for the Modulation and Analysis of NF-κB-dependent Adult Neurogenesis
Published on: February 13, 2014
Nuclear NF-κB contributes to chlorpyrifos-induced apoptosis through p53 signaling in human neural precursor cells
Jeong Eun Lee1, Mi Sun Lim2, Jae Hyeon Park2
1Department of Pharmacology, College of Medicine, Hanyang University, Seoul, Republic of Korea; Hanyang Biomedical Research Institute, Seoul, Republic of Korea.
Abstract:
Chlorpyrifos (CPF) is one of the most widely used organophosphate insecticides with several harmful effects, including neurotoxicity. Although many studies have addressed the neurotoxicity induced by CPF, most data on neurodevelopmental damage was obtained from animal models. We are the first group to use human neural precursor cells (hNPCs) derived from human embryonic stem cells (hESCs) as a developing neuron model to evaluate the mechanisms involved in CPF-induced neurotoxicity. CPF was cytotoxic to these cells in a concentration-dependent manner, as shown by decreased cell viability and increased lactate dehydrogenase release. Furthermore, CPF reduced the expression of AKT and ERK proteins which are involved in intracellular survival pathways. Exposure of hNPCs to CPF led to the production of reactive oxygen species (ROS), and the antioxidant N-acetyl-cystein (NAC) attenuated ROS production induced by CPF. In addition, CPF increased cytochrome c release into the cytosol and activated caspase-9 and -3, indicating that cell death induced by CPF was due to apoptosis in hNPCs. Consistent with these findings, CPF treatment reduced the level of Bcl-2 protein and increased the level of Bax protein. Especially, CPF increased the translocation of BAX into the mitochondria. CPF also induced nuclear accumulation of NF-κB and p53 proteins in a concentration-dependent manner, and their inhibitors attenuated CPF-induced cytotoxicity. In addition, an inhibitor of NF-κB nuclear translocation blocked the increase of p53 in CPF-treated hNPCs. These findings show that CPF induced hNPCs death in part through NF-κB activation via ROS generation, enabling the interaction of p53 with Bcl-2 and Bax and subsequent release of cytochrome c. Collectively, these results represent a unique molecular characterization of CPF-induced cytotoxicity in hNPCs. These data suggest that CPF may affect neurodevelopment in a manner similar to that of several known and suspected neurotoxicants.
Insights
Chlorpyrifos (CPF) insecticide causes human neural precursor cell death via apoptosis, involving reactive oxygen species (ROS) and NF-κB pathways. This study used human stem cell-derived neurons to model neurodevelopmental damage from CPF exposure.
Area of Science:
- Neuroscience
- Toxicology
- Developmental Biology
Background:
- Chlorpyrifos (CPF) is a widely used organophosphate insecticide with known neurotoxic effects.
- Previous studies on CPF-induced neurodevelopmental damage primarily used animal models.
Purpose of the Study:
- To investigate the mechanisms of CPF-induced neurotoxicity using human neural precursor cells (hNPCs) derived from human embryonic stem cells (hESCs).
- To characterize the molecular pathways involved in CPF-induced cytotoxicity in a human-based developing neuron model.
Main Methods:
- Utilized hNPCs derived from hESCs as a model for developing neurons.
- Assessed cell viability, lactate dehydrogenase release, protein expression (AKT, ERK, Bcl-2, Bax), reactive oxygen species (ROS) production, and apoptosis markers (cytochrome c, caspase-9, caspase-3).
- Investigated the roles of nuclear factor-kappa B (NF-κB) and p53 pathways, and the effect of N-acetyl-cysteine (NAC) and pathway inhibitors.
Main Results:
- CPF exhibited concentration-dependent cytotoxicity in hNPCs, reducing cell viability and increasing cell death markers.
- CPF decreased survival pathway proteins (AKT, ERK) and induced apoptosis by increasing ROS, cytochrome c release, and activating caspases.
- CPF modulated apoptosis regulators (Bcl-2, Bax), increased mitochondrial Bax translocation, and induced nuclear accumulation of NF-κB and p53.
- Antioxidant NAC and inhibitors of NF-κB and p53 pathways attenuated CPF-induced cytotoxicity.
Conclusions:
- CPF induces cytotoxicity in human neural precursor cells through apoptosis, involving ROS generation and NF-κB/p53 pathway activation.
- The findings elucidate molecular mechanisms of CPF neurotoxicity in a human-derived model.
- CPF may pose risks to human neurodevelopment, similar to other identified neurotoxicants.
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