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[Neuroprotection by neurotrophic factors in apoptosis]
1Division of Protein Biosynthesis, Osaka University, Japan.
Abstract:
During development, excess neurons are produced about half of which die. The time of cell death (apoptosis) is limited to the period of formation of synapses with the target cells, and the neurons which fail to obtain sufficient amounts of trophic factor(s) released from the target cells are eliminated. This selection system is considered to be a mechanism to ensure formation of a physiologically relevant neuronal network. Mature neurons which correctly execute their functions, however, undergo apoptosis in response to exogenous toxic stimuli. Such stimuli may be responsible for neurodegenerative diseases. The mechanism underlying cell death has been analyzed using in vitro model systems. In the present communication, we used cultured rat cerebellar granule neurons, in which low potassium concentration (LK+) in the medium induces apoptosis, and this apoptosis is prevented by high concentration of potassium (HK+), BDNF. One of the lipid-modifying kinases, phosphatidylinositol 3-kinase (PI3-K), is also activated by trophic factors including neurotrophins. BDNF and high K+ prevented low K(+)-induced apoptosis via PI3-K. BDNF also promotes the survival of basal forebrain cholinergic neurons cultured from postnatal 2-week-old (P2w) rats. The mechanism of neuronal apoptosis induced by oxidative stress using CNS neurons and PC12 cells was investigated, and we found that generation of reactive oxygen species (ROS) is highly associated with apoptosis. High oxygen induced neuronal apoptosis, which was blocked by protein or RNA synthesis inhibitors. Neurotrophic factors and Bcl-2 prevented this apoptotic cell death. Exposure to hydrogen peroxide, lipid hydroperoxide or serum deprivation triggered apoptosis associated with increased generation of ROS as determined using a ROS-specific fluorescent probe. In cultured cerebellar granule neurons from 15-day-old wild-type and p53-deficient mice, we examine the role of p53 in regulating the life and death of CNS neurons. When exposure of gamma-ray or bleomycin to neurons died in p53 dependent manner. These neuronal deaths were partially prevented by actinomycin D or cycloheximide. The pycnotic nuclei observed in these dying neurons indicated that cell death occurs via apoptosis. Although there are many evidences that p53 is involved in apoptosis in proliferating cells, it is interesting that p53 is also involved in apoptosis in postmitotic neurons as shown in this study.
Insights
Neuronal apoptosis, a key process in development and disease, is regulated by trophic factors and the PI3-K pathway. This study reveals p53
Area of Science:
- Neuroscience
- Cell Biology
- Molecular Biology
Context:
- Neuronal development involves programmed cell death (apoptosis) to refine neural networks.
- Mature neurons are also susceptible to apoptosis induced by toxic stimuli, implicated in neurodegenerative diseases.
- Understanding neuronal apoptosis mechanisms is crucial for therapeutic interventions.
Purpose:
- To investigate the mechanisms regulating neuronal apoptosis, focusing on the roles of trophic factors, phosphatidylinositol 3-kinase (PI3-K), reactive oxygen species (ROS), and the p53 protein.
- To analyze how low potassium, oxidative stress, and genotoxic agents induce apoptosis in cultured neurons.
- To determine the involvement of p53 in apoptosis of postmitotic central nervous system (CNS) neurons.
Summary:
- Low potassium-induced apoptosis in cerebellar granule neurons was prevented by high potassium and BDNF via PI3-K activation.
- Oxidative stress, including high oxygen and hydrogen peroxide, induced apoptosis associated with ROS generation, which was inhibited by neurotrophic factors and Bcl-2.
- p53 played a role in neuronal apoptosis induced by gamma-ray and bleomycin in postmitotic neurons, suggesting its involvement beyond proliferating cells.
Impact:
- Provides insights into the molecular pathways governing neuronal survival and death.
- Highlights the potential of targeting PI3-K and neurotrophic factors for neuroprotection.
- Establishes p53 as a key regulator of apoptosis in postmitotic neurons, relevant for understanding neurodegeneration.