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Activation of Apoptosis by Cytoplasmic Microinjection of Cytochrome c
Published on: June 29, 2011
Activity-dependent regulation of the BAX/BCL-2 pathway protects cortical neurons from apoptotic death during early
Jonas Schroer1, Davide Warm1, Federico De Rosa1
1Institute of Physiology, University Medical Center of the Johannes Gutenberg University, Duesbergweg 6, 55128, Mainz, Germany.
Abstract:
During early brain development, homeostatic removal of cortical neurons is crucial and requires multiple control mechanisms. We investigated in the cerebral cortex of mice whether the BAX/BCL-2 pathway, an important regulator of apoptosis, is part of this machinery and how electrical activity might serve as a set point of regulation. Activity is known to be a pro-survival factor; however, how this effect is translated into enhanced survival chances on a neuronal level is not fully understood. In this study, we show that caspase activity is highest at the neonatal stage, while developmental cell death peaks at the end of the first postnatal week. During the first postnatal week, upregulation of BAX is accompanied by downregulation of BCL-2 protein, resulting in a high BAX/BCL-2 ratio when neuronal death rates are high. In cultured neurons, pharmacological blockade of activity leads to an acute upregulation of Bax, while elevated activity results in a lasting increase of BCL-2 expression. Spontaneously active neurons not only exhibit lower Bax levels than inactive neurons but also show almost exclusively BCL-2 expression. Disinhibition of network activity prevents the death of neurons overexpressing activated CASP3. This neuroprotective effect is not the result of reduced caspase activity but is associated with a downregulation of the BAX/BCL-2 ratio. Notably, increasing neuronal activity has a similar, non-additive effect as the blockade of BAX. Conclusively, high electrical activity modulates BAX/BCL-2 expression and leads to higher tolerance to CASP3 activity, increases survival, and presumably promotes non-apoptotic CASP3 functions in developing neurons.
Insights
Electrical activity in developing neurons regulates apoptosis by modulating the BAX/BCL-2 pathway. High activity promotes neuronal survival by decreasing the BAX/BCL-2 ratio, offering neuroprotection.
Area of Science:
- Neuroscience
- Developmental Biology
- Cell Biology
Background:
- Homeostatic removal of cortical neurons is vital during early brain development.
- The BAX/BCL-2 pathway is a key regulator of apoptosis.
- Electrical activity is a known pro-survival factor in neurons, but its precise mechanism is unclear.
Purpose of the Study:
- To investigate the role of the BAX/BCL-2 pathway in activity-dependent neuronal survival during cortical development.
- To determine how electrical activity regulates neuronal apoptosis.
Main Methods:
- Studied the BAX/BCL-2 pathway and caspase activity in mouse cerebral cortex during early development.
- Utilized cultured neurons with pharmacological manipulation of electrical activity.
- Assessed neuronal survival in response to altered activity and caspase activation.
Main Results:
- Developmental cell death peaks in the first postnatal week, coinciding with high BAX/BCL-2 ratios.
- Pharmacological blockade of activity increases BAX, while elevated activity increases BCL-2.
- Active neurons show lower BAX and higher BCL-2 expression, with increased tolerance to caspase activity.
Conclusions:
- High electrical activity modulates BAX/BCL-2 expression, enhancing neuronal survival during development.
- Activity-induced neuroprotection is linked to a downregulated BAX/BCL-2 ratio, not reduced caspase activity.
- Neuronal activity may promote non-apoptotic functions of caspase-3.
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