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Published on: July 25, 2011
Neuronal PPARgamma deficiency increases susceptibility to brain damage after cerebral ischemia
Xiurong Zhao1, Roger Strong, Jie Zhang
1Stroke Program, Department of Neurology, University of Texas, Houston, Medical School, Houston, Texas 77030, USA.
Abstract:
Peroxisome proliferator-activated receptor gamma (PPARgamma) plays a role in regulating a myriad of biological processes in virtually all brain cell types, including neurons. We and others have reported recently that drugs which activate PPARgamma are effective in reducing damage to brain in distinct models of brain disease, including ischemia. However, the cell type responsible for PPARgamma-mediated protection has not been established. In response to ischemia, PPARgamma gene is robustly upregulated in neurons, suggesting that neuronal PPARgamma may be a primary target for PPARgamma-agonist-mediated neuroprotection. To understand the contribution of neuronal PPARgamma to ischemic injury, we generated conditional neuron-specific PPARgamma knock-out mice (N-PPARgamma-KO). These mice are viable and appeared to be normal with respect to their gross behavior and brain anatomy. However, neuronal PPARgamma deficiency caused these mice to experience significantly more brain damage and oxidative stress in response to middle cerebral artery occlusion. The primary cortical neurons harvested from N-PPARgamma-KO mice, but not astroglia, exposed to ischemia in vitro demonstrated more damage and a reduced expression of numerous key gene products that could explain increased vulnerability, including SOD1 (superoxide dismutase 1), catalase, glutathione S-transferase, uncoupling protein-1, or transcription factor liver X receptor-alpha. Also, PPARgamma agonist-based neuroprotective effect was lost in neurons from N-PPARgamma neurons. Therefore, we conclude that PPARgamma in neurons play an essential protective function and that PPARgamma agonists may have utility in neuronal self-defense, in addition to their well established anti-inflammatory effect.
Insights
Neuronal Peroxisome proliferator-activated receptor gamma (PPARgamma) is crucial for brain protection against ischemic injury. Activating PPARgamma in neurons enhances self-defense, offering potential therapeutic benefits for stroke and other brain diseases.
Area of Science:
- Neuroscience
- Molecular Biology
- Pharmacology
Background:
- Peroxisome proliferator-activated receptor gamma (PPARgamma) regulates biological processes in brain cells.
- PPARgamma agonists show promise in reducing brain damage in models of diseases like ischemia.
- The specific cell type mediating PPARgamma's protective effects remained unclear.
Purpose of the Study:
- To investigate the role of neuronal PPARgamma in protecting against ischemic brain injury.
- To determine if PPARgamma in neurons is the primary target for neuroprotection by PPARgamma agonists.
Main Methods:
- Generated neuron-specific PPARgamma knock-out (N-PPARgamma-KO) mice.
- Assessed brain damage and oxidative stress following middle cerebral artery occlusion in N-PPARgamma-KO mice.
- Examined primary cortical neurons and astroglia from N-PPARgamma-KO mice in vitro under ischemic conditions.
Main Results:
- Neuronal PPARgamma deficiency significantly increased brain damage and oxidative stress after ischemia.
- Neurons from N-PPARgamma-KO mice showed greater damage and reduced expression of protective genes (e.g., SOD1, catalase) in vitro.
- Neuroprotective effects of PPARgamma agonists were abolished in neurons lacking PPARgamma.
Conclusions:
- PPARgamma in neurons plays a critical protective role against ischemic injury.
- Targeting neuronal PPARgamma may enhance brain self-defense mechanisms.
- PPARgamma agonists hold potential for neuroprotection beyond their anti-inflammatory effects.
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