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Neuroprotection against hypoxic-ischemic brain injury by inhibiting the apoptotic protease activating factor-1
Yanqin Gao1, Weimin Liang, Xiaoming Hu
1State Key Laboratory of Medical Neurobiology, Fudan University, Shanghai, China. yanqin.gao@gmail.com
Background And Purpose:
Emerging evidence suggests that mitochondrial damage-mediated neuronal apoptosis is a major contributor to neonatal hypoxic-ischemic (H-I) brain injury. This study was performed to determine whether targeted inhibition of the apoptotic protease activating factor-1 (Apaf-1) signaling pathway downstream of mitochondrial damage confers neuroprotection in rodent models of neonatal H-I.
Methods:
H-I was induced in 7-day-old (P7) transgenic mice overexpressing the specific Apaf-1-inhibitory protein AIP. Apaf-1 inhibition was also achieved in P7 rats by protein transduction-enhanced delivery of recombinant AIP. Pups were euthanized 6 to 24 hours after H-I for assessing caspase activation and mitochondrial release of cytochrome c and AIF, and 7 days after H-I for analyzing brain tissue damage. Sensorimotor functions were assessed in rats up to 4 weeks after H-I.
Results:
Transgenic overexpression of AIP protected against H-I brain injury, resulting in attenuated activation of caspase-9 and caspase-3, and attenuated brain tissue loss. In neonatal H-I rats, intraperitoneal injection of TAT-AIP, but not the control proteins TAT-GFP or AIP, decreased caspase activation and brain damage and improved neurological functions. Neuroprotection conferred by AIP was also associated with significantly reduced release of cytochrome c and AIF from mitochondria.
Conclusions:
The Apaf-1 signaling pathway, which transmits cell death signals after mitochondrial damage to effector caspases, may be a legitimate therapeutic target for the treatment of neonatal H-I brain injury.
Insights
Targeted inhibition of the apoptotic protease activating factor-1 (Apaf-1) pathway protected against neonatal hypoxic-ischemic (H-I) brain injury by reducing neuronal apoptosis. This suggests Apaf-1 is a potential therapeutic target for H-I brain damage.
Area of Science:
- Neuroscience
- Cellular Biology
- Developmental Biology
Background:
- Neonatal hypoxic-ischemic (H-I) brain injury involves mitochondrial damage and neuronal apoptosis.
- The apoptotic protease activating factor-1 (Apaf-1) pathway is implicated in transmitting cell death signals downstream of mitochondrial damage.
Purpose of the Study:
- To investigate if inhibiting the Apaf-1 signaling pathway confers neuroprotection in rodent models of neonatal H-I brain injury.
- To determine the therapeutic potential of targeting Apaf-1 for H-I brain damage.
Main Methods:
- Neonatal H-I was induced in P7 mice overexpressing Apaf-1 inhibitory protein (AIP) and P7 rats treated with recombinant AIP via protein transduction.
- Assessed caspase activation, mitochondrial release of cytochrome c and AIF, brain tissue damage, and sensorimotor functions post-H-I.
Main Results:
- Overexpression of AIP in mice reduced H-I brain injury, caspase activation, and brain tissue loss.
- In rats, TAT-AIP treatment decreased caspase activation, brain damage, and improved neurological functions, with reduced mitochondrial release of cytochrome c and AIF.
Conclusions:
- The Apaf-1 signaling pathway is a viable therapeutic target for neonatal H-I brain injury.
- Inhibiting Apaf-1 effectively reduces neuronal apoptosis and brain damage following H-I events.
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