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Deletion of a Neuronal Drp1 Activator Protects against Cerebral Ischemia
Kyle H Flippo1, Zhihong Lin1, Audrey S Dickey2
1Department of Neuroscience and Pharmacology and Iowa Neuroscience Institute, University of Iowa, Iowa City, Iowa 52242.
Abstract:
Mitochondrial fission catalyzed by dynamin-related protein 1 (Drp1) is necessary for mitochondrial biogenesis and maintenance of healthy mitochondria. However, excessive fission has been associated with multiple neurodegenerative disorders, and we recently reported that mice with smaller mitochondria are sensitized to ischemic stroke injury. Although pharmacological Drp1 inhibition has been put forward as neuroprotective, the specificity and mechanism of the inhibitor used is controversial. Here, we provide genetic evidence that Drp1 inhibition is neuroprotective. Drp1 is activated by dephosphorylation of an inhibitory phosphorylation site, Ser637. We identify Bβ2, a mitochondria-localized protein phosphatase 2A (PP2A) regulatory subunit, as a neuron-specific Drp1 activator in vivo Bβ2 KO mice of both sexes display elongated mitochondria in neurons and are protected from cerebral ischemic injury. Functionally, deletion of Bβ2 and maintained Drp1 Ser637 phosphorylation improved mitochondrial respiratory capacity, Ca2+ homeostasis, and attenuated superoxide production in response to ischemia and excitotoxicity in vitro and ex vivo Last, deletion of Bβ2 rescued excessive stroke damage associated with dephosphorylation of Drp1 S637 and mitochondrial fission. These results indicate that the state of mitochondrial connectivity and PP2A/Bβ2-mediated dephosphorylation of Drp1 play a critical role in determining the severity of cerebral ischemic injury. Therefore, Bβ2 may represent a target for prophylactic neuroprotective therapy in populations at high risk of stroke.SIGNIFICANCE STATEMENT With recent advances in clinical practice including mechanical thrombectomy up to 24 h after the ischemic event, there is resurgent interest in neuroprotective stroke therapies. In this study, we demonstrate reduced stroke damage in the brain of mice lacking the Bβ2 regulatory subunit of protein phosphatase 2A, which we have shown previously acts as a positive regulator of the mitochondrial fission enzyme dynamin-related protein 1 (Drp1). Importantly, we provide evidence that deletion of Bβ2 can rescue excessive ischemic damage in mice lacking the mitochondrial PKA scaffold AKAP1, apparently via opposing effects on Drp1 S637 phosphorylation. These results highlight reversible phosphorylation in bidirectional regulation of Drp1 activity and identify Bβ2 as a potential pharmacological target to protect the brain from stroke injury.
Insights
Genetic deletion of Bβ2, a PP2A regulatory subunit, protects against stroke by inhibiting Drp1-mediated mitochondrial fission. This finding highlights Bβ2 as a potential target for neuroprotective stroke therapies.
Area of Science:
- Neuroscience
- Cell Biology
- Biochemistry
Background:
- Mitochondrial fission, regulated by dynamin-related protein 1 (Drp1), is crucial for mitochondrial health.
- Dysregulated Drp1 activity and excessive mitochondrial fission are linked to neurodegenerative diseases and stroke.
- The precise mechanisms and therapeutic targets for controlling Drp1 activity in stroke remain under investigation.
Purpose of the Study:
- To investigate the role of Bβ2, a protein phosphatase 2A (PP2A) regulatory subunit, in Drp1-mediated mitochondrial fission.
- To determine if genetic inhibition of Bβ2 confers neuroprotection against cerebral ischemic injury.
- To explore Bβ2 as a potential therapeutic target for stroke.
Main Methods:
- Generation and analysis of Bβ2 knockout (KO) mice.
- Assessment of mitochondrial morphology and function in neurons.
- Evaluation of neuroprotection in mouse models of cerebral ischemic injury and excitotoxicity.
- Analysis of Drp1 phosphorylation status (Ser637) and its correlation with Bβ2 deletion.
Main Results:
- Bβ2 KO mice exhibit elongated mitochondria and are protected from cerebral ischemic injury.
- Deletion of Bβ2 maintains Drp1 Ser637 phosphorylation, improving mitochondrial respiration and Ca2+ homeostasis.
- Bβ2 deletion attenuates superoxide production and rescues excessive stroke damage linked to Drp1 S637 dephosphorylation.
Conclusions:
- The PP2A/Bβ2 complex acts as a neuron-specific activator of Drp1, promoting mitochondrial fission.
- Inhibition of Bβ2-mediated Drp1 activation provides neuroprotection against ischemic stroke.
- Bβ2 represents a promising prophylactic therapeutic target for stroke prevention.
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