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AKAP1 Protects from Cerebral Ischemic Stroke by Inhibiting Drp1-Dependent Mitochondrial Fission
Kyle H Flippo1, Aswini Gnanasekaran1, Guy A Perkins2
1Department of Pharmacology and Iowa Neuroscience Institute.
Abstract:
Mitochondrial fission and fusion impact numerous cellular functions and neurons are particularly sensitive to perturbations in mitochondrial dynamics. Here we describe that male mice lacking the mitochondrial A-kinase anchoring protein 1 (AKAP1) exhibit increased sensitivity in the transient middle cerebral artery occlusion model of focal ischemia. At the ultrastructural level, AKAP1-/- mice have smaller mitochondria and increased contacts between mitochondria and the endoplasmic reticulum in the brain. Mechanistically, deletion of AKAP1 dysregulates complex II of the electron transport chain, increases superoxide production, and impairs Ca2+ homeostasis in neurons subjected to excitotoxic glutamate. Ca2+ deregulation in neurons lacking AKAP1 can be attributed to loss of inhibitory phosphorylation of the mitochondrial fission enzyme dynamin-related protein 1 (Drp1) at the protein kinase A (PKA) site Ser637. Our results indicate that inhibition of Drp1-dependent mitochondrial fission by the outer mitochondrial AKAP1/PKA complex protects neurons from ischemic stroke by maintaining respiratory chain activity, inhibiting superoxide production, and delaying Ca2+ deregulation. They also provide the first genetic evidence that Drp1 inhibition may be of therapeutic relevance for the treatment of stroke and neurodegeneration.SIGNIFICANCE STATEMENT Previous work suggests that activation of dynamin-related protein 1 (Drp1) and mitochondrial fission contribute to ischemic injury in the brain. However, the specificity and efficacy of the pharmacological Drp1 inhibitor mdivi-1 that was used has now been discredited by several high-profile studies. Our report is timely and highly impactful because it provides the first evidence that genetic disinhibition of Drp1 via knock-out of the mitochondrial protein kinase A (PKA) scaffold AKAP1 exacerbates stroke injury in mice. Mechanistically, we show that electron transport deficiency, increased superoxide production, and Ca2+ overload result from genetic disinhibition of Drp1. In summary, our work settles current controversies regarding the role of mitochondrial fission in neuronal injury, provides mechanisms, and suggests that fission inhibitors hold promise as future therapeutic agents.
Insights
Mice lacking AKAP1 show increased stroke sensitivity due to impaired mitochondrial dynamics and calcium regulation. Genetic inhibition of Drp1 (dynamin-related protein 1) by AKAP1 protects neurons, suggesting therapeutic potential for stroke and neurodegeneration.
Area of Science:
- Mitochondrial dynamics and neuronal bioenergetics
- Neurobiology of ischemic stroke
- Cellular mechanisms of neuroprotection
Background:
- Mitochondrial fission and fusion are critical for neuronal function.
- Dysregulation of mitochondrial dynamics contributes to neuronal injury.
- The role of dynamin-related protein 1 (Drp1) in ischemic stroke is debated, with prior pharmacological inhibitors now questioned.
Purpose of the Study:
- To investigate the role of mitochondrial A-kinase anchoring protein 1 (AKAP1) in neuronal response to ischemic stroke.
- To elucidate the molecular mechanisms by which AKAP1 influences mitochondrial dynamics and neuronal survival.
- To provide genetic evidence for the therapeutic potential of inhibiting Drp1-mediated mitochondrial fission.
Main Methods:
- Utilized a transient middle cerebral artery occlusion (tMCAO) stroke model in male AKAP1 knockout (AKAP1-/-) mice.
- Performed ultrastructural analysis of brain mitochondria and endoplasmic reticulum contacts.
- Assessed mitochondrial electron transport chain complex II activity, superoxide production, and calcium homeostasis in neurons under excitotoxic conditions.
Main Results:
- AKAP1-/- mice exhibited heightened sensitivity to focal ischemia.
- Loss of AKAP1 led to smaller mitochondria, increased ER-mitochondria contacts, impaired complex II function, elevated superoxide, and disrupted calcium homeostasis.
- AKAP1 deletion resulted in reduced phosphorylation of Drp1 at Ser637, promoting Drp1-dependent mitochondrial fission.
Conclusions:
- The AKAP1/PKA complex inhibits Drp1-mediated mitochondrial fission, protecting neurons from ischemic stroke.
- Inhibition of mitochondrial fission by AKAP1 preserves respiratory chain activity, reduces superoxide production, and maintains calcium homeostasis.
- Genetic evidence supports Drp1 inhibition as a viable therapeutic strategy for stroke and neurodegenerative diseases.
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