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Author Spotlight: Decoding Mitochondrial Aging
Published on: June 30, 2023
Deletion of the Mitochondrial Matrix Protein CyclophilinD Prevents Parvalbumin Interneuron Dysfunctionand Cognitive
Aarron Phensy1, Kathy L Lindquist1, Karen A Lindquist1
1School of Behavioral and Brain Sciences, The University of Texas at Dallas, Richardson, Texas 75080.
Abstract:
Redox dysregulation and oxidative stress are final common pathways in the pathophysiology of a variety of psychiatric disorders, including schizophrenia. Oxidative stress causes dysfunction of GABAergic parvalbumin (PV)-positive interneurons (PVI), which are crucial for the coordination of neuronal synchrony during sensory and cognitive processing. Mitochondria are the main source of reactive oxygen species (ROS) in neurons and they control synaptic activity through their roles in energy production and intracellular calcium homeostasis. We have previously shown that in male mice transient blockade of NMDA receptors (NMDARs) during development [subcutaneous injections of 30 mg/kg ketamine (KET) on postnatal days 7, 9, and 11] results in long-lasting alterations in synaptic transmission and reduced PV expression in the adult prefrontal cortex (PFC), contributing to a behavioral phenotype that mimics multiple symptoms associated with schizophrenia. These changes correlate with oxidative stress and impaired mitochondrial function in both PVI and pyramidal cells. Here, we show that genetic deletion (Ppif-/-) of the mitochondrial matrix protein cyclophilin D (CypD) prevents perinatal KET-induced increases in ROS and the resulting deficits in PVI function, and changes in excitatory and inhibitory synaptic transmission in the PFC. Deletion of CypD also prevented KET-induced behavioral deficits in cognitive flexibility, social interaction, and novel object recognition (NOR). Taken together, these data highlight how mitochondrial activity may play an integral role in modulating PVI-mediated cognitive processes.SIGNIFICANCE STATEMENT Mitochondria are important modulators of oxidative stress and cell function, yet how mitochondrial dysfunction affects cell activity and synaptic transmission in psychiatric illnesses is not well understood. NMDA receptor (NMDAR) blockade with ketamine (KET) during development causes oxidative stress, dysfunction of parvalbumin (PV)-positive interneurons (PVI), and long-lasting physiological and behavioral changes. Here we show that mice deficient for the mitochondrial matrix protein cyclophilin D (CypD) show robust protection from PVI dysfunction following perinatal NMDAR blockade. Mitochondria serve as an essential node for a number of stress-induced signaling pathways and our experiments suggest that failure of mitochondrial redox regulation can contribute to PVI dysfunction.
Insights
Mitochondrial cyclophilin D deletion prevents ketamine-induced oxidative stress and parvalbumin-positive interneuron dysfunction, offering protection against schizophrenia-like behaviors in mice.
Area of Science:
- Neuroscience
- Biochemistry
- Psychiatry
Background:
- Oxidative stress and mitochondrial dysfunction are implicated in schizophrenia pathophysiology.
- Parvalbumin-positive interneurons (PVI) are critical for cognitive processing and are impaired by oxidative stress.
- Developmental NMDA receptor (NMDAR) blockade with ketamine (KET) in male mice induces long-lasting PVI dysfunction and schizophrenia-like behaviors.
Purpose of the Study:
- To investigate the role of mitochondrial cyclophilin D (CypD) in mediating the effects of developmental NMDAR blockade.
- To determine if genetic deletion of CypD can protect against KET-induced PVI dysfunction and behavioral deficits.
Main Methods:
- Male mice received subcutaneous ketamine (KET) injections on postnatal days 7, 9, and 11.
- Mice with genetic deletion of cyclophilin D (Ppif-/-) were used.
- Assessed reactive oxygen species (ROS) levels, PVI function, synaptic transmission in the prefrontal cortex (PFC), and behavioral tests (cognitive flexibility, social interaction, novel object recognition).
Main Results:
- Genetic deletion of CypD prevented KET-induced increases in ROS and deficits in PVI function.
- CypD deletion normalized excitatory and inhibitory synaptic transmission in the PFC following KET exposure.
- Mice lacking CypD were protected from KET-induced deficits in cognitive flexibility, social interaction, and novel object recognition.
Conclusions:
- Mitochondrial CypD plays a critical role in mediating oxidative stress and PVI dysfunction following developmental NMDAR blockade.
- Targeting mitochondrial function, specifically CypD, may offer a therapeutic strategy for psychiatric disorders associated with oxidative stress.
- Mitochondrial redox regulation is crucial for maintaining PVI function and cognitive processes relevant to schizophrenia.
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