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Nucleus accumbens deep-brain stimulation efficacy in ACTH-pretreated rats: alterations in mitochondrial function
Y Kim1,2, S McGee3,4, J K Czeczor3
1School of Psychology, Faculty of Health, Deakin University, Melbourne, VIC, Australia.
Abstract:
Mitochondrial dysfunction has a critical role in the pathophysiology of mood disorders and treatment response. To investigate this, we established an animal model exhibiting a state of antidepressant treatment resistance in male Wistar rats using 21 days of adrenocorticotropic hormone (ACTH) administration (100 μg per day). First, the effect of ACTH treatment on the efficacy of imipramine (10 mg kg(-1)) was investigated alongside its effect on the prefrontal cortex (PFC) mitochondrial function. Second, we examined the mood-regulatory actions of chronic (7 day) high-frequency nucleus accumbens (NAc) deep-brain stimulation (DBS; 130 Hz, 100 μA, 90 μS) and concomitant PFC mitochondrial function. Antidepressant-like responses were assessed in the open field test (OFT) and forced swim test (FST) for both conditions. ACTH pretreatment prevented imipramine-mediated improvement in mobility during the FST (P<0.05). NAc DBS effectively improved FST mobility in ACTH-treated animals (P<0.05). No improvement in mobility was observed for sham control animals (P>0.05). Analyses of PFC mitochondrial function revealed that ACTH-treated animals had decreased capacity for adenosine triphosphate production compared with controls. In contrast, ACTH animals following NAc DBS demonstrated greater mitochondrial function relative to controls. Interestingly, a proportion (30%) of the ACTH-treated animals exhibited heightened locomotor activity in the OFT and exaggerated escape behaviors during the FST, together with general hyperactivity in their home-cage settings. More importantly, the induction of this mania-like phenotype was accompanied by overcompensative increased mitochondrial respiration. Manifestation of a DBS-induced mania-like phenotype in imipramine-resistant animals highlights the potential use of this model in elucidating mechanisms of mood dysregulation.
Insights
Mitochondrial dysfunction contributes to antidepressant resistance. Nucleus accumbens deep-brain stimulation (DBS) improved mood and mitochondrial function in treatment-resistant rats, but also induced mania-like behaviors in some.
Area of Science:
- Neuroscience
- Biochemistry
- Pharmacology
Background:
- Mitochondrial dysfunction is implicated in mood disorders and resistance to antidepressant treatments.
- Adrenocorticotropic hormone (ACTH) administration can induce a state of antidepressant resistance in animal models.
- Prefrontal cortex (PFC) mitochondrial function is crucial for mood regulation.
Purpose of the Study:
- To investigate the role of PFC mitochondrial function in antidepressant resistance.
- To evaluate the efficacy of imipramine and nucleus accumbens deep-brain stimulation (NAc DBS) in an antidepressant-resistant rat model.
- To examine the effects of NAc DBS on mood regulation and PFC mitochondrial function.
Main Methods:
- Established antidepressant resistance in male Wistar rats using chronic ACTH administration.
- Assessed imipramine efficacy and PFC mitochondrial function in ACTH-treated rats.
- Investigated the effects of chronic NAc DBS on mood-related behaviors (open field test, forced swim test) and PFC mitochondrial function.
Main Results:
- ACTH treatment rendered rats resistant to imipramine, impairing antidepressant-like responses.
- NAc DBS reversed imipramine resistance, improving mobility in the forced swim test and enhancing PFC mitochondrial function.
- A subset of ACTH-treated rats developed a mania-like phenotype with hyperactivity and increased mitochondrial respiration.
Conclusions:
- PFC mitochondrial dysfunction is associated with antidepressant resistance.
- NAc DBS shows therapeutic potential for mood disorders with treatment resistance, but can also induce mania-like states.
- This animal model offers insights into the mechanisms underlying mood dysregulation and treatment resistance.
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