Javascript must be enabled to continue!
Suppression of mPFC‐Amygdala Circuit Mitigates Sevoflurane‐Induced Cognitive Deficits in Aged Mice
View through CrossRef
ABSTRACTBackgroundPerioperative neurocognitive disorders (PND) are common and costly complications in elderly surgical patients, yet the involvement of specific neural circuits in their etiology remains poorly understood. We hypothesized that neural projections from the medial prefrontal cortex (mPFC) to the amygdala contribute to PND pathogenesis.MethodsUsing chemogenetic approaches, we selectively suppressed or excited the mPFC and its projections to the amygdala in a murine model exposed to sevoflurane. We assessed cognitive deficits, synaptic plasticity (AMPA receptor activity, long‐term potentiation [LTP]), mitochondrial stress, neuroinflammatory markers, and neuronal apoptosis in the amygdala. Additional interventions included pharmacological suppression of AMPA receptors, glutamate biosynthesis, and mitochondrial stress within the amygdala.ResultsSevoflurane exposure activated the mPFC‐amygdala circuit. Chemogenetic suppression of the mPFC attenuated sevoflurane‐induced cognitive deficits, AMPA receptor hyperexcitation, mitochondrial dysfunction, neuroinflammation, and neuronal apoptosis in the amygdala. Retrograde inhibition of mPFC projections to the amygdala alleviated cognitive impairments, whereas retrograde excitation exacerbated them. Suppressing AMPA receptors, glutamate synthesis, or mitochondrial stress in the amygdala similarly reduced cognitive deficits and pathological alterations. Notably, mPFC suppression rescued sevoflurane‐induced LTP impairment in the amygdala.ConclusionsThese findings demonstrate that sevoflurane activates the mPFC‐amygdala circuit, driving PND‐associated cognitive deficits and neuropathological changes. Targeting this circuit or downstream mechanisms (AMPA signaling, mitochondrial stress) may mitigate sevoflurane‐induced PND. This study provides empirical evidence implicating specific neural circuitry in anesthetic‐related neurocognitive dysfunction.
Title: Suppression of mPFC‐Amygdala Circuit Mitigates Sevoflurane‐Induced Cognitive Deficits in Aged Mice
Description:
ABSTRACTBackgroundPerioperative neurocognitive disorders (PND) are common and costly complications in elderly surgical patients, yet the involvement of specific neural circuits in their etiology remains poorly understood.
We hypothesized that neural projections from the medial prefrontal cortex (mPFC) to the amygdala contribute to PND pathogenesis.
MethodsUsing chemogenetic approaches, we selectively suppressed or excited the mPFC and its projections to the amygdala in a murine model exposed to sevoflurane.
We assessed cognitive deficits, synaptic plasticity (AMPA receptor activity, long‐term potentiation [LTP]), mitochondrial stress, neuroinflammatory markers, and neuronal apoptosis in the amygdala.
Additional interventions included pharmacological suppression of AMPA receptors, glutamate biosynthesis, and mitochondrial stress within the amygdala.
ResultsSevoflurane exposure activated the mPFC‐amygdala circuit.
Chemogenetic suppression of the mPFC attenuated sevoflurane‐induced cognitive deficits, AMPA receptor hyperexcitation, mitochondrial dysfunction, neuroinflammation, and neuronal apoptosis in the amygdala.
Retrograde inhibition of mPFC projections to the amygdala alleviated cognitive impairments, whereas retrograde excitation exacerbated them.
Suppressing AMPA receptors, glutamate synthesis, or mitochondrial stress in the amygdala similarly reduced cognitive deficits and pathological alterations.
Notably, mPFC suppression rescued sevoflurane‐induced LTP impairment in the amygdala.
ConclusionsThese findings demonstrate that sevoflurane activates the mPFC‐amygdala circuit, driving PND‐associated cognitive deficits and neuropathological changes.
Targeting this circuit or downstream mechanisms (AMPA signaling, mitochondrial stress) may mitigate sevoflurane‐induced PND.
This study provides empirical evidence implicating specific neural circuitry in anesthetic‐related neurocognitive dysfunction.
Related Results
Frequency dependent emotion differentiation and directional coupling in amygdala, orbitofrontal and medial prefrontal cortex network with intracranial recordings
Frequency dependent emotion differentiation and directional coupling in amygdala, orbitofrontal and medial prefrontal cortex network with intracranial recordings
AbstractThe amygdala, orbitofrontal cortex (OFC) and medial prefrontal cortex (mPFC) form a crucial part of the emotion circuit, yet their emotion induced responses and interaction...
An epigenetic mechanism for differential maturation of amygdala-prefrontal connectivity in childhood socio-emotional development
An epigenetic mechanism for differential maturation of amygdala-prefrontal connectivity in childhood socio-emotional development
Abstract
Functional connectivity between the amygdala and the medial prefrontal cortex (mPFC) has been identified as a neural substrate of emotion regulation that undergoes...
Adenosine Receptor Adora2b Plays a Mechanistic Role in the Protective Effect of the Volatile Anesthetic Sevoflurane during Liver Ischemia/Reperfusion
Adenosine Receptor Adora2b Plays a Mechanistic Role in the Protective Effect of the Volatile Anesthetic Sevoflurane during Liver Ischemia/Reperfusion
Abstract
Background
Liver ischemia/reperfusion (IR) injury is characterized by hepatic tissue damage and an inflammatory response. This is accomp...
Htr3a receptors control attenuation of fear responses by modulating the corticolimbic activity and synchronization
Htr3a receptors control attenuation of fear responses by modulating the corticolimbic activity and synchronization
Abstract
The fear circuit orchestrates defensive responses to environmental threats and is essential for survival. Dysregulation of this system i...
Influence of the Glutamatergic MS-LH Circuit Activation on Emergence From Sevoflurane Anesthesia in Mice
Influence of the Glutamatergic MS-LH Circuit Activation on Emergence From Sevoflurane Anesthesia in Mice
BACKGROUND:
Glutamatergic neurons in the medial septum (MS) are identified to promote emergence from sevoflurane general anesthesia (GA), with the potential dow...
Low-concentration sevoflurane inhalation in treating MK801-induced schizophrenia like disease in mice and a feasibility study of schizophrenia patients
Low-concentration sevoflurane inhalation in treating MK801-induced schizophrenia like disease in mice and a feasibility study of schizophrenia patients
Abstract
GABAergic deficits have been considered to associate with the pathophysiology of schizophrenia and hence GABA receptor subtype A (GABAARs) modulators may have ther...
Entropy-guided sevoflurane administration during cardiopulmonary bypass surgery in the paediatric population
Entropy-guided sevoflurane administration during cardiopulmonary bypass surgery in the paediatric population
Background
Maintaining optimal anesthetic depth during cardiopulmonary bypass (CPB) in pediatric patients is challenging due to altered physiology and unreliable conven...
Altered prefrontal‐striatal theta‐band oscillatory dynamics underlie working memory deficits in neuropathic pain rats
Altered prefrontal‐striatal theta‐band oscillatory dynamics underlie working memory deficits in neuropathic pain rats
AbstractBackgroundPrelimbic medial prefrontal cortex (PL‐mPFC) and nucleus accumbens core region (NAcc) play an important role in supporting several executive cognitive mechanisms,...

