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Haikonen, J.

Publications and source records attributed to Haikonen, J..

3 recordsLinked to original sources

Loss of the MeCP2 gene in parvalbumin interneurons leads to an inhibitory deficit in the amygdala and affects its functional connectivity.

BackgroundMECP2 gene is located in the X-chromosome and encodes a methyl-CpG-binding protein involved in transcription regulation. The loss-of-function mutation of the MECP2 gene, leads to severe neurodevelopmental syndrome, Rett syndrome. Clinical picture of Rett syndrome includes, among other symptoms, social deficits and heightened anxiety. The amygdala is involved in the regulation of social behavior as well as fear and anxiety. Here, we investigated the effect of the MeCP2 gene ablation in the parvalbumin interneurons on the microcircuit and functional connectivity of the amygdala. MethodsMales with conditional knock-out of the MeCP2 gene in the parvalbumin interneurons were used as a genetic mouse model of MeCP2 loss in parvalbumin interneurons. Littermates with the intact gene were used as controls. Ex-vivo brain slice electrophysiology, combined with pharmacology and optogenetics, was used to characterize microcircuits within the lateral amygdala. Synaptic currents and excitability of parvalbumin interneurons and principal neurons were analyzed by a whole-cell patch clamp. In-vivo functional ultrasound was used to visualize the connectivity within the amygdala-ventral hippocampus-prefrontal cortex triad. ResultsLoss of MeCP2 in parvalbumin interneurons significantly reduced the GABAergic synaptic input to the principal neurons in the lateral amygdala. The decreased inhibitory drive was accompanied by an increase in the excitability of principal neurons in the lateral amygdala. The in vivo functional connectivity of the amygdala-ventral hippocampus and amygdala-prefrontal cortex was significantly reduced in conditional knock-outs compared to their littermates with the intact gene in the X chromosome. ConclusionsOur study characterized the consequences of MeCP2 gene loss in the parvalbumin interneurons on the amygdala connectivity and microcircuit and provided evidence supporting the previous findings on the role of interneurons in the functional deficit observed in animal models with MeCP2 loss.

neuroscience↗

GluK1 kainate receptors are necessary for functional maturation of parvalbumin interneurons regulating amygdala circuit function

Parvalbumin expressing interneurons (PV INs) are key players in the local inhibitory circuits and their developmental maturation coincides with the onset of adult-type network dynamics in the brain. Glutamatergic signaling regulates emergence of the unique PV IN phenotype, yet the receptor mechanisms involved are not fully understood. Here we show that GluK1 subunit containing kainate receptors (KARs) are necessary for development and maintenance of the neurochemical and functional properties of PV INs in the basolateral amygdala (BLA). Ablation of GluK1 expression specifically from PV INs resulted in low parvalbumin expression and loss of characteristic high firing rate throughout development. In addition, we observed reduced spontaneous excitatory synaptic activity at adult GluK1 lacking PV INs. Intriguingly, inactivation of GluK1 expression in adult PV INs was sufficient to abolish the PV phenotype, suggesting a role for GluK1 in dynamic regulation of PV IN maturation state. The PV IN dysfunction in the absence of GluK1 perturbed feedforward inhibition and long-term potentiation (LTP) in the BLA and resulted in developmentally originating changes in the glutamatergic connectivity to BLA principal neurons. Behaviorally, the absence of GluK1 from PV INs associated with hyperactivity and increased fear of novelty. These results indicate a critical role for GluK1 KARs in regulation of PV IN function across development and suggest GluK1 as a potential therapeutic target for pathologies involving PV IN malfunction.

neuroscience↗

Transient developmental increase in cortical projections to amygdala GABAergic neurons contribute to circuit dysfunction following early life stress

Early life stress (ELS) results in enduring dysfunction of the cortico-limbic circuitry, underlying emotional and social behavior. However, the neurobiological mechanisms by which ELS affects development of the circuitry remain elusive. Here, we have combined viral tracing and electrophysiological techniques to study the effects of maternal separation (MS) on fronto-limbic connectivity and function in young (P14-21) rats. We report that aberrant prefrontal (mPFC) inputs to basolateral amygdala (BLA) GABAergic interneurons transiently increase the strength of feedforward inhibition in the BLA, which raises LTP induction threshold in MS treated male rats. The enhanced GABAergic activity after MS exposure associates with lower functional synchronization within prefrontal-amygdala networks in vivo. Intriguingly, no differences in these parameters were detected in females, which were also resistant to MS dependent changes in anxiety-like behaviors. Impaired plasticity and synchronization during the sensitive period of circuit refinement may contribute to long-lasting functional changes in the prefrontal-amygdaloid circuitry that predispose to neuropsychiatric conditions later on in life.

neuroscience↗