Enhanced Ba2+-sensitive inward rectifying potassium conductance reduces intrinsic excitability of layer 2/3 pyramidal neurons in the primary auditory cortex of Fmr1 knockout mice
Moreno, C.; Riquelme, D.; Cea-del Rio, C.; Leiva-Salcedo, E.
Show abstract
Fragile X syndrome (FXS) is frequently associated with auditory hypersensitivity and altered cortical processing, yet the intrinsic ionic mechanisms shaping auditory cortex excitability remain incompletely defined. Here, we tested whether subthreshold conductances contribute to compensatory changes in intrinsic excitability in layer 2/3 (L2/3) pyramidal neurons of the primary auditory cortex (AC) in Fmr1 knockout (Fmr1-KO) mice. We performed wholecell patchclamp recordings in acute slices from juvenile mice (P28-P42) and quantified passive properties, firing output, synaptic potentials, and subthreshold currents under pharmacological isolation. Compared with wild type (WT), Fmr1-KO L2/3 neurons displayed a more hyperpolarized resting membrane potential, reduced input resistance, elevated rheobase, prolonged firstspike latency, and reduced firing across depolarizing steps, consistent with a hypoexcitable state. Bath application of BaCl2 (60 M) depolarized the membrane, increased input resistance, and restored firing output and rheobase toward WT levels, indicating that a Ba2+-sensitive potassium conductance strongly constrains excitability in Fmr1-KO neurons. Voltageclamp recordings revealed a larger Ba2+-sensitive inwardly rectifying (Kir-like) current in Fmr1-KO neurons, supporting increased functional Ba2+-sensitive inwardly rectifying conductance. In contrast, blocking Ih with ZD7288 (10 M) produced modest changes in passive properties but induced genotype dependent effects on excitability and enhanced synaptic activity and EPSP summation preferentially in Fmr1-KO neurons, consistent with a role for Ih in input filtering rather than setting basal conductance. Together, these findings identify enhanced Ba2+-sensitive potassium conductance as a primary determinant of the Fmr1-KO subthreshold conductance state in AC L2/3 pyramidal neurons, suggesting an intrinsic homeostatic mechanism that stabilizes output in the presence of elevated excitatory drive.
Matching journals
The top 2 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Complex synaptic and intrinsic interactions disrupt input/output functions in the hippocampus of Scn1b knockout mice 97%
- Cholinergic stimulation modulates the functional composition of CA3 cell types in the hippocampus 97%
- α2δ-2 protein controls structure and function at the cerebellar climbing fiber synapse 96%
Similar papers in this journal
- Impaired dendritic spike generation in the Fragile X prefrontal cortex is due to loss of dendritic sodium channels 97%
- Cation-chloride cotransporters and the polarity of GABA signaling in mouse hippocampal parvalbumin interneurons 97%
- GluN2C/D-containing NMDA receptors enhance temporal summation and increase sound-evoked and spontaneous firing in the inferior colliculus 96%
Similar papers in this journal
- Kv3.3 subunits control presynaptic action potential waveform and neurotransmitter release at a central excitatory synapse 97%
- Functional specification of CCK+ interneurons by alternative isoforms of Kv4.3 auxiliary subunits 97%
- Activity-dependent tuning of intrinsic excitability in mouse and human neurogliaform cells 96%
Similar papers in this journal
- Impaired reliability and precision of spiking in adults but not juveniles in a mouse model of Fragile X Syndrome 96%
- Retrograde suppression of post-tetanic potentiation at the mossy fiber-CA3 pyramidal cell synapse 96%
- Cell-type specificity of neuronal excitability and morphology in the central amygdala 96%
Similar papers in this journal
- α2-ADRENERGIC MODULATION OF Ih IN ADULT-BORN GRANULE CELLS IN THE OLFACTORY BULB 96%
- Dopaminergic neuromodulation of spike timing dependent plasticity in mature adult rodent and human cortical neurons 96%
- Depolarizing GABA Transmission Restrains Activity-Dependent Glutamatergic Synapse Formation in the Developing Hippocampal Circuit 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.