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Forebrain-Specific B-raf Deficiency Reduces NMDA Current and Enhances Small-Conductance Ca2+-Activated K+ (SK)
Cornelia Ruxanda1, Christian Alzheimer1, Fang Zheng1
1Institute of Physiology and Pathophysiology, Friedrich-Alexander-Universität Erlangen-Nürnberg, 91054 Erlangen, Germany.
Abstract:
B-raf (rapidly accelerated fibrosarcoma) is a crucial player within the ERK/MAPK signaling pathway. In the CNS, B-raf has been implicated in neuronal differentiation, long-term memory, and major depression. Mice with forebrain neuron-specific B-raf knockout show behavioral deficits in spatial learning tasks and impaired hippocampal long-term potentiation (LTP). To elucidate the mechanism(s) underlying diminished synaptic plasticity in B-raf-deficient mice, we performed whole-cell recordings from CA1 pyramidal cells in hippocampal slices of control and B-raf mutant mice. We found that the NMDA/AMPA ratio of excitatory postsynaptic currents (EPSCs) at the Schaffer collateral-CA1 pyramidal cell synapses was significantly reduced in B-raf mutants, which would at least partially account for their impaired LTP. Interestingly, the reduced NMDA component of field postsynaptic potentials in mutant preparations was partially reinstated by blocking the apamin-sensitive small-conductance Ca2+-activated K+ (SK) channels, which have also been reported to modulate hippocampal LTP and learning tasks. To determine the impact of B-raf-dependent signaling on SK current, we isolated the apamin-sensitive tail current after a strong depolarizing event and found indeed a significantly bigger SK current in B-raf-deficient cells compared to controls, which is consistent with the reduced action potential firing and the stronger facilitating effect of apamin on CA1 somatic excitability in B-raf-mutant hippocampus. Our data suggest that B-raf signaling readjusts the delicate balance between NMDA receptors and SK channels to promote synaptic plasticity and facilitate hippocampal learning and memory.
Insights
B-raf signaling regulates synaptic plasticity by balancing NMDA receptors and SK channels. This mechanism is crucial for learning and memory, as B-raf deficiency impairs hippocampal function.
Area of Science:
- Neuroscience
- Molecular Biology
- Synaptic Plasticity
Background:
- B-raf (rapidly accelerated fibrosarcoma) is a key component of the ERK/MAPK pathway, involved in CNS functions like neuronal differentiation and memory.
- Neuron-specific B-raf knockout in mice leads to deficits in spatial learning and hippocampal long-term potentiation (LTP).
Purpose of the Study:
- To investigate the mechanisms behind impaired synaptic plasticity in B-raf-deficient mice.
- To elucidate the role of B-raf signaling in modulating NMDA receptor and SK channel function in the hippocampus.
Main Methods:
- Whole-cell recordings from CA1 pyramidal cells in hippocampal slices of control and B-raf mutant mice.
- Measurement of excitatory postsynaptic currents (EPSCs) and field postsynaptic potentials.
- Pharmacological manipulation using apamin to block small-conductance Ca2+-activated K+ (SK) channels.
Main Results:
- B-raf-deficient mice exhibited a reduced NMDA/AMPA ratio of EPSCs, contributing to impaired LTP.
- Blocking SK channels partially restored the NMDA component of field postsynaptic potentials in mutant mice.
- B-raf-deficient cells showed a significantly larger apamin-sensitive SK current compared to controls.
Conclusions:
- B-raf signaling is essential for maintaining the balance between NMDA receptors and SK channels.
- This balance is critical for synaptic plasticity, hippocampal learning, and memory formation.
- Dysregulation of B-raf signaling impacts neuronal excitability and synaptic function.

