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NF-kappaB regulates spatial memory formation and synaptic plasticity through protein kinase A/CREB signaling.


ABSTRACT: Synaptic activity-dependent de novo gene transcription is crucial for long-lasting neuronal plasticity and long-term memory. In a forebrain neuronal conditional NF-kappaB-deficient mouse model, we demonstrate here that the transcription factor NF-kappaB regulates spatial memory formation, synaptic transmission, and plasticity. Gene profiling experiments and analysis of regulatory regions identified the alpha catalytic subunit of protein kinase A (PKA), an essential memory regulator, as a new NF-kappaB target gene. Consequently, NF-kappaB inhibition led to a decrease in forskolin-induced CREB phosphorylation. Collectively, these results disclose a novel hierarchical transcriptional network involving NF-kappaB, PKA, and CREB that leads to concerted nuclear transduction of synaptic signals in neurons, accounting for the critical function of NF-kappaB in learning and memory.

SUBMITTER: Kaltschmidt B 

PROVIDER: S-EPMC1446931 | biostudies-literature | 2006 Apr

REPOSITORIES: biostudies-literature

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NF-kappaB regulates spatial memory formation and synaptic plasticity through protein kinase A/CREB signaling.

Kaltschmidt Barbara B   Ndiaye Delphine D   Korte Martin M   Pothion Stéphanie S   Arbibe Laurence L   Prüllage Maria M   Pfeiffer Julia J   Lindecke Antje A   Staiger Volker V   Israël Alain A   Kaltschmidt Christian C   Mémet Sylvie S  

Molecular and cellular biology 20060401 8


Synaptic activity-dependent de novo gene transcription is crucial for long-lasting neuronal plasticity and long-term memory. In a forebrain neuronal conditional NF-kappaB-deficient mouse model, we demonstrate here that the transcription factor NF-kappaB regulates spatial memory formation, synaptic transmission, and plasticity. Gene profiling experiments and analysis of regulatory regions identified the alpha catalytic subunit of protein kinase A (PKA), an essential memory regulator, as a new NF-  ...[more]

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