KIBRA-PKCγ signaling pathway modulates memory performance in mice and humans
Tian, M.; Chen, Q.; Graves, A. R.; Goldschmidt, H. L.; Johnson, R. C.; Weinberger, D. R.; Huganir, R. L.
Show abstract
Human memory is a polygenic cognitive trait that is fundamental to individual competence. Genome-wide association studies (GWAS) have identified KIBRA as a novel gene associated with human memory performance. KIBRA interacts with AMPA receptors (AMPARs) and proteins essential for synaptic plasticity. The deletion of Kibra in mice impairs synaptic plasticity and learning and memory. However, the molecular basis through which KIBRA regulates dynamic AMPAR trafficking underlying synaptic plasticity is still unknown. Here we report that KIBRA interacts with the neuronal specific kinase PKC{gamma} to modulate AMPAR trafficking upon learning, and KIBRA-PKC{gamma} signaling pathway also associates with human memory performance. We find PKC{gamma} is an essential kinase that phosphorylates AMPARs upon learning, and the loss of KIBRA in mouse brain impedes PKC{gamma}-AMPAR interaction. Activation of PKC{gamma} enables KIBRA to recruit phosphorylated AMPARs to the synapse to promote LTP and learning. We further performed transcriptomic and genetic analyses in human postmortem brain samples, and behavioral and fMRI evaluations in living human subjects, to demonstrate the genetic interactions between KIBRA and PRKCG on memory performance and memory associated physiological engagement of the hippocampal memory system. Overall, our results support that the KIBRA-PKC{gamma} signaling pathway is crucial for modulating memory performance in mice and humans.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- KIF2C regulates synaptic plasticity and cognition by mediating dynamic microtubule invasion of dendritic spines 96%
- Ablation of STAT3 in Purkinje Cells Reorganizes Cerebellar Synaptic Plasticity in Long-Term Fear Memory Network 96%
- APP β-CTF triggers cell-autonomous synaptic toxicity independent of Aβ 95%
Similar papers in this journal
- A pathogenic missense mutation in kainate receptors elevates dendritic excitability and synaptic integration through dysregulation of SK channels 96%
- Ubiquitination of the GluA1 subunit of AMPA receptors is required for synaptic plasticity, memory and cognitive flexibility 96%
- Altered A-type potassium channel function impairs dendritic spike initiation and temporammonic long-term potentiation in Fragile X syndrome 95%
Similar papers in this journal
- Aberrant hippocampal transmission and behavior in mice with a stargazin mutation linked to intellectual disability 96%
- Elevated expression of complement C4 in the mouse prefrontal cortex causes schizophrenia-associated phenotypes 95%
- Restoring Glutamate receptosome dynamics at synapses rescues Autism-like deficits in Shank3-deficient mice. 95%
Similar papers in this journal
- Ketogenic diet dampens excitatory neurotransmission by shrinking synaptic vesicle pools 95%
- Ca2+-phospholipid-dependent regulation of Munc13-1 is essential for post-tetanic potentiation at mossy fiber synapses and supports working memory 94%
- The ventral CA2 region of the hippocampus and its differential contributions to social memory and social aggression 94%
Similar papers in this journal
- Abnormal AMPAR-mediated synaptic plasticity, cognitive and autistic-like behaviors in a missense Fmr1 mutant mouse model of Fragile X syndrome 96%
- PKA drives an increase in AMPA receptor unitary conductance during LTP in the hippocampus 95%
- SKA2 regulated hyperactive secretory autophagy drives neuroinflammation-induced neurodegeneration 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.