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Interaction between the TBC1D24 TLDc domain and the KIBRA C2 domain is disrupted by two epilepsy-associated TBC1D24
Risa Tona1, Sayaka Inagaki1, Yasuko Ishibashi2
1Laboratory of Molecular Genetics, National Institute on Deafness and Other Communication Disorders, National Institutes of Health, Maryland, USA.
Abstract:
Mutations of human TBC1D24 are associated with deafness, epilepsy, or DOORS syndrome (deafness, onychodystrophy, osteodystrophy, cognitive disability, and seizures). The causal relationships between TBC1D24 variants and the different clinical phenotypes are not understood. Our hypothesis is that phenotypic heterogeneity of missense mutations of TBC1D24 results, in part, from perturbed binding of different protein partners. To discover novel protein partners of TBC1D24, we conducted yeast two-hybrid (Y2H) screen using mouse full-length TBC1D24 as bait. Kidney and brain protein (KIBRA), a scaffold protein encoded by Wwc1, was identified as a partner of TBC1D24. KIBRA functions in the Hippo signaling pathway and is important for human cognition and memory. The TBC1D24 TLDc domain binds to KIBRA full-length and to its C2 domain, confirmed by Y2H assays. No interaction was detected with Y2H assays between the KIBRA C2 domain and TLDc domains of NCOA7, MEAK7, and OXR1. Moreover, the C2 domains of other WWC family proteins do not interact with the TLDc domain of TBC1D24, demonstrating specificity. The mRNAs encoding TBC1D24 and KIBRA proteins in mouse are coexpressed at least in a subset of hippocampal cells indicating availability to interact in vivo. As two epilepsy-associated recessive variants (Gly511Arg and Ala515Val) in the TLDc domain of human TBC1D24 disrupt the interaction with the human KIBRA C2 domain, this study reveals a pathogenic mechanism of TBC1D24-associated epilepsy, linking the TBC1D24 and KIBRA pathways. The interaction of TBC1D24-KIBRA is physiologically meaningful and necessary to reduce the risk of epilepsy.
Insights
Mutations in TBC1D24 cause epilepsy by disrupting its interaction with KIBRA, a protein crucial for cognitive function. This study identifies a key mechanism linking TBC1D24 variants to epilepsy risk.
Area of Science:
- Genetics
- Neuroscience
- Molecular Biology
Background:
- Mutations in the TBC1D24 gene are linked to severe neurological disorders, including epilepsy and DOORS syndrome.
- The precise mechanisms by which TBC1D24 variants lead to diverse clinical phenotypes remain unclear.
- Understanding protein-protein interactions is crucial for elucidating disease pathogenesis.
Purpose of the Study:
- To identify novel protein interactors of TBC1D24.
- To investigate the role of TBC1D24-protein interactions in the pathogenesis of TBC1D24-associated epilepsy.
- To explore the specificity of TBC1D24 interactions within the WWC family.
Main Methods:
- Yeast two-hybrid (Y2H) screening was employed to identify TBC1D24 binding partners.
- Y2H assays were used to confirm and characterize interactions between TBC1D24 and identified partners.
- Analysis of mRNA coexpression patterns in mouse hippocampus was performed.
Main Results:
- Kidney and brain protein (KIBRA) was identified as a novel binding partner of TBC1D24.
- The TBC1D24 TLDc domain specifically binds to the KIBRA C2 domain.
- Epilepsy-associated TBC1D24 variants were shown to disrupt the TBC1D24-KIBRA interaction.
- TBC1D24 and KIBRA are coexpressed in hippocampal cells, suggesting in vivo interaction.
Conclusions:
- The interaction between TBC1D24 and KIBRA is physiologically significant and plays a role in epilepsy prevention.
- Disruption of TBC1D24-KIBRA binding represents a pathogenic mechanism for TBC1D24-associated epilepsy.
- This finding links the TBC1D24 and KIBRA pathways, offering insights into neurological disorder etiology.
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