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Measuring Transcellular Interactions through Protein Aggregation in a Heterologous Cell System
Published on: May 22, 2020
Missense mutations in CASK, coding for the calcium-/calmodulin-dependent serine protein kinase, interfere with
Yingzhou Edward Pan1, Debora Tibbe1, Frederike Leonie Harms1
1Institute for Human Genetics, University Medical Center Hamburg-Eppendorf, Hamburg, Germany.
Abstract:
Mutations in the X-linked gene coding for the calcium-/calmodulin-dependent serine protein kinase (CASK) are associated with severe neurological disorders ranging from intellectual disability (in males) to mental retardation and microcephaly with pontine and cerebellar hypoplasia. CASK is involved in transcription control, in the regulation of trafficking of the post-synaptic NMDA and α-amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid receptors, and acts as a presynaptic scaffolding protein. For CASK missense mutations, it is mostly unclear which of CASK's molecular interactions and cellular functions are altered and contribute to patient phenotypes. We identified five CASK missense mutations in male patients affected by neurodevelopmental disorders. These and five previously reported mutations were systematically analysed with respect to interaction with CASK interaction partners by co-expression and co-immunoprecipitation. We show that one mutation in the L27 domain interferes with binding to synapse-associated protein of 97 kDa. Two mutations in the guanylate kinase (GK) domain affect binding of CASK to the nuclear factors CASK-interacting nucleosome assembly protein (CINAP) and T-box, brain, 1 (Tbr1). A total of five mutations in GK as well as PSD-95/discs large/ZO-1 (PDZ) domains affect binding of CASK to the pre-synaptic cell adhesion molecule Neurexin. Upon expression in neurons, we observe that binding to Neurexin is not required for pre-synaptic localization of CASK. We show by bimolecular fluorescence complementation assay that Neurexin induces oligomerization of CASK, and that mutations in GK and PDZ domains interfere with the Neurexin-induced oligomerization of CASK. Our data are supported by molecular modelling, where we observe that the cooperative activity of PDZ, SH3 and GK domains is required for Neurexin binding and oligomerization of CASK.
Insights
Mutations in the calcium-/calmodulin-dependent serine protein kinase (CASK) gene cause severe neurological disorders. This study reveals how specific CASK mutations disrupt its interactions with key proteins, impacting brain development and function.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Mutations in the X-linked CASK gene are linked to severe neurological disorders, including intellectual disability and microcephaly.
- CASK plays critical roles in transcription control, receptor trafficking, and synaptic scaffolding.
- The precise molecular mechanisms by which CASK missense mutations lead to patient phenotypes remain largely unknown.
Purpose of the Study:
- To investigate the impact of CASK missense mutations on its interactions with binding partners.
- To elucidate how these altered interactions contribute to neurodevelopmental disorders.
Main Methods:
- Co-expression and co-immunoprecipitation assays to analyze protein interactions.
- Bimolecular fluorescence complementation assay to study protein oligomerization.
- Molecular modeling to understand domain interactions.
Main Results:
- Specific CASK mutations disrupt binding to synapse-associated protein of 97 kDa, CINAP, Tbr1, and Neurexin.
- Neurexin binding is not essential for CASK's presynaptic localization.
- Mutations in GK and PDZ domains impair Neurexin-induced CASK oligomerization, a process requiring cooperative domain activity.
Conclusions:
- CASK missense mutations identified in patients with neurodevelopmental disorders alter critical protein-protein interactions.
- Disruption of Neurexin-induced CASK oligomerization is a key mechanism contributing to CASK-related neurological disorders.
- Understanding these molecular disruptions provides insights into CASK function and potential therapeutic targets.
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