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Published on: August 15, 2019
Missense variant in TTBK2 kinase domain causes loss of function and impaired protein phosphorylation
Daniela Felício1,2, Hugo Osório3, Conceição Pereira1,4
1IBMC-Institute for Molecular and Cell Biology, i3S-Instituto de Investigação e Inovação em Saúde, Universidade do Porto, Porto, Portugal.
Abstract:
Tau tubulin kinase 2 (TTBK2) is a ubiquitous serine-threonine protein kinase implicated in diverse cellular processes, including microtubule regulation, ciliogenesis, synaptic signaling, and the phosphorylation of key proteins like TDP-43. Despite its relevance, many aspects of TTBK2 function in both physiological and pathological conditions remain poorly understood. Truncating variants in TTBK2 gene cause spinocerebellar ataxia type 11 (SCA11), a rare form of autosomal dominant cerebellar ataxia. However, the functional consequences and pathogenic potential of missense variants have yet to be elucidated. In this study, we developed a CRISPR/Cas9 knock-in cell model harboring a missense variant in TTBK2 kinase domain (NM_173500.4:c.625 C > T; p.Leu209Phe) to evaluate its impact on TTBK2 expression, associated protein levels, and phosphoproteomic profiles. TTBK2 missense variant (TTBK2-L209F) was associated with reduced TTBK2 protein levels, altered levels of cytoskeleton-related proteins, and impaired kinase activity, namely toward TDP-43. Phosphoproteomic analyses identified dysregulation in pathways linked to gene regulation, protein degradation, cytoskeletal organization, and TGF-β signaling. These findings provide valuable insights into the biological roles of TTBK2 in cellular signaling. Moreover, this study underscores the importance of functional studies to better understand the consequences of TTBK2 missense variants, particularly those affecting the kinase domain, and their potential contribution to disease.
Insights
Tau tubulin kinase 2 (TTBK2) missense variants impair kinase activity and alter protein levels. Functional studies are crucial for understanding TTBK2
Area of Science:
- Cellular Biology
- Neurogenetics
- Biochemistry
Background:
- Tau tubulin kinase 2 (TTBK2) is vital for cellular processes, but its functions and the impact of missense variants are unclear.
- Truncating TTBK2 variants cause spinocerebellar ataxia type 11 (SCA11), highlighting its role in neurological disorders.
Purpose of the Study:
- To investigate the functional impact of a TTBK2 kinase domain missense variant (p.Leu209Phe) using a CRISPR/Cas9 knock-in cell model.
- To evaluate the variant's effects on TTBK2 expression, protein levels, kinase activity, and phosphoproteomic profiles.
Main Methods:
- CRISPR/Cas9 gene editing to create a TTBK2 knock-in cell model with the p.Leu209Phe variant.
- Analysis of TTBK2 protein levels, associated proteins, and phosphoproteomic changes.
- Assessed kinase activity, particularly towards TDP-43.
Main Results:
- The TTBK2-L209F variant reduced TTBK2 protein levels and impaired kinase activity, including TDP-43 phosphorylation.
- Alterations were observed in cytoskeleton-related proteins and phosphoproteomic profiles.
- Dysregulated pathways included gene regulation, protein degradation, cytoskeletal organization, and TGF-β signaling.
Conclusions:
- TTBK2 missense variants, especially in the kinase domain, can disrupt cellular signaling pathways.
- Functional characterization of TTBK2 variants is essential for understanding their contribution to diseases like SCA11.
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