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Updated: Jul 19, 2025

Targeted Next-generation Sequencing and Bioinformatics Pipeline to Evaluate Genetic Determinants of Constitutional Disease
Published on: April 4, 2018
Single-residue mutation in protein kinase C toggles between cancer and neurodegeneration
Alexander C Jones1,2, Alexandr P Kornev1, Jui-Hung Weng1
1Department of Pharmacology, University of California, La Jolla, CA 92093, U.S.A.
Abstract:
Conventional protein kinase C (cPKC) isozymes tune the signaling output of cells, with loss-of-function somatic mutations associated with cancer and gain-of-function germline mutations identified in neurodegeneration. PKC with impaired autoinhibition is removed from the cell by quality-control mechanisms to prevent the accumulation of aberrantly active enzyme. Here, we examine how a highly conserved residue in the C1A domain of cPKC isozymes permits quality-control degradation when mutated to histidine in cancer (PKCβ-R42H) and blocks down-regulation when mutated to proline in the neurodegenerative disease spinocerebellar ataxia (PKCγ-R41P). Using FRET-based biosensors, we determined that mutation of R42 to any residue, including lysine, resulted in reduced autoinhibition as indicated by higher basal activity and faster agonist-induced plasma membrane translocation. R42 is predicted to form a stabilizing salt bridge with E655 in the C-tail and mutation of E655, but not neighboring E657, also reduced autoinhibition. Western blot analysis revealed that whereas R42H had reduced stability, the R42P mutant was stable and insensitive to activator-induced ubiquitination and down-regulation, an effect previously observed by deletion of the entire C1A domain. Molecular dynamics (MD) simulations and analysis of stable regions of the domain using local spatial pattern (LSP) alignment suggested that P42 interacts with Q66 to impair mobility and conformation of one of the ligand-binding loops. Additional mutation of Q66 to the smaller asparagine (R42P/Q66N), to remove conformational constraints, restored degradation sensitivity. Our results unveil how disease-associated mutations of the same residue in the C1A domain can toggle between gain- or loss-of-function of PKC.
Insights
Mutations in a key protein kinase C (PKC) residue can cause cancer or neurodegeneration by altering enzyme activity and stability. This study reveals how specific mutations toggle PKC function, impacting cellular signaling and disease outcomes.
Area of Science:
- Biochemistry
- Molecular Biology
- Cell Signaling
Background:
- Conventional protein kinase C (cPKC) isozymes regulate cellular signaling.
- Dysfunctional cPKC is linked to cancer (loss-of-function) and neurodegeneration (gain-of-function).
- Impaired autoinhibition leads to enzyme degradation via quality-control mechanisms.
Purpose of the Study:
- To investigate how mutations at a conserved residue in the cPKC C1A domain affect enzyme autoinhibition, stability, and degradation.
- To elucidate the molecular mechanisms by which mutations lead to distinct disease phenotypes (cancer vs. neurodegeneration).
Main Methods:
- Utilized FRET-based biosensors to measure PKC autoinhibition and translocation.
- Employed Western blot analysis to assess protein stability and ubiquitination.
- Performed molecular dynamics (MD) simulations and local spatial pattern (LSP) alignment for domain analysis.
Main Results:
- Mutating the conserved residue R42 in the C1A domain reduced autoinhibition, increasing basal activity and translocation speed.
- The R42H mutation (cancer-associated) reduced protein stability.
- The R42P mutation (neurodegeneration-associated) conferred stability and resistance to down-regulation, linked to impaired ligand-binding loop mobility.
- Restoring degradation sensitivity in the R42P mutant was achieved by mutating Q66.
Conclusions:
- Disease-associated mutations at the same residue in the cPKC C1A domain can switch between gain- and loss-of-function.
- The findings provide insights into how altered protein kinase C regulation contributes to cancer and neurodegenerative diseases.
- Understanding these mechanisms may inform therapeutic strategies targeting PKC signaling pathways.
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