Single-residue mutation in protein kinase C toggles between cancer and neurodegeneration

Insights

A single mutation in protein kinase C (PKC) arginine 42 (R42) can cause cancer or neurodegeneration by altering enzyme activity and degradation. Changing R42 affects PKC stability and cellular regulation.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Cell Signaling

Background:

  • Protein kinase C (PKC) isozymes regulate cellular signaling, and mutations are linked to cancer and neurodegenerative diseases.
  • PKC requires proper autoinhibition for stability; impaired autoinhibition leads to degradation via quality-control mechanisms.
  • Specific mutations in the C1A domain of PKCβ, particularly at arginine 42 (R42), influence its function and cellular fate.

Approach:

  • Utilized Förster resonance energy transfer (FRET)-based biosensors to measure basal activity and plasma membrane translocation.
  • Employed Western blot analysis to assess protein stability and ubiquitination.
  • Conducted molecular dynamics (MD) simulations and local spatial pattern (LSP) alignment to analyze domain stability and conformational changes.

Key Points:

  • Mutation of R42 in PKCβ to any residue, including histidine (R42H) or proline (R42P), reduces autoinhibition, increasing basal activity and translocation.
  • The R42H mutation leads to reduced protein stability, while the R42P mutation confers stability and resistance to downregulation.
  • R42 interacts with E655, and mutations affecting this interaction impair autoinhibition. P42's interaction with Q66 hinders ligand-binding loop mobility, preventing degradation, which can be rescued by mutating Q66.

Conclusions:

  • Disease-associated mutations at R42 in the PKCβ C1A domain can switch between gain-of-function (cancer) and loss-of-function (neurodegeneration) phenotypes.
  • The study reveals a mechanism where a single residue's mutation dictates protein stability and cellular response to PKC activators.
  • Understanding these molecular mechanisms is crucial for developing targeted therapies for PKC-related disorders.

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