Distinct functions of the dual leucine zipper kinase depending on its subcellular localization

Manuel Wallbach1, Jorge Duque Escobar2, Rohollah Babaeikelishomi3

  • 1Department of Pharmacology, University of Göttingen, Robert-Koch-Str. 40, 37075 Göttingen, Germany.

Cellular Signalling
|January 19, 2016
PubMed

Insights

Dual leucine zipper kinase (DLK) nuclear translocation promotes β-cell apoptosis and diabetes. Blocking this translocation, especially during prediabetes, may offer a new therapeutic strategy for diabetes mellitus.

Area of Science:

  • Cell biology
  • Molecular endocrinology
  • Diabetes research

Background:

  • The dual leucine zipper kinase (DLK) promotes β-cell apoptosis by inhibiting CREB activity, potentially contributing to diabetes.
  • DLK shares homology with MLK3, activated by TNFα and IL-1β, which are implicated in prediabetes.

Purpose of the Study:

  • To investigate the regulation of DLK in β-cells by TNFα and IL-1β.
  • To determine the role of DLK's nuclear localization in its function and β-cell apoptosis.

Main Methods:

  • Investigated DLK translocation in β-cells stimulated with TNFα and IL-1β.
  • Utilized DLK nuclear localization signal (NLS) mutants to assess DLK function and apoptosis.
  • Examined DLK localization in a murine model of prediabetes.

Main Results:

  • TNFα and IL-1β induced DLK nuclear translocation, dependent on a functional NLS.
  • DLK NLS mutants retained kinase activity but failed to inhibit CREB or BCL-xL transcription.
  • Mutation of the DLK NLS significantly reduced DLK-induced β-cell apoptosis.
  • Increased nuclear DLK was observed in a prediabetes mouse model.

Conclusions:

  • DLK exhibits distinct functions based on its subcellular localization.
  • Nuclear translocation of DLK, induced by prediabetic signals, contributes to β-cell apoptosis.
  • Inhibiting DLK nuclear localization presents a potential therapeutic target for diabetes treatment.

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