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Updated: Mar 27, 2026

Characterization at the Molecular Level using Robust Biochemical Approaches of a New Kinase Protein
Published on: June 30, 2019
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.
Abstract:
The dual leucine zipper kinase DLK induces β-cell apoptosis by inhibiting the transcriptional activity conferred by the β-cell protective transcription factor cAMP response element binding protein CREB. This action might contribute to β-cell loss and ultimately diabetes. Within its kinase domain DLK shares high homology with the mixed lineage kinase (MLK) 3, which is activated by tumor necrosis factor (TNF) α and interleukin (IL)-1β, known prediabetic signals. In the present study, the regulation of DLK in β-cells by these cytokines was investigated. Both, TNFα and IL-1β induced the nuclear translocation of DLK. Mutations within a putative nuclear localization signal (NLS) prevented basal and cytokine-induced nuclear localization of DLK and binding to the importin receptor importin α, thereby demonstrating a functional NLS within DLK. DLK NLS mutants were catalytically active as they phosphorylated their down-stream kinase c-Jun N-terminal kinase to the same extent as DLK wild-type but did neither inhibit CREB-dependent gene transcription nor transcription conferred by the promoter of the anti-apoptotic protein BCL-xL. In addition, the β-cell apoptosis-inducing effect of DLK was severely diminished by mutation of its NLS. In a murine model of prediabetes, enhanced nuclear DLK was found. These data demonstrate that DLK exerts distinct functions, depending on its subcellular localization and thus provide a novel level of regulating DLK action. Furthermore, the prevention of the nuclear localization of DLK as induced by prediabetic signals with consecutive suppression of β-cell apoptosis might constitute a novel target in the therapy of diabetes mellitus.
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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