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Published on: October 20, 2014
Microphthalmia-associated transcription factor interactions with 14-3-3 modulate differentiation of committed myeloid
Agnieszka Bronisz1, Sudarshana M Sharma, Rong Hu
1Department of Molecular and Cellular Biochemistry and the Comprehensive Cancer Center, The Ohio State University Medical Center, Columbus, OH 43210, USA.
Abstract:
The microphthalmia-associated transcription factor (MITF) is required for terminal osteoclast differentiation and is a target for signaling pathways engaged by colony stimulating factor (CSF)-1 and receptor-activator of nuclear factor-kappaB ligand (RANKL). Work presented here demonstrates that MITF can shuttle from cytoplasm to nucleus dependent upon RANKL/CSF-1 action. 14-3-3 was identified as a binding partner of MITF in osteoclast precursors, and overexpression of 14-3-3 in a transgenic model resulted in increased cytosolic localization of MITF and decreased expression of MITF target genes. MITF/14-3-3 interaction was phosphorylation dependent, and Ser173 residue, within the minimal interaction region of amino acid residues 141-191, was required. The Cdc25C-associated kinase (C-TAK)1 interacted with an overlapping region of MITF. C-TAK1 increased MITF/14-3-3 complex formation and thus promoted cytoplasmic localization of MITF. C-TAK1 interaction was disrupted by RANKL/CSF-1 treatment. The results indicate that 14-3-3 regulates MITF activity by promoting the cytosolic localization of MITF in the absence of signals required for osteoclast differentiation. This work identifies a mechanism that regulates MITF activity in monocytic precursors that are capable of undergoing different terminal differentiation programs, and it provides a mechanism that allows committed precursors to rapidly respond to signals in the bone microenvironment to promote specifically osteoclast differentiation.
Insights
The microphthalmia-associated transcription factor (MITF) shuttles between the cytoplasm and nucleus, regulated by 14-3-3 proteins and C-TAK1 kinase. This mechanism controls osteoclast differentiation in response to bone microenvironment signals.
Area of Science:
- Cell Biology
- Molecular Biology
- Bone Biology
Background:
- The microphthalmia-associated transcription factor (MITF) is crucial for osteoclast differentiation.
- MITF activity is regulated by signaling pathways involving colony stimulating factor (CSF)-1 and receptor-activator of nuclear factor-kappaB ligand (RANKL).
Purpose of the Study:
- To elucidate the mechanism regulating MITF localization and activity in osteoclast precursors.
- To identify MITF binding partners and their role in controlling differentiation.
Main Methods:
- Co-immunoprecipitation to identify MITF binding partners.
- Transgenic models to study the effect of 14-3-3 overexpression.
- Phosphorylation site analysis and kinase interaction studies.
Main Results:
- 14-3-3 was identified as a MITF binding partner, promoting its cytosolic localization and decreasing target gene expression.
- Phosphorylation at Ser173 is critical for MITF/14-3-3 interaction.
- Cdc25C-associated kinase (C-TAK)1 enhances MITF/14-3-3 complex formation, but its interaction with MITF is disrupted by RANKL/CSF-1.
Conclusions:
- 14-3-3 regulates MITF activity by promoting cytosolic localization in the absence of differentiation signals.
- This mechanism allows monocytic precursors to rapidly differentiate into osteoclasts upon receiving specific signals from the bone microenvironment.
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