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Published on: August 21, 2021
Mutational analysis reveals separable DNA binding and trans-activation of Drosophila STAT92E
Peter Karsten1, Iris Plischke, Norbert Perrimon
1Department of Molecular Developmental Biology, Max Planck Institute for Biophysical Chemistry, Am Fassberg 11, 37077 Göttingen, Germany.
Abstract:
In the canonical model of JAK/STAT signalling STAT transcription factors are activated by JAK mediated tyrosine phosphorylation following pathway stimulation by external cytokines. Activated STAT molecules then homo- or heterodimerise before translocating to the nucleus where they bind to DNA sequences within the promoters of pathway target genes. DNA-bound STAT dimers then activate transcription of their targets via interaction with components of the basal transcription machinery. Here we describe a missense mutation in the SH2 domain of the single Drosophila STAT92E homologue which results in an amino-acid substitution conserved in both the canonical SH2 domain and STAT-like molecules previously identified in C. elegans and the mosquito Anopheles gambiae. This mutation leads to nuclear accumulation and constitutive DNA binding of Drosophila STAT92E even in the absence of JAK stimulation. Strikingly, this mutant shows only limited transcriptional activity in tissue culture based assays and functions as a dominant-negative at both the phenotypic and molecular levels in vivo. These features represent aspects of both dominant gain-of-function and dominant-negative activities and imply that the functions of DNA binding can be functionally separated from the role of STAT92E as a transcriptional activator. It is thus possible that an alternative post-translational modification, in addition to tyrosine phosphorylation, may be required to allow STAT to act as a transcriptional activator and suggests the existence of an alternative mechanism by which STAT transcriptional activity may be regulated in vivo.
Insights
A mutation in Drosophila STAT92E causes constitutive DNA binding but limited transcriptional activity. This suggests STAT transcriptional regulation involves mechanisms beyond tyrosine phosphorylation.
Area of Science:
- Molecular Biology
- Genetics
- Developmental Biology
Background:
- The JAK/STAT pathway is crucial for cellular communication and gene regulation.
- STAT proteins are key transcription factors activated by JAK kinases.
- STAT activation involves phosphorylation, dimerization, and nuclear translocation.
Purpose of the Study:
- To investigate the function of a specific mutation in the Drosophila STAT92E SH2 domain.
- To explore the relationship between DNA binding and transcriptional activation in STAT proteins.
- To identify potential alternative regulatory mechanisms of STAT activity.
Main Methods:
- Describing a missense mutation in the STAT92E SH2 domain.
- Analyzing nuclear accumulation and DNA binding of the mutant STAT92E.
- Assessing transcriptional activity in tissue culture and in vivo.
Main Results:
- The mutation causes constitutive nuclear accumulation and DNA binding of STAT92E.
- The mutant STAT92E exhibits limited transcriptional activity.
- The mutant functions as a dominant-negative inhibitor in vivo.
Conclusions:
- DNA binding and transcriptional activation functions of STAT92E can be separated.
- Alternative post-translational modifications may regulate STAT transcriptional activity.
- This study suggests novel mechanisms for STAT transcriptional regulation in vivo.
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