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Updated: Aug 16, 2026

In Vitro SUMOylation Assay to Study SUMO E3 Ligase Activity
Published on: January 29, 2018
Down-regulation of c-Fos/c-Jun AP-1 dimer activity by sumoylation
Guillaume Bossis1, Cécile E Malnou, Rosa Farras
1Institute of Molecular Genetics of Montpellier, UMR5535/IFR122, CNRS 1919, France.
Abstract:
The inducible transcriptional complex AP-1, composed of c-Fos and c-Jun proteins, is crucial for cell adaptation to many environmental changes. While its mechanisms of activation have been extensively studied, how its activity is restrained is poorly understood. We report here that lysine 265 of c-Fos is conjugated by the peptidic posttranslational modifiers SUMO-1, SUMO-2, and SUMO-3 and that c-Jun can be sumoylated on lysine 257 as well as on the previously described lysine 229. Sumoylation of c-Fos preferentially occurs in the context of c-Jun/c-Fos heterodimers. Using nonsumoylatable mutants of c-Fos and c-Jun as well as a chimeric protein mimicking sumoylated c-Fos, we show that sumoylation entails lower AP-1 transactivation activity. Interestingly, single sumoylation at any of the three acceptor sites of the c-Fos/c-Jun dimer is sufficient to substantially reduce transcription activation. The lower activity of sumoylated c-Fos is not due to inhibition of protein entry into the nucleus, accelerated turnover, and intrinsic inability to dimerize or to bind to DNA. Instead, cell fractionation experiments suggest that decreased transcriptional activity of sumoylated c-Fos is associated with specific intranuclear distribution. Interestingly, the phosphorylation of threonine 232 observed upon expression of oncogenically activated Ha-Ras is known to superactivate c-Fos transcriptional activity. We show here that it also inhibits c-Fos sumoylation, revealing a functional antagonism between two posttranslational modifications, each occurring within a different moiety of a bipartite transactivation domain of c-Fos. Finally we report that the sumoylation of c-Fos is a dynamic process that can be reversed via multiple mechanisms. This supports the idea that this modification does not constitute a final inactivation step that necessarily precedes protein degradation.
Insights
Sumoylation of c-Fos and c-Jun proteins restrains AP-1 transcriptional activity by altering their nuclear distribution. This modification is reversible and antagonizes phosphorylation, revealing a dynamic regulatory mechanism for AP-1 complex function.
Area of Science:
- Molecular Biology
- Cellular Biology
- Biochemistry
Background:
- The AP-1 transcriptional complex, comprising c-Fos and c-Jun, is vital for cellular adaptation.
- While AP-1 activation is well-studied, its regulatory mechanisms remain less understood.
- Posttranslational modifications, like sumoylation, play critical roles in protein function.
Purpose of the Study:
- To investigate the role of sumoylation in regulating AP-1 activity.
- To identify sumoylation sites on c-Fos and c-Jun proteins.
- To elucidate the functional consequences of sumoylation on AP-1 transcriptional activity.
Main Methods:
- Identification of sumoylation sites on c-Fos (Lysine 265) and c-Jun (Lysine 257, Lysine 229).
- Utilized nonsumoylatable mutants and chimeric proteins to assess functional impact.
- Employed cell fractionation and analysis of transcriptional activity.
Main Results:
- Sumoylation of c-Fos and c-Jun significantly reduces AP-1 transactivation activity.
- Single sumoylation events on the dimer are sufficient to decrease transcription.
- Sumoylation affects AP-1's intranuclear distribution, not nuclear entry, stability, dimerization, or DNA binding.
- Phosphorylation at Threonine 232 inhibits c-Fos sumoylation, indicating functional antagonism.
- Sumoylation is a dynamic and reversible process.
Conclusions:
- Sumoylation acts as a key negative regulator of AP-1 transcriptional activity.
- The interplay between sumoylation and phosphorylation provides dynamic control over AP-1 function.
- Sumoylation is not a terminal inactivation step but a reversible regulatory modification.
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