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.

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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