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Mechanism of action of a dominant-negative mutant of c-Jun
P H Brown1, T K Chen, M J Birrer
1Biomarkers and Prevention Research Branch, National Cancer Institute, Rockville, Maryland 20850.
Abstract:
The AP-1 transcriptional activating complex, made up of Jun and Fos protein, is involved in controlling many cellular processes such as cell proliferation, differentiation and transformation. We have previously characterized a dominant-negative mutant of c-Jun called TAM-67 which forms dimers with c-Jun and c-Fos, and binds DNA as a homodimer or heterodimer with c-Jun or c-Fos. This dominant-negative mutant is a potent inhibitor of AP-1 mediated transactivation, as well as c-jun/ras and TPA/ras-induced transformation. The present report describes experiments designed to elucidate the exact molecular mechanism of this dominant-negative inhibitor. The DNA binding kinetics of both TAM-67:TAM-67 homodimers as well as TAM-67:Fos heterodimers were studied and compared to those of c-Jun and other transactivation-deficient mutants of c-Jun. These studies demonstrated that the TAM-67 proteins have similar DNA binding kinetics to c-Jun and other Jun mutant proteins. Thus, the deletion of the amino-terminal end of the Jun protein does not significantly alter the protein's affinity for DNA. In addition, to determine whether TAM-67 functions through the formation of homodimers, or through interactions with endogenous c-Jun or c-Fos, we constructed a pair of chimeric proteins made by replacing the leucine zipper of TAM-67 with the leucine zippers of GCN4 and c-Fos. These chimeric proteins, termed TAM/GCN4 and TAM/Fos, were then tested for their ability to bind DNA, inhibit c-Jun-induced transactivation, and inhibit TPA/ras-mediated transformation. The results of these studies show that while both chimeric proteins bind equally well to DNA, only the TAM/Fos protein, and not the TAM/GCN4 protein, inhibits AP-1-induced transactivation and TPA/ras-induced transformation. When compared to the TAM-67 protein, the TAM/Fos protein is an equally potent inhibitor of transactivation and transformation. These results suggest that TAM-67 inhibits AP-1-mediated processes through a 'quenching' mechanism by inhibiting the function of endogenous Jun and/or Fos proteins. The implications of these mechanistic findings on the development of potent inhibitors of signal transduction pathways are discussed.
Insights
The dominant-negative mutant TAM-67 inhibits AP-1 mediated transactivation by interacting with Jun and Fos proteins. This interaction, rather than DNA binding, is key to its inhibitory function in cellular processes.
Area of Science:
- Molecular Biology
- Cellular Biology
- Signal Transduction
Background:
- The AP-1 complex, composed of Jun and Fos proteins, regulates critical cellular functions.
- A dominant-negative c-Jun mutant, TAM-67, inhibits AP-1 activity and cellular transformation.
- The precise inhibitory mechanism of TAM-67 requires elucidation.
Purpose of the Study:
- To determine the molecular mechanism by which TAM-67 inhibits AP-1 mediated transactivation.
- To investigate the role of DNA binding versus protein-protein interactions in TAM-67's inhibitory function.
- To compare the inhibitory potency of TAM-67 and its chimeric variants.
Main Methods:
- Studied DNA binding kinetics of TAM-67 homodimers and TAM-67:Fos heterodimers.
- Compared TAM-67 DNA binding to c-Jun and other Jun mutants.
- Constructed and tested chimeric proteins (TAM/GCN4, TAM/Fos) for DNA binding and inhibition of transactivation/transformation.
Main Results:
- TAM-67 proteins exhibit DNA binding kinetics similar to c-Jun, indicating the N-terminal deletion does not affect DNA affinity.
- Chimeric proteins TAM/GCN4 and TAM/Fos bind DNA equally well.
- Only TAM/Fos, not TAM/GCN4, inhibited AP-1 transactivation and TPA/ras-induced transformation, similar to TAM-67.
Conclusions:
- TAM-67 likely inhibits AP-1 by a 'quenching' mechanism, interfering with endogenous Jun/Fos function, not solely through DNA binding.
- The leucine zipper domain's interaction with specific partners (Fos) is crucial for TAM-67's inhibitory activity.
- Findings offer insights into developing targeted inhibitors for signal transduction pathways.