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Assaying Protein Kinase Activity with Radiolabeled ATP
Published on: May 26, 2017
Identification of a specific domain responsible for JNK2alpha2 autophosphorylation
Jian Cui1, Marina Holgado-Madruga, Wanwen Su
1Department of Microbiology and Immunology, Kimmel Cancer Institute, Thomas Jefferson University, 233 S. 10th St., Philadelphia, Pennsylvania 19107, USA.
Abstract:
c-Jun N-terminal kinases (JNKs) are a group of mitogen-activated protein kinase family members that are important in regulating cell growth, proliferation, and apoptosis. Activation of the JNK pathway has been implicated in the formation of several human tumors. We have previously demonstrated that a 55-kDa JNK isoform is constitutively activated in 86% of human brain tumors and more recently demonstrated that this isoform is either JNK2alpha2 or JNK2beta2. Importantly, we have also found that among the 10 known JNK isoforms, the JNK2 isoforms are unique in their ability to autophosphorylate in vitro and in vivo. This does not require the participation of any upstream kinases and also leads to substrate kinase activity in vitro and in vivo. To clarify the mechanism of JNK2alpha2 autoactivation, we have generated a series of chimeric cDNAs joining portions of JNK1alpha2, which does not have detectable autophosphorylation activity, with portions of JNK2alpha2, which has the strongest autophosphorylation activity. Through in vivo and in vitro kinase assays, we were able to define a domain ranging from amino acids 218 to 226 within JNK2alpha2 that is required for its autophosphorylation. Mutation of JNK2alpha2 to its counterpart of JNK1alpha2 in this region abrogated the autophosphorylation activity and c-Jun substrate kinase activity in vivo and in vitro. Notably, switching of JNK1alpha2 to JNK2alpha2 at this 9-amino acid site enabled JNK1alpha2 to gain the autophosphorylation activity in vivo and in vitro. We also found two other functional sites that participate in JNK2alpha2 activity. One site ranging from amino acids 363 to 382 of JNK2alpha2 is required for efficient c-Jun binding in vitro, and a site ranging from amino acids 383 to 424 enhances autophosphorylation intensity, although it is not required for triggering the autophosphorylation in vitro. These findings have uncovered the regions required for JNK2alpha2 autophosphorylation, and this information could be used as potential targets to block JNK2alpha2 activation.
Insights
The JNK2 isoforms, particularly JNK2alpha2, exhibit unique autophosphorylation activity crucial for cell growth and tumor formation. Researchers identified specific amino acid regions in JNK2alpha2 responsible for this self-activation, offering potential therapeutic targets.
Area of Science:
- Molecular Biology
- Oncology
- Signal Transduction
Background:
- c-Jun N-terminal kinases (JNKs) are critical regulators of cell growth, proliferation, and apoptosis.
- JNK pathway activation is linked to human tumor development.
- A specific 55-kDa JNK isoform, identified as JNK2alpha2 or JNK2beta2, is constitutively activated in 86% of human brain tumors.
Purpose of the Study:
- To elucidate the mechanism behind JNK2alpha2 autoactivation.
- To identify specific domains within JNK2alpha2 responsible for its autophosphorylation activity.
Main Methods:
- Generation of chimeric cDNAs combining JNK1alpha2 (non-autophosphorylating) and JNK2alpha2 (highly autophosphorylating).
- In vivo and in vitro kinase assays to assess autophosphorylation and substrate kinase activity.
- Site-directed mutagenesis to analyze the role of specific amino acid regions.
Main Results:
- A 9-amino acid domain (residues 218–226) in JNK2alpha2 was identified as essential for its autophosphorylation and c-Jun substrate kinase activity.
- Mutating this domain in JNK2alpha2 to its JNK1alpha2 counterpart abolished autophosphorylation.
- Conversely, switching this domain in JNK1alpha2 to the JNK2alpha2 sequence conferred autophosphorylation activity.
- Additional sites (363–382 and 383–424) were found to influence c-Jun binding and autophosphorylation intensity, respectively.
Conclusions:
- Specific regions within JNK2alpha2 dictate its unique autophosphorylation capability.
- Understanding these regions provides potential targets for blocking JNK2alpha2 activation in cancer therapy.
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