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Published on: March 5, 2019
Domain stabilities in protein kinase R (PKR): evidence for weak interdomain interactions
1Department of Molecular and Cell Biology, University of Connecticut, Storrs, Connecticut 06269-3125, USA.
Abstract:
PKR (protein kinase R) is induced by interferon and is a key component of the innate immunity antiviral pathway. Upon binding dsRNA, PKR undergoes autophosphorylation reactions that activate the kinase, leading it to phosphorylate eIF2alpha, thus inhibiting protein synthesis in virally infected cells. PKR contains a dsRNA-binding domain (dsRBD) and a kinase domain. The dsRBD is composed of two tandem dsRNA-binding motifs. An autoinhibition model for PKR has been proposed, whereby dsRNA binding activates the enzyme by inducing a conformational change that relieves the latent enzyme of the inhibition that is mediated by the interaction of the dsRBD with the kinase. However, recent biophysical data support an open conformation for the latent enzyme, where activation is mediated by dimerization of PKR induced upon binding dsRNA. We have probed the importance of interdomain contacts by comparing the relative stabilities of isolated domains with the same domain in the context of the intact enzyme using equilibrium chemical denaturation experiments. The two dsRNA-binding motifs fold independently, with the C-terminal motif exhibiting greater stability. The kinase domain is stabilized by about 1.5 kcal/mol in the context of the holenzyme, and we detect low-affinity binding of the kinase and dsRBD constructs in solution, indicating that these domains interact weakly. Limited proteolysis measurements confirm the expected domain boundaries and reveal that the activation loop in the kinase is accessible to cleavage and unstructured. Autophosphorylation induces a conformation change that blocks proteolysis of the activation loop.
Insights
Protein kinase R (PKR) activation involves domain interactions. This study reveals weak interdomain contacts and conformational changes upon dsRNA binding, impacting innate immunity antiviral pathways.
Area of Science:
- Biochemistry
- Molecular Biology
- Immunology
Background:
- Protein kinase R (PKR) is crucial for innate immunity's antiviral response.
- PKR activation by dsRNA leads to eIF2alpha phosphorylation and protein synthesis inhibition.
- Existing models propose autoinhibition, but recent data suggest dsRNA binding induces dimerization.
Purpose of the Study:
- To investigate the role of interdomain contacts in PKR activation.
- To compare the stability of isolated PKR domains versus domains within the holenzyme.
- To elucidate the conformational changes accompanying PKR activation.
Main Methods:
- Equilibrium chemical denaturation experiments to assess domain stability.
- Limited proteolysis to confirm domain boundaries and activation loop accessibility.
- Analysis of interactions between kinase and dsRNA-binding domains (dsRBD).
Main Results:
- The two dsRNA-binding motifs within the dsRBD fold independently, with the C-terminal motif being more stable.
- The kinase domain shows a modest stabilization (1.5 kcal/mol) within the holenzyme.
- Weak, low-affinity interactions were detected between the kinase and dsRBD constructs.
- The kinase activation loop is accessible and unstructured in the latent enzyme but becomes protected upon autophosphorylation.
Conclusions:
- Interdomain contacts in PKR are weak, suggesting a role for dimerization in activation.
- Conformational changes, particularly involving the activation loop, are critical for PKR function.
- These findings refine our understanding of PKR's mechanism in antiviral innate immunity.
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