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Published on: December 20, 2017
Protein kinase C delta (deltaPKC)-annexin V interaction: a required step in deltaPKC translocation and function
Viktoria Kheifets1, Rachel Bright, Koichi Inagaki
1Department of Molecular Pharmacology, Stanford University School of Medicine, Stanford, California 94305, USA.
Abstract:
Protein kinase C (PKC) plays a critical role in diseases such as cancer, stroke, and cardiac ischemia, and participates in a variety of signal transduction pathways such as apoptosis, cell proliferation, and tumor suppression. Though much is known about PKC downstream signaling events, the mechanisms of regulation of PKC activation and subsequent translocation have not been elucidated. Protein-protein interactions regulate and determine the specificity of many cellular signaling events. Such a specific protein-protein interaction is described here between deltaPKC and annexin V. We demonstrate, at physiologically relevant conditions, that a transient interaction between annexin V and deltaPKC occurs in cells after deltaPKC stimulation, but before deltaPKC translocates to the particulate fraction. Evidence of deltaPKC-annexin V binding is provided also by FRET and by in vitro binding studies. Dissociation of the deltaPKC-annexin V complex requires ATP and microtubule integrity. Furthermore, depletion of endogenous annexin V, but not annexin IV, with siRNA inhibits deltaPKC translocation following PKC stimulation. A rationally designed eight amino acid peptide, corresponding to the interaction site for deltaPKC on annexin V, inhibits deltaPKC translocation and deltaPKC-mediated function as evidenced by its protective effect in a model of myocardial infarction. Our data indicate that translocation of deltaPKC is not simply a diffusion-driven process, but is instead a multi-step event regulated by protein-protein interactions. We show that following cell activation, deltaPKC-annexin V binding is a transient and an essential step in the function of deltaPKC, thus identifying a new role for annexin V in PKC signaling and a new step in PKC activation.
Insights
Protein kinase C (PKC) interaction with annexin V is a transient, essential step for deltaPKC translocation and function. This discovery reveals a new regulatory mechanism in PKC signaling and activation.
Area of Science:
- Molecular Biology
- Cell Signaling
- Biochemistry
Background:
- Protein kinase C (PKC) is crucial in diseases like cancer and stroke, regulating pathways like apoptosis and cell proliferation.
- While downstream signaling is known, the precise mechanisms governing PKC activation and translocation remain unclear.
- Protein-protein interactions are key regulators of cellular signaling specificity.
Purpose of the Study:
- To elucidate the regulatory mechanisms of PKC activation and translocation.
- To investigate the specific protein-protein interaction between deltaPKC and annexin V.
- To determine the role of this interaction in deltaPKC function and cellular signaling.
Main Methods:
- Demonstrated deltaPKC and annexin V interaction under physiological conditions using FRET and in vitro binding assays.
- Investigated complex dissociation requirements (ATP, microtubule integrity).
- Utilized siRNA to deplete annexin V and assessed the impact on deltaPKC translocation; tested a peptide inhibitor in a myocardial infarction model.
Main Results:
- A transient interaction between annexin V and deltaPKC was observed post-stimulation but before translocation.
- ATP and microtubule integrity were necessary for the dissociation of the deltaPKC-annexin V complex.
- Annexin V depletion inhibited deltaPKC translocation; a peptide targeting the interaction site blocked translocation and protected against myocardial infarction.
Conclusions:
- DeltaPKC translocation is a multi-step process regulated by protein-protein interactions, not solely diffusion-driven.
- The transient binding of deltaPKC to annexin V is an essential step in deltaPKC function following cell activation.
- Identified a novel role for annexin V in PKC signaling and a new regulatory step in PKC activation.
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