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Published on: January 7, 2019
Protein kinase C fusion proteins are paradoxically loss of function in cancer
An-Angela N Van1, Maya T Kunkel2, Timothy R Baffi1
1Department of Pharmacology, University of California at San Diego, La Jolla, California, USA; Biomedical Sciences Graduate Program, University of California at San Diego, La Jolla, California, USA.
Abstract:
Within the AGC kinase superfamily, gene fusions resulting from chromosomal rearrangements have been most frequently described for protein kinase C (PKC), with gene fragments encoding either the C-terminal catalytic domain or the N-terminal regulatory moiety fused to other genes. Kinase fusions that eliminate regulatory domains are typically gain of function and often oncogenic. However, several quality control pathways prevent accumulation of aberrant PKC, suggesting that PKC fusions may paradoxically be loss of function. To explore this topic, we used biochemical, cellular, and genome editing approaches to investigate the function of fusions that retain the portion of the gene encoding either the catalytic domain or regulatory domain of PKC. Overexpression studies revealed that PKC catalytic domain fusions were constitutively active but vulnerable to degradation. Genome editing of endogenous genes to generate a cancer-associated PKC fusion resulted in cells with detectable levels of fusion transcript but no detectable protein. Hence, PKC catalytic domain fusions are paradoxically loss of function as a result of their instability, preventing appreciable accumulation of protein in cells. Overexpression of a PKC regulatory domain fusion suppressed both basal and agonist-induced endogenous PKC activity, acting in a dominant-negative manner by competing for diacylglycerol. For both catalytic and regulatory domain fusions, the PKC component of the fusion proteins mediated the effects of the full-length fusions on the parameters examined, suggesting that the partner protein is dispensable in these contexts. Taken together, our findings reveal that PKC gene fusions are distinct from oncogenic fusions and present a mechanism by which loss of PKC function occurs in cancer.
Insights
Protein kinase C (PKC) gene fusions are paradoxically loss-of-function due to instability or dominant-negative effects, distinct from typical oncogenic fusions. This research uncovers a novel mechanism for PKC loss in cancer.
Area of Science:
- Molecular Biology
- Cancer Biology
- Biochemistry
Background:
- Gene fusions involving protein kinase C (PKC) are common in cancer, often arising from chromosomal rearrangements.
- While kinase fusions lacking regulatory domains are typically oncogenic (gain-of-function), cellular quality control mechanisms may lead to paradoxical loss-of-function.
- The functional consequences of PKC fusions retaining catalytic or regulatory domains remain largely unexplored.
Purpose of the Study:
- To investigate the function of PKC gene fusions that retain either the catalytic or regulatory domain.
- To determine if these PKC fusions are gain-of-function (oncogenic) or loss-of-function.
- To elucidate the mechanism underlying the function of PKC fusions in cellular contexts.
Main Methods:
- Biochemical assays to assess kinase activity and protein stability.
- Cellular studies involving overexpression of fusion constructs.
- Genome editing to generate endogenous cancer-associated PKC fusions.
- Analysis of protein accumulation and dominant-negative effects.
Main Results:
- PKC catalytic domain fusions exhibit constitutive activity but are rapidly degraded, leading to a paradoxical loss-of-function.
- Genome editing confirmed that cancer-associated PKC catalytic fusions result in undetectable protein levels.
- PKC regulatory domain fusions act in a dominant-negative manner, suppressing endogenous PKC activity by competing for diacylglycerol.
Conclusions:
- PKC gene fusions are distinct from typical oncogenic fusions and represent a mechanism for loss of PKC function.
- The stability of the fusion protein, rather than the partner protein, dictates the functional outcome.
- These findings highlight a novel pathway for PKC dysregulation contributing to cancer development.
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