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Updated: May 26, 2026

Studying RNA Interactors of Protein Kinase RNA-Activated during the Mammalian Cell Cycle
Published on: March 5, 2019
The RAX/PACT-PKR stress response pathway promotes p53 sumoylation and activation, leading to G₁ arrest
Richard L Bennett1, Yu Pan, Jaime Christian
1Department of Medicine, Division of Hematology and Oncology, University of Florida, Gainesville, FL, USA.
Abstract:
Cellular stresses, including growth factor deprivation, inflammatory cytokines or viral infection promote RAX/PACT-dependent activation of the double-stranded RNA-dependent protein kinase, PKR, to phosphorylate eIF2α, resulting in translation inhibition and apoptosis. In addition, PKR has been reported to regulate p53, STAT1 and NFκB. Here, we report that RAX/PACT interacts with the SUMO E2 ligase Ubc9 to stimulate p53-Ubc9 association and reversible p53 sumoylation on lysine 386. In addition, expression of RAX/PACT in a variety of cell lines promotes p53 stability and activity to increase p53 target gene expression. Significantly, while the expression of RAX/PACT, PKR or p53 alone has little effect on the cell cycle of p53-null H1299 cells, co-expression of p53 with either RAX/PACT or PKR promotes a 25-35% increase of cells in G₁. In contrast, co-expression of RAX/PACT with the sumoylation-deficient p53(K386R) mutant or with the desumoylase SENP1 fails to induce such a G₁ arrest. Furthermore, co-expression of p53, RAX/PACT and the dominantnegative PKR(K296R) mutant inhibits RAX/PACT-induced, p53-dependent G₁ growth arrest and expression of RAX/PACT in pkr(+/+) but not pkr(-/-) MEF cells promotes p53 and p21 expression following gamma irradiation. Significantly, p53 stability is decreased in cells with reduced RAX/PACT or PKR following doxorubicin treatment, and expression of exogenous RAX/ PACT promotes phosphorylation of wild-type but not p53(K386R) on serine 392. Collectively, results indicate that, in response to stress, the RAX/PACT-PKR signaling pathway may inhibit p53 protein turnover by a sumoylation-dependent mechanism with promotion of p53 phosphorylation and translational activation leading to G₁ cell cycle arrest.
Insights
Cellular stress activates RAX/PACT-PKR signaling, enhancing p53 stability and activity through sumoylation. This pathway promotes p53-dependent G1 cell cycle arrest, crucial for stress response.
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- Cellular stresses activate the double-stranded RNA-dependent protein kinase (PKR) via RAX/PACT, leading to translation inhibition and apoptosis.
- PKR is known to regulate key transcription factors including p53, STAT1, and NFκB.
Purpose of the Study:
- To investigate the interaction between RAX/PACT, PKR, and p53.
- To elucidate the role of p53 sumoylation in cellular stress response pathways.
- To determine the impact of the RAX/PACT-PKR pathway on cell cycle regulation.
Main Methods:
- Co-immunoprecipitation to assess protein interactions (RAX/PACT, Ubc9, p53).
- Western blotting to analyze protein levels, phosphorylation, and sumoylation.
- Cell cycle analysis using flow cytometry.
- Gene expression analysis of p53 target genes.
Main Results:
- RAX/PACT interacts with Ubc9, promoting p53 sumoylation at lysine 386 and enhancing p53 stability and transcriptional activity.
- Co-expression of p53 with RAX/PACT or PKR induces G1 cell cycle arrest, dependent on p53 sumoylation and PKR activity.
- RAX/PACT-PKR signaling promotes p53 and p21 expression post-irradiation and enhances p53 phosphorylation at serine 392.
Conclusions:
- The RAX/PACT-PKR pathway regulates p53 stability and activity via sumoylation in response to cellular stress.
- This pathway mediates a p53-dependent G1 cell cycle arrest, contributing to cellular defense mechanisms.
- Sumoylation of p53 is a critical step in the stress-induced activation of the RAX/PACT-PKR signaling cascade.
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