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Identification of Intracellular Signaling Events Induced in Viable Cells by Interaction with Neighboring Cells Undergoing Apoptotic Cell Death
Published on: December 27, 2016
ArgBP2gamma interacts with Akt and p21-activated kinase-1 and promotes cell survival
Zeng-qiang Yuan1, Donghwa Kim, Satoshi Kaneko
1Department of Pathology, University of South Florida College of Medicine and H. Lee Moffitt Cancer Center, Tampa, Florida 33612, USA.
Abstract:
Akt/protein kinase B is a major cell survival pathway through phosphorylation of proapoptotic proteins Bad and Bax and of additional apoptotic pathways linked to Forkhead proteins glycogen synthase kinase-3beta and ASK1. To further explore the mechanism by which Akt regulates cell survival, we identified an Akt interaction protein by yeast two-hybrid screening. It is highly homologous to ARG-binding protein 2 (ArgBP2) with splicing exon 8 of the coding region of the ArgBP2. As two splicing isoforms (ArgBP2alpha and -beta) of ArgBP2 have been identified (Wang, B., Golemis, E. A., and Kruh, G. D. (1997) J. Biol. Chem. 272, 17542-17550), it was named ArgBP2gamma. ArgBP2gamma contains four Akt phosphorylation consensus sites, a SoHo motif, and three Src homology (SH) 3 domains and binds to C-terminal proline-rich motifs of Akt through its first and second SH3 domains. It also interacts with p21-activated protein kinase (PAK1) via its first and third SH3 domains, indicating the SH3 domains of ArgBP2gamma as docking sites for Akt and PAK1. Akt phosphorylates ArgBP2gamma in vitro and in vivo. Expression of ArgBP2gamma induces PAK1 activity and overrides apoptosis induced by ectopic expression of Bad or DNA damage. Nonphosphorylatable ArgBP2gamma-4A and SH3 domain-truncated mutant ArgBP2gamma inhibit Akt-induced PAK1 activation and reduce Akt and PAK1 phosphorylation of Bad and antiapoptotic function. These data indicate that ArgBP2gamma is a physiological substrate of Akt, functions as an adaptor for Akt and PAK1, and plays a role in Akt/PAK1 cell survival pathway.
Insights
A novel protein, ArgBP2gamma, acts as an adaptor for Akt and PAK1, mediating cell survival by regulating apoptosis. This discovery sheds light on the Akt/PAK1 cell survival pathway.
Area of Science:
- Cellular Biology
- Molecular Biology
- Biochemistry
Background:
- Akt/protein kinase B is a critical cell survival pathway.
- Akt regulates apoptosis by phosphorylating proapoptotic proteins like Bad and Bax.
- Understanding Akt's regulatory mechanisms is key to cell survival research.
Purpose of the Study:
- To identify and characterize novel Akt interaction proteins.
- To elucidate the role of a newly identified Akt-binding protein in cell survival.
- To explore the mechanism of Akt-mediated cell survival regulation.
Main Methods:
- Yeast two-hybrid screening to identify Akt-interacting proteins.
- Protein characterization including domain analysis and phosphorylation site identification.
- In vitro and in vivo phosphorylation assays and apoptosis assays.
Main Results:
- Identified ArgBP2gamma, an Akt-interacting protein homologous to ArgBP2.
- ArgBP2gamma contains Akt phosphorylation sites and binds Akt and PAK1 via its SH3 domains.
- ArgBP2gamma phosphorylation by Akt induces PAK1 activity and overrides apoptosis; mutants impair this function.
Conclusions:
- ArgBP2gamma is a physiological substrate and adaptor protein for Akt and PAK1.
- ArgBP2gamma plays a crucial role in the Akt/PAK1-mediated cell survival pathway.
- This study reveals a novel mechanism for Akt in promoting cell survival.
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