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Published on: May 26, 2017
Transformation potency of ErbB heterodimer signaling is determined by B-Raf kinase
1Bioinformatics Group, RIKEN Genomic Sciences Center, 1-7-22 Suehiro-cho, Tsurumi-ku, Yokohama, Kanagawa 230-0045, Japan. marikoh@gsc.riken.jp
Abstract:
Cellular transformation occurs only in cells that express both ErbB1 and ErbB4 receptors, but not in cells expressing only one or the other of these receptors. However, when both receptors are coexpressed and ligand-stimulated, they interact with virtually the same adaptor/effector proteins as when expressed singly. To reveal the underlying regulatory mechanism of the kinase/phosphatase network in ErbB homo- and heterodimer receptor signaling, extracellular signal-regulated kinase (ERK) and Akt activities were evaluated in the presence of several enzyme inhibitors in ligand-induced cells expressing ErbB1 (E1), ErbB4 (E4), and ErbB1/ErbB4 (E1/4) receptor. The PP2A inhibitor okadaic acid showed receptor-specific inhibitory profiles for ERK and Akt activities. Moreover, B-Raf isolated only from E1/4 cells could induce in vitro phosphorylation for MEK; this B-Raf kinase activity was abolished by pretreatment of the cells with okadaic acid. Our study further showed that the E1/4 cell-specific B-Raf activity was stimulated by PLC gamma and subsequent Rap1 activation. The present study suggests that B-Raf kinase, which was specifically activated in the cells coexpressing ErbB1 and ErbB4 receptors, elevates total ERK activity within the cell and, therefore, can induce cellular transformation.
Insights
Cellular transformation requires coexpression of ErbB1 and ErbB4 receptors. This study identifies B-Raf kinase as a key mediator, activated by ErbB1/ErbB4 coexpression, leading to ERK activation and transformation.
Area of Science:
- Cellular and Molecular Biology
- Signal Transduction
- Oncology
Background:
- Cellular transformation is linked to ErbB receptor signaling.
- ErbB1 and ErbB4 receptor coexpression is necessary for transformation, but the underlying mechanism is unclear.
- Receptor coexpression does not alter interactions with common adaptor proteins.
Purpose of the Study:
- To elucidate the regulatory mechanisms of the kinase/phosphatase network in ErbB receptor signaling.
- To investigate the role of specific kinases and phosphatases in ErbB1/ErbB4-mediated cellular transformation.
- To identify key signaling molecules responsible for ErbB1/ErbB4 heterodimer-induced transformation.
Main Methods:
- Ligand-induced signaling in cells expressing ErbB1, ErbB4, or both.
- Evaluation of extracellular signal-regulated kinase (ERK) and Akt activities using enzyme inhibitors.
- In vitro kinase assays with isolated B-Raf and MEK.
- Assessment of PLC gamma and Rap1 activation.
Main Results:
- PP2A inhibition by okadaic acid revealed receptor-specific effects on ERK and Akt.
- B-Raf kinase, isolated exclusively from ErbB1/ErbB4 coexpressing cells, phosphorylated MEK.
- Okadaic acid pretreatment abolished B-Raf kinase activity in ErbB1/ErbB4 cells.
- ErbB1/ErbB4 cell-specific B-Raf activity was stimulated by PLC gamma and Rap1 activation.
Conclusions:
- B-Raf kinase is specifically activated in cells coexpressing ErbB1 and ErbB4 receptors.
- Activated B-Raf kinase elevates total ERK activity, promoting cellular transformation.
- This study reveals a novel signaling pathway involving B-Raf in ErbB1/ErbB4-driven transformation.
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