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Functional antagonism of β-arrestin isoforms balance IGF-1R expression and signalling with distinct cancer-related
N Suleymanova1, C Crudden1, T Shibano1
1Department of Oncology and Pathology, Cancer Center Karolinska, Karolinska Institutet and Karolinska University Hospital, Stockholm, Sweden.
Abstract:
With very similar 3D structures, the widely expressed β-arrestin isoforms 1 and 2 play at times identical, distinct or even opposing roles in regulating various aspects of G protein-coupled receptors (GPCR) expression and signalling. Recent evidence recognizes the β-arrestin system as a key regulator of not only GPCRs, but also receptor tyrosine kinases, including the highly cancer relevant insulin-like growth factor type 1 receptor (IGF-1R). Binding of β-arrestin1 to IGF-1R leads to ligand-dependent degradation of the receptor and generates additional MAPK/ERK signalling, protecting cancer cells against anti-IGF-1R therapy. Because the interplay between β-arrestin isoforms governs the biological effects for most GPCRs, as yet unexplored for the IGF-1R, we sought to investigate specifically the regulatory roles of the β-arrestin2 isoform on expression and function of the IGF-1R. Results from controlled expression of either β-arrestin isoform demonstrate that β-arrestin2 acts in an opposite manner to β-arrestin1 by promoting degradation of an unstimulated IGF-1R, but protecting the receptor against agonist-induced degradation. Although both isoforms co-immunoprecipitate with IGF-1R, the ligand-occupied receptor has greater affinity for β-arrestin1; this association lasts longer, sustains MAPK/ERK signalling and mitigates p53 activation. Conversely, β-arrestin2 has greater affinity for the ligand-unoccupied receptor; this interaction is transient, triggers receptor ubiquitination and degradation without signalling activation, and leads to a lack of responsiveness to IGF-1, cell cycle arrest and decreased viability of cancer cells. This study reveals contrasting abilities of IGF-1R to interact with each β-arrestin isoform, depending on the presence of the ligand and demonstrates the antagonism between the two β-arrestin isoforms in controlling IGF-1R expression and function, which could be developed into a practical anti-IGF-1R strategy for cancer therapy.
Insights
Beta-arrestin isoforms 1 and 2 have opposing roles in regulating the insulin-like growth factor type 1 receptor (IGF-1R). This antagonism in IGF-1R expression and function offers a potential anti-cancer therapy strategy.
Area of Science:
- Cellular Biology
- Molecular Pharmacology
- Cancer Research
Background:
- Beta-arrestins (isoforms 1 and 2) are critical regulators of G protein-coupled receptors (GPCRs) and receptor tyrosine kinases.
- The insulin-like growth factor type 1 receptor (IGF-1R) is implicated in cancer progression and therapy resistance.
- Beta-arrestin 1 binding to IGF-1R promotes receptor degradation and MAPK/ERK signaling, conferring resistance to anti-IGF-1R therapies.
Purpose of the Study:
- To investigate the specific regulatory roles of beta-arrestin 2 on IGF-1R expression and function.
- To elucidate the contrasting interactions of beta-arrestin isoforms 1 and 2 with IGF-1R in a ligand-dependent manner.
Main Methods:
- Controlled expression of individual beta-arrestin isoforms.
- Co-immunoprecipitation assays to assess protein interactions.
- Analysis of receptor ubiquitination, degradation, signaling pathways (MAPK/ERK, p53), and cellular responses (cell cycle, viability).
Main Results:
- Beta-arrestin 2 promotes degradation of unstimulated IGF-1R but protects against agonist-induced degradation, opposing beta-arrestin 1's effects.
- Ligand-occupied IGF-1R shows higher affinity for beta-arrestin 1, sustaining MAPK/ERK signaling and mitigating p53 activation.
- Ligand-unoccupied IGF-1R preferentially binds beta-arrestin 2 transiently, leading to ubiquitination, degradation, cell cycle arrest, and reduced cancer cell viability.
Conclusions:
- Beta-arrestin isoforms 1 and 2 exhibit antagonistic functions in regulating IGF-1R, dependent on ligand presence.
- The differential interactions of beta-arrestins with IGF-1R present a novel therapeutic strategy for targeting cancer cells resistant to IGF-1R inhibition.
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