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Published on: June 9, 2023
AKT Blocks SIK1-Mediated Repression of STAT3 to Promote Breast Tumorigenesis
Zicheng Sun1,2,3, Qiwei Jiang2, Bing Gao2
1Department of Breast and Thyroid Surgery, The First Affiliated Hospital, Sun Yat-sen University, Guangzhou, Guangdong, China.
Abstract:
The PI3K-AKT signaling pathway is frequently dysregulated in cancer, and it is hyperactivated in approximately 50% of breast cancers. Although inhibitors directly targeting the PI3K-AKT axis have been developed, clinical efficacy has been limited to only a subset of patients. Identification of mechanisms underlying AKT-driven tumorigenesis could lead to alternative approaches to block pathway signaling and suppress breast tumor growth. Mass spectrometry-based analyses demonstrated that salt-inducible kinase 1 (SIK1) binds AKT and undergoes AKT-mediated phosphorylation, which compromises SIK1 tumor-suppressive functions. As a result, AKT relieved the binding and repression of STAT3 by SIK1 in a phosphorylation-dependent manner, resulting in breast cell tumorigenesis. Following AKT-mediated phosphorylation, SIK1 interacted with 14-3-3 and was translocated to the cytoplasm where the isomerase Pin1 facilitated SIK1 interaction with the E3 ligase ITCH to promote SIK1 ubiquitination and subsequent degradation. These findings indicate that SIK1 is a substrate of AKT that links AKT oncogenic function to STAT3 activation, highlighting targeting of the JAK2-STAT3 axis as a strategy to treat AKT-driven breast cancer.
Significance:
AKT binds and phosphorylates SIK1 to overcome SIK1-mediated repression of STAT3, indicating that STAT3 is a potential therapeutic target in breast cancer with hyperactive AKT signaling.
Insights
Hyperactive AKT signaling in breast cancer promotes tumor growth by degrading the tumor suppressor SIK1. Targeting the JAK2-STAT3 pathway offers a new strategy against AKT-driven breast cancer.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- The PI3K-AKT pathway is frequently dysregulated in breast cancer, with hyperactivation in about 50% of cases.
- Current PI3K-AKT inhibitors show limited efficacy in a subset of patients.
- Understanding AKT-driven tumorigenesis mechanisms is crucial for developing alternative therapeutic strategies.
Purpose of the Study:
- To identify mechanisms by which AKT promotes breast cancer growth.
- To investigate the role of salt-inducible kinase 1 (SIK1) in AKT-driven tumorigenesis.
- To explore targeting the JAK2-STAT3 axis as a therapeutic strategy.
Main Methods:
- Mass spectrometry-based analyses to identify protein interactions.
- Phosphorylation site mapping.
- Analysis of protein degradation pathways.
- Cellular localization studies.
Main Results:
- AKT binds and phosphorylates SIK1, compromising its tumor-suppressive functions.
- Phosphorylated SIK1 is degraded through interaction with 14-3-3, Pin1, and ITCH.
- AKT-mediated SIK1 degradation relieves SIK1-dependent repression of STAT3, promoting breast cell tumorigenesis.
- SIK1 acts as a substrate of AKT, linking AKT's oncogenic function to STAT3 activation.
Conclusions:
- SIK1 is a key mediator of AKT-driven breast cancer.
- Targeting the JAK2-STAT3 axis is a potential therapeutic strategy for AKT-hyperactivated breast cancers.
- STAT3 is a potential therapeutic target in breast cancer with hyperactive AKT signaling.
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