YWHAG Deficiency Disrupts the EMT-Associated Network to Induce Oxidative Cell Death and Prevent Metastasis
Jeannie Xue Ting Lee1, Wei Ren Tan1, Zun Siong Low1
1Lee Kong Chian School of Medicine, Clinical Sciences Building, Nanyang Technological University Singapore, 11 Mandalay Road, Singapore, 308232, Singapore.
Abstract:
Metastasis involves epithelial-to-mesenchymal transition (EMT), a process that is regulated by complex gene networks, where their deliberate disruption may yield a promising outcome. However, little is known about mechanisms that coordinate these metastasis-associated networks. To address this gap, hub genes with broad engagement across various human cancers by analyzing the transcriptomes of different cancer cell types undergoing EMT are identified. The oncogenic signaling adaptor protein tyrosine 3-monooxygenase/tryptophan 5-monooxygenase activation protein gamma (YWHAG) is ranked top for its clinical relevance and impact. The cellular kinome and transcriptome data are surveyed to construct the regulome of YWHAG, revealing stress responses and metabolic processes during cancer EMT. It is demonstrated that a YWHAG-dependent cytoprotective mechanism in the regulome is embedded in EMT-associated networks to protect cancer cells from oxidative catastrophe through enhanced autophagy during EMT. YWHAG deficiency results in a rapid accumulation of reactive oxygen species (ROS), delayed EMT, and cell death. Tumor allografts show that metastasis potential and overall survival time are correlated with the YWHAG expression level of cancer cell lines. Metastasized tumors have higher expression of YWHAG and autophagy-related genes than primary tumors. Silencing YWHAG diminishes primary tumor volumes, prevents metastasis, and prolongs the median survival period of the mice.
Insights
The protein YWHAG is crucial for cancer cell survival during metastasis by enhancing autophagy and managing oxidative stress. Its inhibition halts cancer spread and improves survival in preclinical models.
Area of Science:
- Oncology
- Molecular Biology
- Cell Biology
Background:
- Metastasis, a hallmark of cancer, is driven by epithelial-to-mesenchymal transition (EMT), a process governed by intricate gene networks.
- Understanding the coordination mechanisms within these metastasis-associated networks is critical for developing effective cancer therapies.
Purpose of the Study:
- To identify key regulatory genes coordinating metastasis-associated networks in various human cancers.
- To elucidate the role of the identified hub gene, YWHAG, in cancer cell survival and metastasis during EMT.
Main Methods:
- Analysis of cancer cell transcriptomes undergoing EMT to identify hub genes.
- Construction of the YWHAG regulome using cellular kinome and transcriptome data.
- In vivo studies using tumor allografts to assess the impact of YWHAG expression on metastasis and survival.
Main Results:
- YWHAG was identified as a top-ranked hub gene with significant clinical relevance in cancer.
- YWHAG regulates stress responses and metabolic processes during EMT, promoting a cytoprotective mechanism via enhanced autophagy.
- YWHAG deficiency led to increased reactive oxygen species (ROS), delayed EMT, cell death, and reduced metastasis in preclinical models.
Conclusions:
- YWHAG plays a critical role in enabling cancer cell survival and promoting metastasis through a cytoprotective pathway involving autophagy.
- Targeting YWHAG presents a promising therapeutic strategy to inhibit cancer metastasis and improve patient survival.
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