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Updated: Sep 3, 2025

Induction and Analysis of Epithelial to Mesenchymal Transition
Published on: August 27, 2013
Epithelial-Mesenchymal Transition Suppresses AMPK and Sensitizes Cancer Cells to Pyroptosis under Energy Stress
Mingwei Liang1, Jennifer W Li1, Huacheng Luo1
1Department of Biochemistry and Molecular Biology, College of Medicine, University of Florida, Gainesville, FL 32610, USA.
Abstract:
Epithelial-mesenchymal transition (EMT) is implicated in tumor metastasis and therapeutic resistance. It remains a challenge to target cancer cells that have undergone EMT. The Snail family of key EMT-inducing transcription factors directly binds to and transcriptionally represses not only epithelial genes but also a myriad of additional genomic targets that may carry out significant biological functions. Therefore, we reasoned that EMT inherently causes various concomitant phenotypes, some of which may create targetable vulnerabilities for cancer treatment. In the present study, we found that Snail transcription factors bind to the promoters of multiple genes encoding subunits of the AMP-activated protein kinase (AMPK) complex, and expression of AMPK genes was markedly downregulated by EMT. Accordingly, high AMPK expression in tumors correlated with epithelial cell markers and low AMPK expression in tumors was strongly associated with adverse prognosis. AMPK is the principal sensor of cellular energy status. In response to energy stress, AMPK is activated and critically reprograms cellular metabolism to restore energy homeostasis and maintain cell survival. We showed that activation of AMPK by energy stress was severely impaired by EMT. Consequently, EMT cancer cells became hypersensitive to a variety of energy stress conditions and primarily underwent pyroptosis, a regulated form of necrotic cell death. Collectively, the study suggests that EMT impedes the activation of AMPK signaling induced by energy stress and sensitizes cancer cells to pyroptotic cell death under energy stress conditions. Therefore, while EMT promotes malignant progression, it concurrently induces collateral vulnerabilities that may be therapeutically exploited.
Insights
Epithelial-mesenchymal transition (EMT) impairs AMP-activated protein kinase (AMPK) activation, making cancer cells vulnerable to energy stress and pyroptosis. This study reveals a potential therapeutic target in EMT-driven cancers.
Area of Science:
- Cancer Biology
- Molecular Oncology
- Cellular Metabolism
Background:
- Epithelial-mesenchymal transition (EMT) is crucial for tumor metastasis and therapeutic resistance, presenting a challenge for cancer treatment.
- Snail transcription factors drive EMT by repressing epithelial genes and other genomic targets, potentially creating vulnerabilities.
- Targeting EMT-induced phenotypes is a promising strategy for novel cancer therapies.
Purpose of the Study:
- To investigate the impact of EMT on AMP-activated protein kinase (AMPK) signaling.
- To identify targetable vulnerabilities arising from EMT-induced cellular changes.
- To explore the therapeutic potential of exploiting EMT-associated metabolic reprogramming.
Main Methods:
- Analysis of Snail transcription factor binding to AMPK gene promoters.
- Quantification of AMPK gene expression in relation to EMT markers in tumors.
- Assessment of AMPK activation and cellular response to energy stress in EMT cancer cells.
- Evaluation of pyroptosis induction under energy stress conditions.
Main Results:
- Snail transcription factors directly downregulate AMPK gene expression during EMT.
- High AMPK expression correlates with epithelial markers and favorable prognosis; low expression associates with poor prognosis.
- EMT impairs AMPK activation by energy stress, leading to hypersensitivity to energy stress and pyroptosis in cancer cells.
Conclusions:
- EMT impedes AMPK signaling activation in response to energy stress.
- EMT sensitizes cancer cells to pyroptotic cell death under energy stress.
- Exploiting EMT-induced vulnerabilities, such as impaired AMPK activation, offers a potential therapeutic strategy for metastatic cancers.
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