NRF2 activates a partial epithelial-mesenchymal transition and is maximally present in a hybrid epithelial/mesenchymal phenotype

Author:

Bocci Federico12ORCID,Tripathi Satyendra C34,Vilchez Mercedes Samuel A5,George Jason T167,Casabar Julian P3,Wong Pak Kin58,Hanash Samir M3,Levine Herbert1269,Onuchic José N12910,Jolly Mohit Kumar111

Affiliation:

1. Center for Theoretical Biological Physics, Rice University, Houston, TX, USA

2. Department of Chemistry, Rice University, Houston, TX, USA

3. Department of Clinical Cancer Prevention, UT MD Anderson Cancer Center, Houston, TX, USA

4. Current address: Department of Biochemistry, All India Institute of Medical Sciences, Nagpur, India

5. Department of Biomedical Engineering, The Pennsylvania State University, University Park, PA, USA

6. Department of Bioengineering, Rice University, Houston, TX, USA

7. Medical Scientist Training Program, Baylor College of Medicine, Houston, TX, USA

8. Department of Mechanical Engineering and Department of Surgery, The Pennsylvania State University, University Park, PA, USA

9. Department of Physics and Astronomy, Rice University, Houston, TX, USA

10. Department of Biosciences, Rice University, Houston, TX, USA

11. Current address: Centre for BioSystems Science and Engineering, Indian Institute of Science, Bangalore, India

Abstract

AbstractThe epithelial-mesenchymal transition (EMT) is a key process implicated in cancer metastasis and therapy resistance. Recent studies have emphasized that cells can undergo partial EMT to attain a hybrid epithelial/mesenchymal (E/M) phenotype – a cornerstone of tumour aggressiveness and poor prognosis. These cells can have enhanced tumour-initiation potential as compared to purely epithelial or mesenchymal ones and can integrate the properties of cell-cell adhesion and motility that facilitates collective cell migration leading to clusters of circulating tumour cells (CTCs) – the prevalent mode of metastasis. Thus, identifying the molecular players that can enable cells to maintain a hybrid E/M phenotype is crucial to curb the metastatic load. Using an integrated computational-experimental approach, we show that the transcription factor NRF2 can prevent a complete EMT and instead stabilize a hybrid E/M phenotype. Knockdown of NRF2 in hybrid E/M non-small cell lung cancer cells H1975 and bladder cancer cells RT4 destabilized a hybrid E/M phenotype and compromised the ability to collectively migrate to close a wound in vitro. Notably, while NRF2 knockout simultaneously downregulated E-cadherin and ZEB-1, overexpression of NRF2 enriched for a hybrid E/M phenotype by simultaneously upregulating both E-cadherin and ZEB-1 in individual RT4 cells. Further, we predict that NRF2 is maximally expressed in hybrid E/M phenotype(s) and demonstrate that this biphasic dynamic arises from the interconnections among NRF2 and the EMT regulatory circuit. Finally, clinical records from multiple datasets suggest a correlation between a hybrid E/M phenotype, high levels of NRF2 and its targets and poor survival, further strengthening the emerging notion that hybrid E/M phenotype(s) may occupy the ‘metastatic sweet spot’.

Funder

National Science Foundation

Center for Theoretical Biological Physics

CHE

MCB

Cancer Prevention and Research Institute of Texas

National Institutes of Health

Computational Cancer Biology Training Program

The Grace Woodward Collaborative Research in Engineering and Medicine grant

Publisher

Oxford University Press (OUP)

Subject

Biochemistry,Biophysics

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