A PERK-Specific Inhibitor Blocks Metastatic Progression by Limiting Integrated Stress Response–Dependent Survival of Quiescent Cancer Cells

Author:

Calvo Veronica12ORCID,Zheng Wei345ORCID,Adam-Artigues Anna345ORCID,Staschke Kirk A.6ORCID,Huang Xin345ORCID,Cheung Julie F.2ORCID,Nobre Ana Rita2ORCID,Fujisawa Sho4ORCID,Liu David1ORCID,Fumagalli Maria1ORCID,Surguladze David1ORCID,Stokes Michael E.1ORCID,Nowacek Ari1ORCID,Mulvihill Mark1ORCID,Farias Eduardo F.1ORCID,Aguirre-Ghiso Julio A.345789ORCID

Affiliation:

1. 1HiberCell, Inc., New York, New York.

2. 2Division of Hematology and Oncology, Department of Medicine, Icahn School of Medicine at Mount Sinai, New York, New York.

3. 3Department of Cell Biology, Albert Einstein College of Medicine, Bronx, New York.

4. 4Cancer Dormancy and Tumor Microenvironment Institute, Albert Einstein College of Medicine, Bronx, New York.

5. 5Montefiore Einstein Comprehensive Cancer Center, Albert Einstein College of Medicine, Bronx, New York.

6. 6Department of Biochemistry and Molecular Biology, Indiana University School of Medicine, Indiana University Melvin and Bren Simon Comprehensive Cancer Center, Indianapolis, Indiana.

7. 7Gruss-Lipper Biophotonics Center, Albert Einstein College of Medicine, Bronx, New York.

8. 8Ruth L. and David S. Gottesman Institute for Stem Cell Research and Regenerative Medicine, Albert Einstein College of Medicine, Bronx, New York.

9. 9Institute for Aging Research, Albert Einstein College of Medicine, Bronx, New York.

Abstract

Abstract Purpose: The integrated stress response (ISR) kinase PERK serves as a survival factor for both proliferative and dormant cancer cells. We aim to validate PERK inhibition as a new strategy to specifically eliminate solitary disseminated cancer cells (DCC) in secondary sites that eventually reawake and originate metastasis. Experimental Design: A novel clinical-grade PERK inhibitor (HC4) was tested in mouse syngeneic and PDX models that present quiescent/dormant DCCs or growth-arrested cancer cells in micro-metastatic lesions that upregulate ISR. Results: HC4 significantly blocks metastasis, by killing quiescent/slow-cycling ISRhigh, but not proliferative ISRlow DCCs. HC4 blocked expansion of established micro-metastasis that contained ISRhigh slow-cycling cells. Single-cell gene expression profiling and imaging revealed that a significant proportion of solitary DCCs in lungs were indeed dormant and displayed an unresolved ER stress as revealed by high expression of a PERK-regulated signature. In human breast cancer metastasis biopsies, GADD34 expression (PERK-regulated gene) and quiescence were positively correlated. HC4 effectively eradicated dormant bone marrow DCCs, which usually persist after rounds of therapies. Importantly, treatment with CDK4/6 inhibitors (to force a quiescent state) followed by HC4 further reduced metastatic burden. In HNSCC and HER2+ cancers HC4 caused cell death in dormant DCCs. In HER2+ tumors, PERK inhibition caused killing by reducing HER2 activity because of sub-optimal HER2 trafficking and phosphorylation in response to EGF. Conclusions: Our data identify PERK as a unique vulnerability in quiescent or slow-cycling ISRhigh DCCs. The use of PERK inhibitors may allow targeting of pre-existing or therapy-induced growth arrested “persister” cells that escape anti-proliferative therapies.

Funder

Ramon Areces Foundation

National Cancer Institute

Congressionally Directed Medical Research Programs

Publisher

American Association for Cancer Research (AACR)

Subject

Cancer Research,Oncology

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