Homeostatic iron regulatory protein drives glioblastoma growth via tumor cell-intrinsic and sex-specific responses

Author:

Troike Katie M12ORCID,Wang Sabrina Z134,Silver Daniel J15,Lee Juyeun1ORCID,Mulkearns-Hubert Erin E1,Hajdari Nicole1,Ghosh Prabar K1,Kay Kristen E12,Beilis Julia L1,Mitchell Sofia E1,Bishop Christopher W1,Hong Ellen S13,Artomov Mykyta67ORCID,Hubert Christopher G158,Rajappa Prajwal69,Connor James R10,Fox Paul L15,Kristensen Bjarne W11ORCID,Lathia Justin D12512ORCID

Affiliation:

1. Department of Cardiovascular and Metabolic Sciences, Lerner Research Institute, Cleveland Clinic , Cleveland, Ohio , USA

2. Department of Molecular Medicine, Lerner College of Medicine, Case Western Reserve University , Cleveland, Ohio , USA

3. Medical Scientist Training Program, Case Western Reserve University School of Medicine , Cleveland, Ohio , USA

4. Department of Pathology, Case Western Reserve University , Cleveland, Ohio , USA

5. Case Comprehensive Cancer Center, Case Western Reserve University , Cleveland, Ohio , USA

6. Institute for Genomic Medicine, Nationwide Children’s Hospital , Columbus, Ohio , USA

7. Department of Pediatrics, The Ohio State Wexner Medical Center , Columbus, Ohio , USA

8. Department of Biochemistry, Case Western Reserve University , Cleveland, Ohio , USA

9. Department of Neurological Surgery, The Ohio State Wexner Medical Center , Columbus, Ohio , USA

10. Department of Neurosurgery, Penn State Hershey Medical Center , Hershey, Pennsylvania , USA

11. Department of Clinical Medicine, Biotech Research and Innovation Center (BRIC), University of Copenhagen , Copenhagen , Denmark

12. Rose Ella Burkhardt Brain Tumor and Neuro-Oncology Center, Cleveland Clinic , Cleveland, Ohio , USA

Abstract

Abstract Background Glioblastoma (GBM) displays alterations in iron that drive proliferation and tumor growth. Iron regulation is complex and involves many regulatory mechanisms, including the homeostatic iron regulator (HFE) gene, which encodes the homeostatic iron regulatory protein. While HFE is upregulated in GBM and correlates with poor survival outcomes, the function of HFE in GBM remains unclear. Methods We interrogated the impact of cell-intrinsic Hfe expression on proliferation and survival of intracranially implanted animals through genetic gain- and loss-of-function approaches in syngeneic mouse glioma models, along with in vivo immune assessments. We also determined the expression of iron-associated genes and their relationship to survival in GBM using public data sets and used transcriptional profiling to identify differentially expressed pathways in control compared to Hfe-knockdown cells. Results Overexpression of Hfe accelerated GBM proliferation and reduced animal survival, whereas suppression of Hfe induced apoptotic cell death and extended survival, which was more pronounced in females and associated with attenuation of natural killer cells and CD8+ T cell activity. Analysis of iron gene signatures in Hfe-knockdown cells revealed alterations in the expression of several iron-associated genes, suggesting global disruption of intracellular iron homeostasis. Further analysis of differentially expressed pathways revealed oxidative stress as the top pathway upregulated following Hfe loss. Hfe knockdown indeed resulted in enhanced 55Fe uptake and generation of reactive oxygen species. Conclusions These findings reveal an essential function for HFE in GBM cell growth and survival, as well as a sex-specific interaction with the immune response.

Funder

National Institutes of Health

Publisher

Oxford University Press (OUP)

Subject

Surgery,Oncology,Neurology (clinical)

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