A distinct pattern of growth and RAC1 signaling in melanoma brain metastasis cells

Author:

Stejerean-Todoran Ioana1,Gimotty Phyllis A2,Watters Andrea3,Brafford Patricia3,Krepler Clemens3,Godok Tetiana3,Li Haiyin3,Bonilla del Rio Zuriñe1,Zieseniss Anke4,Katschinski Dörthe M4,Sertel Sinem M5,Rizzoli Silvio O5,Garman Bradley6,Nathanson Katherine L6,Xu Xiaowei7,Chen Qing8,Oswald Jack H8,Lotem Michal9,Mills Gordon B10,Davies Michael A10,Schön Michael P11,Bogeski Ivan1,Herlyn Meenhard3,Vultur Adina13ORCID

Affiliation:

1. Department of Cardiovascular Physiology, Molecular Physiology, University Medical Center Göttingen, Göttingen , Germany

2. Department of Biostatistics, Informatics and Epidemiology, University of Pennsylvania School of Medicine , Philadelphia, Pennsylvania, USA

3. Program of Cellular and Molecular Oncogenesis, Melanoma Research Center, The Wistar Institute , Philadelphia, Pennsylvania, USA

4. Department of Cardiovascular Physiology, University Medical Center Göttingen, Göttingen , Germany

5. Department of Neuro- and Sensory Physiology, University Medical Center Göttingen, Göttingen , Germany

6. Department of Medicine, Division of Translational Medicine and Human Genetics; Abramson Cancer Center; University of Pennsylvania Perelman School of Medicine , Philadelphia, Pennsylvania, USA

7. Department of Pathology and Laboratory Medicine, University of Pennsylvania , Philadelphia, Pennsylvania, USA

8. Immunology Microenvironment and Metastasis, The Wistar Institute , Philadelphia, Pennsylvania, USA

9. Sharett Institute of Oncology, Hadassah Hebrew University Medical Center , Jerusalem, Israel

10. Department of Melanoma Medical Oncology, MD Anderson Cancer Center, University of Texas , Houston, Texas, USA

11. Department of Dermatology, Venereology and Allergology, University Medical Center Göttingen , Göttingen , Germany

Abstract

Abstract Background Melanoma, the deadliest of skin cancers, has a high propensity to form brain metastases that are associated with a markedly worsened prognosis. In spite of recent therapeutic advances, melanoma brain lesions remain a clinical challenge, biomarkers predicting brain dissemination are not clear and differences with other metastatic sites are poorly understood. Methods We examined a genetically diverse panel of human-derived melanoma brain metastasis (MBM) and extracranial cell lines using targeted sequencing, a Reverse Phase Protein Array, protein expression analyses, and functional studies in vitro and in vivo. Results Brain-specific genetic alterations were not detected; however, MBM cells in vitro displayed lower proliferation rates and MBM-specific protein expression patterns associated with proliferation, DNA damage, adhesion, and migration. MBM lines displayed higher levels of RAC1 expression, involving a distinct RAC1-PAK1-JNK1 signaling network. RAC1 knockdown or treatment with small molecule inhibitors contributed to a less aggressive MBM phenotype in vitro, while RAC1 knockdown in vivo led to reduced tumor volumes and delayed tumor appearance. Proliferation, adhesion, and migration were higher in MBM vs nonMBM lines in the presence of insulin or brain-derived factors and were affected by RAC1 levels. Conclusions Our findings indicate that despite their genetic variability, MBM engage specific molecular processes such as RAC1 signaling to adapt to the brain microenvironment and this can be used for the molecular characterization and treatment of brain metastases.

Funder

National Cancer Institute

Medical Research Foundation

German Research Foundation

American Cancer Society

Cancer Center Support

Publisher

Oxford University Press (OUP)

Subject

Cancer Research,Neurology (clinical),Oncology

Reference50 articles.

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