PP2A‐based triple‐strike therapy overcomes mitochondrial apoptosis resistance in brain cancer cells

Author:

Denisova Oxana V.1,Merisaari Joni12,Huhtaniemi Riikka1,Qiao Xi1,Yetukuri Laxman134,Jumppanen Mikael1,Kaur Amanpreet1,Pääkkönen Mirva1,von Schantz‐Fant Сarina3,Ohlmeyer Michael56,Wennerberg Krister37ORCID,Kauko Otto1,Koch Raphael8,Aittokallio Tero349,Taipale Mikko10,Westermarck Jukka12ORCID

Affiliation:

1. Turku Bioscience Centre University of Turku and Åbo Akademi University Finland

2. Institute of Biomedicine University of Turku Finland

3. Institute for Molecular Medicine Finland (FIMM), HiLIFE University of Helsinki Finland

4. Centre for Biostatistics and Epidemiology (OCBE) University of Oslo Norway

5. Icahn School of Medicine at Mount Sinai New York NY USA

6. Atux Iskay LLC Plainsboro NJ USA

7. Biotech Research & Innovation Centre University of Copenhagen Denmark

8. University Medical Center Göttingen Germany

9. Institute for Cancer Research Oslo University Hospital Norway

10. Donnelly Centre for Cellular and Biomolecular Research University of Toronto Canada

Abstract

Mitochondrial glycolysis and hyperactivity of the phosphatidylinositol 3‐kinase–protein kinase B (AKT) pathway are hallmarks of malignant brain tumors. However, kinase inhibitors targeting AKT (AKTi) or the glycolysis master regulator pyruvate dehydrogenase kinase (PDKi) have failed to provide clinical benefits for brain tumor patients. Here, we demonstrate that heterogeneous glioblastoma (GB) and medulloblastoma (MB) cell lines display only cytostatic responses to combined AKT and PDK targeting. Biochemically, the combined AKT and PDK inhibition resulted in the shutdown of both target pathways and priming to mitochondrial apoptosis but failed to induce apoptosis. In contrast, all tested brain tumor cell models were sensitive to a triplet therapy, in which AKT and PDK inhibition was combined with the pharmacological reactivation of protein phosphatase 2A (PP2A) by NZ‐8‐061 (also known as DT‐061), DBK‐1154, and DBK‐1160. We also provide proof‐of‐principle evidence for in vivo efficacy in the intracranial GB and MB models by the brain‐penetrant triplet therapy (AKTi + PDKi + PP2A reactivator). Mechanistically, PP2A reactivation converted the cytostatic AKTi + PDKi response to cytotoxic apoptosis, through PP2A‐elicited shutdown of compensatory mitochondrial oxidative phosphorylation and by increased proton leakage. These results encourage the development of triple‐strike strategies targeting mitochondrial metabolism to overcome therapy tolerance in brain tumors.

Funder

Academy of Finland

K. Albin Johanssons Stiftelse

Sigrid Juséliuksen Säätiö

Suomen Kulttuurirahasto

Syöpäsäätiö

Varsinais-Suomen Rahasto

Publisher

Wiley

Subject

Cancer Research,Genetics,Molecular Medicine,General Medicine,Oncology

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