Polypharmacologic phosphoinositide modulation by FTY720 triggers endomembrane trafficking collapse and metabolic

Satoshi Kofuji1, Kazutaka Sumita2, Yoshiki Ikeda3

  • 1Division of Hematology and Oncology, Department of Internal Medicine, University of Cincinnati College of Medicine, Cincinnati, OH, United States of America; Graduate School of Biomedical & Health Sciences, Hiroshima University, Hiroshima, Japan; Medical Research Laboratory, Institute of Integrated Research, Institute of Science Tokyo, Tokyo, Japan.

Insights

High-dose FTY720 (fingolimod) exhibits anti-tumor effects by disrupting phosphoinositide networks, causing nutrient stress, and inducing cancer cell death. This polypharmacologic approach offers a novel therapeutic strategy for glioblastoma.

Area of Science:

  • Oncology
  • Molecular Pharmacology
  • Cell Biology

Background:

  • Phosphoinositides are crucial for cell growth and homeostasis; elevated levels fuel tumor progression.
  • Current cancer therapies often target single phosphoinositide kinases, leaving broader network effects unexplored.
  • FTY720 (fingolimod), an approved drug, shows anti-tumor activity via incompletely understood non-canonical mechanisms.

Purpose of the Study:

  • To investigate the polypharmacologic effects of high-dose FTY720 on phosphoinositide kinases and cancer cell metabolism.
  • To elucidate the novel anti-tumor mechanisms of FTY720, termed ASURA (Asymmetric Simultaneous Uncoupling of Related Activities).
  • To evaluate FTY720 efficacy in patient-derived glioblastoma models.

Main Methods:

  • Utilized isozyme-divergent modulation assays to analyze FTY720's impact on phosphoinositide kinases.
  • Employed scanning ion conductance microscopy and tracer uptake to assess FTY720's effects on membrane trafficking.
  • Conducted quantitative metabolomics to identify metabolic alterations induced by FTY720.

Main Results:

  • High-dose FTY720 induced ASURA, biasing PIKFYVE activity and causing vacuolization and endomembrane remodeling.
  • FTY720 suppressed macropinocytic ruffling and led to depletion of amino acids and ribonucleoside triphosphates.
  • Metabolic rewiring, oxidative stress, and nutrient stress were observed, with sensitivity noted in glioblastoma neurospheres.

Conclusions:

  • ASURA-dose FTY720 disrupts phosphoinositide-regulated trafficking and nutrient uptake, inducing intracellular nutrient stress.
  • This mechanism culminates in cancer cell death, supporting FTY720 as a potential therapeutic agent for glioblastoma.
  • Combination therapy with PI3K inhibitors may enhance FTY720's anti-tumor efficacy.

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