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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.
Abstract:
Phosphoinositides coordinate membrane trafficking and bioenergetic homeostasis, and many tumors rely on elevated phosphoinositide flux to sustain growth. Therapeutic development has largely pursued single-phosphoinositide kinase inhibition, whereas polypharmacologic strategies that perturb the broader network remain underexplored. FTY720 (fingolimod), a clinically approved sphingosine-1-phosphate receptor modulator, shows anti-tumor activity at micromolar concentrations, but its non-canonical mechanisms remain incompletely defined. Building on our work with the structurally related compound KRP203, we show that high-dose FTY720 produces isozyme-divergent modulation across phosphoinositide kinases and biases PIKFYVE activity toward phosphatidylinositol, a pattern we term ASURA (Asymmetric Simultaneous Uncoupling of Related Activities). FTY720 induces vacuolization and endomembrane remodeling in cancer cells, and suppresses macropinocytic ruffling as demonstrated by tracer uptake and scanning ion conductance microscopy analyses. Quantitative metabolomics revealed depletion of intracellular amino acids and ribonucleoside triphosphates, coupled with reduced glycolysis. Concurrently, FTY720 induced extensive rewiring of the hexosamine pathway, nitrogen metabolism, and tricarboxylic acid (TCA)-cycle anaplerosis, along with redox signatures indicating oxidative stress despite a nutrient-replete medium. The metabolites depleted by FTY720 showed extensive, directionally concordant overlap with those depleted by PTEN induction. Patient-derived glioblastoma (GBM) neurospheres were sensitive to FTY720, and co-treatment with a PI3Kα-selective inhibitor augmented growth suppression in U87MG cells. Together, these data support a model in which ASURA-dose FTY720 disrupts phosphoinositide-regulated trafficking and nutrient access, imposing intracellular nutrient stress that culminates in tumor-cell death.
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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