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Updated: Oct 1, 2025

Intracellular Phosphoflow Cytometry of Acute Myeloid Leukemia Patient-Derived Xenotransplants
Published on: June 6, 2025
mTOR inhibition downregulates glucose-6-phosphate dehydrogenase and induces ROS-dependent death in T-cell acute
Micol Silic-Benussi1, Evgenyia Sharova1, Francesco Ciccarese1
1Veneto Institute of Oncology IOV - IRCCS, Padova, Italy.
Abstract:
mTOR activation is a hallmark of T-cell acute lymphoblastic leukemia (T-ALL) and is associated with resistance to glucocorticoid (GC)-based chemotherapy. We previously showed that altering redox homeostasis primes T-ALL cells to GC-induced apoptosis. Here we investigated the connection between the mTOR pathway and redox homeostasis using pharmacological inhibitors and gene silencing. In vitro studies performed on T-ALL cell lines and CG-resistant patient-derived T-ALL xenograft (PDX) cells showed that the mTOR inhibitor everolimus increased reactive oxygen species (ROS) levels, augmented lipid peroxidation, and activated the ROS-controlled transcription factor NRF2. These effects were accompanied by a decrease in the levels of NADPH and of glucose-6-phosphate dehydrogenase (G6PD), the rate-limiting enzyme of the pentose phosphate pathway (PPP), which is a major source of cytosolic NADPH needed for maintaining the cellular ROS-scavenging capacity. The mTOR inhibitor everolimus induced mitochondrial inner membrane depolarization and dose-dependent apoptosis of T-ALL cells, but did not kill normal T-cells. Importantly, the combination of everolimus and the GC dexamethasone had a synergistic effect on killing T-ALL cells. The effects of mTOR inhibition were blunted by ROS scavengers and phenocopied by siRNA-mediated G6PD silencing. In vivo studies of NOD/SCID mice inoculated with refractory T-ALL PDX demonstrated that everolimus overcame dexamethasone resistance in conditions of high tumor burden that mimicked the clinical setting of acute leukemia. These findings provide insight into the crosstalk between mTOR and ROS homeostasis in T-ALL cells and furnish mechanistic evidence to support the combination of glucocorticoids with mTOR inhibitors as a therapeutic avenue for treating refractory T-ALL.
Insights
The mTOR inhibitor everolimus targets T-cell acute lymphoblastic leukemia (T-ALL) by disrupting redox balance and increasing reactive oxygen species (ROS). Combining everolimus with glucocorticoids offers a synergistic approach to overcome chemotherapy resistance in T-ALL.
Area of Science:
- Oncology
- Molecular Biology
- Cellular Biology
Background:
- mTOR pathway activation is characteristic of T-cell acute lymphoblastic leukemia (T-ALL) and linked to glucocorticoid (GC) resistance.
- Previous research indicated that modifying redox homeostasis sensitizes T-ALL cells to GC-induced apoptosis.
Purpose of the Study:
- To investigate the interplay between the mTOR pathway and redox homeostasis in T-ALL.
- To explore the therapeutic potential of combining mTOR inhibitors with GCs for refractory T-ALL.
Main Methods:
- Utilized pharmacological inhibitors (everolimus) and gene silencing (siRNA) in T-ALL cell lines and patient-derived xenografts (PDX).
- Assessed reactive oxygen species (ROS) levels, lipid peroxidation, NADPH levels, G6PD activity, and mitochondrial membrane potential.
- Conducted in vitro and in vivo studies, including experiments with ROS scavengers and dexamethasone combination therapy in mice.
Main Results:
- Everolimus treatment increased ROS, augmented lipid peroxidation, and activated NRF2, while decreasing NADPH and G6PD levels in T-ALL cells.
- mTOR inhibition led to mitochondrial depolarization and apoptosis in T-ALL cells, sparing normal T-cells.
- The combination of everolimus and dexamethasone demonstrated synergistic killing of T-ALL cells, and everolimus overcame dexamethasone resistance in vivo.
Conclusions:
- mTOR inhibition disrupts redox homeostasis in T-ALL cells, creating a vulnerability to apoptosis.
- The findings support the combination of glucocorticoids with mTOR inhibitors as a promising therapeutic strategy for refractory T-ALL.
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