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Identification of Mediators of T-cell Receptor Signaling via the Screening of Chemical Inhibitor Libraries
Published on: January 22, 2019
High-throughput drug screen identifies chelerythrine as a selective inducer of death in a TSC2-null setting
Doug Medvetz1, Yang Sun1, Chenggang Li1
1Division of Pulmonary and Critical Care Medicine, Department of Medicine, Brigham and Women's Hospital and Harvard Medical School, Boston, Massachusetts.
Unlabelled:
Tuberous sclerosis complex (TSC) is an autosomal dominant syndrome associated with tumors of the brain, heart, kidney, and lung. The TSC protein complex inhibits the mammalian or mechanistic target of rapamycin complex 1 (mTORC1). Inhibitors of mTORC1, including rapamycin, induce a cytostatic response in TSC tumors, resulting in temporary disease stabilization and prompt regrowth when treatment is stopped. The lack of TSC-specific cytotoxic therapies represents an important unmet clinical need. Using a high-throughput chemical screen in TSC2-deficient, patient-derived cells, we identified a series of molecules antagonized by rapamycin and therefore selective for cells with mTORC1 hyperactivity. In particular, the cell-permeable alkaloid chelerythrine induced reactive oxygen species (ROS) and depleted glutathione (GSH) selectively in TSC2-null cells based on metabolic profiling. N-acetylcysteine or GSH cotreatment protected TSC2-null cells from chelerythrine's effects, indicating that chelerythrine-induced cell death is ROS dependent. Induction of heme-oxygenase-1 (HMOX1/HO-1) with hemin also blocked chelerythrine-induced cell death. In vivo, chelerythrine inhibited the growth of TSC2-null xenograft tumors with no evidence of systemic toxicity with daily treatment over an extended period of time. This study reports the results of a bioactive compound screen and the identification of a potential lead candidate that acts via a novel oxidative stress-dependent mechanism to selectively induce necroptosis in TSC2-deficient tumors.
Implications:
This study demonstrates that TSC2-deficient tumor cells are hypersensitive to oxidative stress-dependent cell death, and provide critical proof of concept that TSC2-deficient cells can be therapeutically targeted without the use of a rapalog to induce a cell death response.
Insights
Researchers discovered chelerythrine selectively targets Tuberous Sclerosis Complex (TSC) tumors by inducing oxidative stress. This novel approach offers a potential cytotoxic therapy for TSC, bypassing current treatment limitations.
Area of Science:
- Oncology
- Genetics
- Biochemistry
Background:
- Tuberous Sclerosis Complex (TSC) is an autosomal dominant disorder causing tumors in multiple organs.
- Current mTORC1 inhibitors like rapamycin offer cytostatic effects but not a cure, highlighting an unmet need for TSC-specific cytotoxic therapies.
- TSC protein complex dysfunction leads to mTORC1 hyperactivity, a key driver of tumor growth.
Purpose of the Study:
- To identify novel cytotoxic compounds selectively targeting TSC-deficient cells.
- To investigate the mechanism of action for identified compounds.
- To evaluate the therapeutic potential of lead compounds in preclinical models.
Main Methods:
- High-throughput chemical screening of patient-derived TSC2-deficient cells.
- Metabolic profiling to identify compounds selective for mTORC1-hyperactive cells.
- Assessment of reactive oxygen species (ROS) and glutathione (GSH) levels.
- In vivo xenograft studies to evaluate therapeutic efficacy and toxicity.
Main Results:
- Chelerythrine, a cell-permeable alkaloid, was identified as a selective inhibitor.
- Chelerythrine induced ROS and depleted GSH specifically in TSC2-null cells, indicating a ROS-dependent cell death mechanism.
- N-acetylcysteine or GSH cotreatment protected cells, confirming ROS dependency.
- In vivo, chelerythrine inhibited TSC2-null tumor growth without systemic toxicity.
- The compound selectively induces necroptosis in TSC2-deficient tumors.
Conclusions:
- TSC2-deficient tumor cells exhibit hypersensitivity to oxidative stress-induced cell death.
- Chelerythrine represents a potential lead candidate for a novel, cell death-inducing therapy in TSC.
- This study provides proof of concept for targeting TSC2-deficient cells via oxidative stress, independent of rapalogs.

