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Spectrophotometric Screening for Potential Inhibitors of Cytosolic Glutathione S-Transferases
Published on: October 10, 2020
Glutaminase Inhibitors Induce Thiol-Mediated Oxidative Stress and Radiosensitization in Treatment-Resistant Cervical
Ramachandran Rashmi1, Kay Jayachandran1, Jin Zhang1,2
1Department of Radiation Oncology, Washington University School of Medicine, St. Louis, Missouri.
Abstract:
The purpose of this study was to determine if radiation (RT)-resistant cervical cancers are dependent upon glutamine metabolism driven by activation of the PI3K pathway and test whether PI3K pathway mutation predicts radiosensitization by inhibition of glutamine metabolism. Cervical cancer cell lines with and without PI3K pathway mutations, including SiHa and SiHa PTEN-/- cells engineered by CRISPR/Cas9, were used for mechanistic studies performed in vitro in the presence and absence of glutamine starvation and the glutaminase inhibitor, telaglenastat (CB-839). These studies included cell survival, proliferation, quantification of oxidative stress parameters, metabolic tracing with stable isotope-labeled substrates, metabolic rescue, and combination studies with L-buthionine sulfoximine (BSO), auranofin (AUR), and RT. In vivo studies of telaglenastat ± RT were performed using CaSki and SiHa xenografts grown in immune-compromised mice. PI3K-activated cervical cancer cells were selectively sensitive to glutamine deprivation through a mechanism that included thiol-mediated oxidative stress. Telaglenastat treatment decreased total glutathione pools, increased the percent glutathione disulfide, and caused clonogenic cell killing that was reversed by treatment with the thiol antioxidant, N-acetylcysteine. Telaglenastat also sensitized cells to killing by glutathione depletion with BSO, thioredoxin reductase inhibition with AUR, and RT. Glutamine-dependent PI3K-activated cervical cancer xenografts were sensitive to telaglenastat monotherapy, and telaglenastat selectively radiosensitized cervical cancer cells in vitro and in vivo These novel preclinical data support the utility of telaglenastat for glutamine-dependent radioresistant cervical cancers and demonstrate that PI3K pathway mutations may be used as a predictive biomarker for telaglenastat sensitivity.
Insights
Radiation-resistant cervical cancers rely on glutamine metabolism, which can be targeted by telaglenastat. PI3K pathway mutations predict sensitivity to this glutamine metabolism inhibitor, enhancing radiosensitization.
Area of Science:
- Oncology
- Cancer Metabolism
- Molecular Biology
Background:
- Cervical cancers often develop resistance to radiation therapy (RT).
- Glutamine metabolism, regulated by the PI3K pathway, is a potential driver of this radioresistance.
- Targeting glutamine metabolism may offer a novel strategy to overcome RT resistance.
Purpose of the Study:
- To investigate the dependence of RT-resistant cervical cancers on PI3K-activated glutamine metabolism.
- To determine if PI3K pathway mutations predict radiosensitization through glutamine metabolism inhibition.
- To evaluate the efficacy of telaglenastat (a glutaminase inhibitor) in combination with RT.
Main Methods:
- Utilized cervical cancer cell lines (SiHa, SiHa PTEN-/-) with and without PI3K pathway mutations.
- Conducted in vitro studies involving glutamine starvation, telaglenastat treatment, and combination therapies (BSO, AUR, RT).
- Performed in vivo studies using CaSki and SiHa xenografts treated with telaglenastat and/or RT.
Main Results:
- PI3K-activated cervical cancer cells showed selective sensitivity to glutamine deprivation, involving thiol-mediated oxidative stress.
- Telaglenastat treatment reduced glutathione, increased glutathione disulfide, and caused cell death reversed by N-acetylcysteine.
- Telaglenastat sensitized cells to BSO, auranofin, and RT, and demonstrated efficacy in xenograft models.
Conclusions:
- PI3K-activated cervical cancer cells are glutamine-dependent and sensitive to glutamine metabolism inhibition.
- Telaglenastat effectively targets glutamine metabolism, radiosensitizes cervical cancer cells, and shows promise as monotherapy in vivo.
- PI3K pathway mutations can serve as a predictive biomarker for telaglenastat sensitivity in radioresistant cervical cancers.
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