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.

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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