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April 20, 2026Molecular Cell4 citationsOpen Access

mTORC1 activity suppresses ferroptosis through a SCARB1-dependent HDL-tocopherol uptake pathway

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TOThomas O’loughlinJSJohn S. StilesPAPritika Acharya

Key Points

  • This research aims to understand how mTORC1 activity influences ferroptosis and explore potential treatment combinations for cancer.
  • Performed genome-scale CRISPR interference chemogenomics screens to assess mTOR inhibitor effects.
  • Conducted CRISPR activation chemogenomics screens to explore gene regulation related to ferroptosis.
  • Investigated mechanisms of HDL interaction with SCARB1 and its impact on lipid uptake.
  • mTORC1 inhibitor use creates dependency on GPX4 for cell survival.
  • Regulation of ferroptosis by mTORC1 happens through SCARB1 expression.
  • HDL suppresses ferroptosis by delivering vitamin E via SCARB1, highlighting a potential treatment pathway.

Abstract

Aberrant activation of the PI3K/AKT/mTOR signaling pathway is a common feature of cancer, but while mTOR kinase represents an attractive drug target, mTOR inhibitors have not seen broad success as single agents. To identify strategies to enhance the utility of third-generation bi-steric mTORC1 inhibitors, we performed genome-scale CRISPR interference chemogenomics screens, which revealed that mTORC1 inhibitor-mediated cytostasis leaves cells exquisitely dependent on the lipid peroxide scavenging enzyme GPX4. Mechanistically, using unbiased CRISPR activation chemogenomics screens, we demonstrate that mTORC1-dependent control of ferroptosis occurs, in part, through regulation of SCARB1 expression. Specifically, we find that the high-density lipoprotein (HDL) can suppress ferroptosis through interaction with its receptor SCARB1 and delivery of vitamin E to target cells. Our work highlights combining mTORC1 with GPX4 inhibition as one of the most promising combinatorial approaches for mTOR-targeted cancer therapies and defines an HDL-SCARB1 ferroptosis-suppression system that is regulated by mTORC1 activity.

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Cite This Study

O’loughlin et al. (2026) studied this question.

synapsesocial.com/papers/69e5c1c203c2939914028674https://doi.org/10.1016/j.molcel.2026.03.019
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