MYC-Dependent rRNA Catabolism Stress Dictates Survival Heterogeneity of Hepatocellular Carcinoma Cells Under Glutamine Deprivation

Abstract Tumor cells commonly exhibit a preferential uptake of glutamine to support the heightened metabolic demands. However, the therapeutic potential of targeting glutamine metabolism is severely limited by the heterogeneous responses of cancer cells to glutamine deprivation. In this study, we identified a ribophagy-adenosine-MYC positive feedback loop that was activated and determined cell fate under glutamine deprivation. In sensitive cells, highly expressed MYC acted as a scaffold to recruit Unc-51 like autophagy activating kinase 1, which phosphorylated ribosomal protein L12 to initiate ribophagy. This process drove extensive rRNA catabolism and a burst of reactive oxygen species, ultimately leading to cell death. Moreover, adenosine generated during this cascade enhanced MYC expression via its 3'-UTR region, locking the loop into a self-reinforcing hyperactivated state. In contrast, tolerant cells exhibited lower MYC expression, which constrained the loop to a low-activity and subcritical steady state, thereby enabling survival under glutamine deprivation. Consequently, MYC-high tumors were vulnerable to glutaminase inhibition alone (CB-839), while MYC-low tumors required combination therapy with CB-839 and a pro-oxidant (elesclomol) to achieve tumor eradication. This study establishes MYC expression as a key determinant of sensitivity to glutamine deprivation, reveals the central role of ribophagy within the glutamine deprivation-triggered positive feedback loop, and uncovers a non-canonical, scaffold-like function of MYC in rRNA catabolism. These findings highlight a potential combination strategy to overcome a major bottleneck in targeting glutamine metabolism.

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Publication Details

Journal
Cancer Research
Published
2026-09-29
DOI
https://doi.org/10.1158/0008-5472.can-26-0575
Primary Topic
Cancer, Hypoxia, and Metabolism
Type
article
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article

MYC-Dependent rRNA Catabolism Stress Dictates Survival Heterogeneity of Hepatocellular Carcinoma Cells Under Glutamine Deprivation

Jinliang Xing, Zeyu Yan, Xianli He, Jibin Li et al.
Cancer Research
Cancer, Hypoxia, and Metabolism
article

MYC-Dependent rRNA Catabolism Stress Dictates Survival Heterogeneity of Hepatocellular Carcinoma Cells Under Glutamine Deprivation

Jinliang Xing, Zeyu Yan, Xianli He, Jibin Li, Yu Li, Tingting Ren, Caiyu Shi, Guoqing Qi, Dan Wu, Mengmeng Feng, Jingyun Wu, Xinwei Liu, Gang Wang
article en

Abstract

Abstract Tumor cells commonly exhibit a preferential uptake of glutamine to support the heightened metabolic demands. However, the therapeutic potential of targeting glutamine metabolism is severely limited by the heterogeneous responses of cancer cells to glutamine deprivation. In this study, we identified a ribophagy-adenosine-MYC positive feedback loop that was activated and determined cell fate under glutamine deprivation. In sensitive cells, highly expressed MYC acted as a scaffold to recruit Unc-51 like autophagy activating kinase 1, which phosphorylated ribosomal protein L12 to initiate ribophagy. This process drove extensive rRNA catabolism and a burst of reactive oxygen species, ultimately leading to cell death. Moreover, adenosine generated during this cascade enhanced MYC expression via its 3'-UTR region, locking the loop into a self-reinforcing hyperactivated state. In contrast, tolerant cells exhibited lower MYC expression, which constrained the loop to a low-activity and subcritical steady state, thereby enabling survival under glutamine deprivation. Consequently, MYC-high tumors were vulnerable to glutaminase inhibition alone (CB-839), while MYC-low tumors required combination therapy with CB-839 and a pro-oxidant (elesclomol) to achieve tumor eradication. This study establishes MYC expression as a key determinant of sensitivity to glutamine deprivation, reveals the central role of ribophagy within the glutamine deprivation-triggered positive feedback loop, and uncovers a non-canonical, scaffold-like function of MYC in rRNA catabolism. These findings highlight a potential combination strategy to overcome a major bottleneck in targeting glutamine metabolism.

Cancer Research
Northwest University (CN), United States Air Force (US), Yan'an University (CN), Air Force Engineering University (CN), Xi'an Medical University (CN), Air Force Medical University (CN)
Openalex Percentile: Top 15%
Cancer, Hypoxia, and Metabolism
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