LARP1 integrates MYC and mTOR signaling to enable anabolic growth during tumor initiation
Fuentes, P.; Iannizzotto, F.; Battaglia, E.; Balzamo, C.; Tola, C.; Forcada, B.; Bosch-i-Crespo, P.; Frank, B. E.; Moron-Duran, F. D.; Martinez- Herraez, C.; Tauler, A.; Santos, C.; Salazar, R.; Gentilella, A.
Show abstract
Tumor initiation requires the integration of oncogenic signals with environmental cues to enable anabolic growth. Among oncogenic drivers, MYC is central to tumorigenesis, with its deregulation observed in more than 60% of human cancers. Oncogenic MYC profoundly rewires transcription, enabling cells to bypass cell cycle checkpoints and resetting metabolism. A cornerstone of this rewiring is the up regulation of biomass-producing pathways, particularly ribosome biogenesis. How and when MYC oncogenic program is translationally executed, either immediately or until a favorable metabolic context emerges, remains a central unanswered question in tumor initiation, limiting our understanding of tumor latency and early intervention windows. Here, we identify the RNA-binding protein LARP1 as a critical effector of MYC-driven transformation, connecting MYC oncogenic activity with mTOR signaling. Mechanistically MYC represses miR-26a/b, relieving post-transcriptional repression of LARP1 and leading to its up regulation. LARP1 associates with the translational machinery loading it with the anabolic translatome induced by MYC in a translationally poised state. Upon permissive mTOR signaling, and dependent on the phosphorylation of LARP1 at serines 689 and 697, this program is rapidly translated, fueling the biosynthetic processes essential for tumor development. Importantly, genetic deletion of LARP1 or pharmacological mTOR inhibition completely abrogates tumor initiation in a genetically engineered colorectal organoid model of MYC-driven tumorigenesis, underscoring the physiological relevance of this two-step mechanism. These findings reveal a fundamental mechanism underlying MYC oncogenesis, whereby LARP1 bridges the anabolic translatome primed by MYC with its metabolic execution controlled by mTOR. By temporally uncoupling transformation from metabolic permissiveness, this mechanism defines a critical checkpoint in early tumorigenesis and reveals a potential vulnerability for intercepting MYC-driven cancer before biomass expansion.
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