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Updated: May 3, 2026

Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
p53 suppresses carcinoma progression by inhibiting mTOR pathway activation
N Akeno1, A L Miller1, X Ma1
1Pathology and Laboratory Medicine, Cincinnati Children's Hospital Medical Center, Cincinnati, OH, USA.
Abstract:
Genetic alterations in human cancers and murine models indicate that retinoblastoma (Rb) and p53 have critical tumor suppressive functions in retinoblastoma, a tumor of neural origin, and neuroendocrine tumors including small cell lung cancer and medullary thyroid cancer (MTC). Rb inactivation is the initiating lesion in retinoblastoma and current models propose that induction of apoptosis is a key p53 tumor suppressive function. Genetic studies in mice, however, indicate that other undefined p53 tumor suppressive functions are operative in vivo. How p53 loss cooperates with Rb inactivation to promote carcinogenesis is also not fully understood. In the current study, genetically engineered mice were generated to determine the role of Rb and p53 in MTC pathogenesis and test the hypothesis that p53 suppresses carcinogenesis by inhibiting mammalian target of rapamycin (mTOR) signaling. Conditional Rb ablation resulted in thyroid tumors mimicking human MTC, and additional p53 loss led to rapid tumor progression. p53 suppressed tumorigenesis by inhibiting cell cycle progression, but did not induce apoptosis. On the contrary, p53 loss led to increased apoptosis that had to be overcome for tumor progression. The mTOR activity was markedly increased in p53-deficient tumors and rapamycin treatment suppressed tumor cell growth, identifying mTOR inhibition as a critical p53 tumor suppressive function. Rapamycin treatment did not result in AKT/mitogen-activated protein kinase activation, providing evidence that this feedback mechanism operative in other cancers is not a general response to mTORC1 inhibition. Together, these studies provide mechanistic links between genetic alterations and aberrant signaling pathways critical in carcinogenesis, and identify essential Rb and p53 tumor suppressive functions in vivo.
Insights
Retinoblastoma (Rb) and p53 suppress tumors. In medullary thyroid cancer, p53 inhibits mTOR signaling, revealing a novel tumor suppressive function beyond apoptosis.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Retinoblastoma (Rb) and p53 are critical tumor suppressors in neural and neuroendocrine tumors.
- Rb inactivation initiates retinoblastoma; p53's role is partly defined by apoptosis induction.
- The interplay between Rb inactivation and p53 loss in carcinogenesis requires further elucidation.
Purpose of the Study:
- To investigate the roles of Rb and p53 in medullary thyroid cancer (MTC) pathogenesis.
- To test the hypothesis that p53 suppresses carcinogenesis by inhibiting mammalian target of rapamycin (mTOR) signaling.
Main Methods:
- Generation of genetically engineered mouse models with conditional Rb ablation and p53 loss.
- Analysis of tumor development, cell cycle progression, apoptosis, and mTOR signaling.
- Treatment with rapamycin to assess its effect on tumor growth.
Main Results:
- Conditional Rb ablation induced MTC-like thyroid tumors; subsequent p53 loss accelerated progression.
- p53 inhibited tumorigenesis via cell cycle arrest, not apoptosis induction.
- p53 loss increased apoptosis, which tumors overcame for progression.
- mTOR activity was elevated in p53-deficient tumors; rapamycin suppressed tumor growth, indicating mTOR inhibition as a key p53 function.
- Rapamycin treatment did not trigger AKT/MAPK activation, suggesting this feedback is not universal for mTORC1 inhibition.
Conclusions:
- p53 suppresses MTC by inhibiting mTOR signaling, a critical tumor suppressive function.
- Rb and p53 play essential, distinct roles in MTC pathogenesis.
- Mechanistic links between genetic alterations and signaling pathways in carcinogenesis are established.
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