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Published on: January 7, 2019
Differential impact of tumor suppressor pathways on DNA damage response and therapy-induced transformation in a mouse
A Kathleen McClendon1, Jeffry L Dean, Adam Ertel
1Kimmel Cancer Center, Department of Cancer Biology, Thomas Jefferson University, Philadelphia, Pennsylvania, United States of America.
Abstract:
The RB and p53 tumor suppressors are mediators of DNA damage response, and compound inactivation of RB and p53 is a common occurrence in human cancers. Surprisingly, their cooperation in DNA damage signaling in relation to tumorigenesis and therapeutic response remains enigmatic. In the context of individuals with heritable retinoblastoma, there is a predilection for secondary tumor development, which has been associated with the use of radiation-therapy to treat the primary tumor. Furthermore, while germline mutations of the p53 gene are critical drivers for cancer predisposition syndromes, it is postulated that extrinsic stresses play a major role in promoting varying tumor spectrums and disease severities. In light of these studies, we examined the tumor suppressor functions of these proteins when challenged by exposure to therapeutic stress. To examine the cooperation of RB and p53 in tumorigenesis, and in response to therapy-induced DNA damage, a combination of genetic deletion and dominant negative strategies was employed. Results indicate that loss/inactivation of RB and p53 is not sufficient for cellular transformation. However, these proteins played distinct roles in response to therapy-induced DNA damage and subsequent tumorigenesis. Specifically, RB status was critical for cellular response to damage and senescence, irrespective of p53 function. Loss of RB resulted in a dramatic evolution of gene expression as a result of alterations in epigenetic programming. Critically, the observed changes in gene expression have been specifically associated with tumorigenesis, and RB-deficient, recurred cells displayed oncogenic characteristics, as well as increased resistance to subsequent challenge with discrete therapeutic agents. Taken together, these findings indicate that tumor suppressor functions of RB and p53 are particularly manifest when challenged by cellular stress. In the face of such challenge, RB is a critical suppressor of tumorigenesis beyond p53, and RB-deficiency could promote significant cellular evolution, ultimately contributing to a more aggressive disease.
Insights
The RB and p53 tumor suppressors are crucial for DNA damage response. Loss of RB, not just p53, significantly impacts tumorigenesis and therapeutic resistance, driving aggressive cancer evolution.
Area of Science:
- Molecular Biology
- Cancer Biology
- Genetics
Background:
- RB and p53 are key tumor suppressors involved in DNA damage response.
- Their combined inactivation is frequent in human cancers, but their cooperative roles are not fully understood.
- Therapeutic stress, like radiation, can influence secondary tumor development and cancer predisposition syndromes.
Purpose of the Study:
- To investigate the cooperative tumor suppressor functions of RB and p53 under therapeutic stress.
- To elucidate their distinct roles in DNA damage signaling, tumorigenesis, and response to therapy.
- To understand how RB and p53 inactivation influences cellular evolution and oncogenic characteristics.
Main Methods:
- Utilized genetic deletion and dominant-negative strategies to examine RB and p53 cooperation.
- Assessed cellular transformation, response to therapy-induced DNA damage, and tumorigenesis.
- Analyzed gene expression changes and epigenetic programming alterations in RB-deficient cells.
Main Results:
- Loss of RB and p53 alone is insufficient for cellular transformation.
- RB status is critical for cellular response to DNA damage and senescence, independent of p53.
- RB deficiency leads to significant gene expression evolution, epigenetic alterations, and oncogenic characteristics, conferring therapeutic resistance.
Conclusions:
- Tumor suppressor functions of RB and p53 are most evident under cellular stress.
- RB acts as a critical suppressor of tumorigenesis beyond p53.
- RB deficiency promotes cellular evolution, potentially leading to more aggressive and treatment-resistant cancers.
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