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Updated: Jan 23, 2026

Working with Human Tissues for Translational Cancer Research
Published on: November 26, 2015
Translating RB1 predictive value in clinical cancer therapy: Are we there yet?
Paola Indovina1, Francesca Pentimalli2, Daniele Conti3
1Sbarro Institute for Cancer Research and Molecular Medicine, Center for Biotechnology, College of Science and Technology, Temple University, Philadelphia, PA 19122, USA.
Abstract:
The retinoblastoma RB1 gene has been identified in the 80s as the first tumor suppressor. RB1 loss of function, as well alterations in its pathway, occur in most human cancers and often have prognostic value. RB1 has a key role in restraining cell cycle entry and, along with its family members, regulates a myriad of cellular processes and affects cell response to a variety of stimuli, ultimately determining cell fate. Consistently, RB1 status is a crucial determinant of the cell response to antitumoral therapies, impacting on the outcome of both traditional and modern anti-cancer strategies, including precision medicine approaches, such as kinase inhibitors, and immunotherapy. Despite many efforts however, the predictive value of RB1 status in the clinical practice is still underused, mainly owing to the complexity of RB1 function, to differences depending on the cellular context and on the therapeutic strategies, and, not-lastly, to technical issues. Here, we provide an overview of studies analyzing the role of RB1 in response to conventional cytotoxic and cytostatic therapeutic agents in different cancer types, including hormone dependent ones. We also review RB1 predictive value in the response to the last generation CDK4/6 inhibitors, other kinase inhibitors, and immunotherapy and discuss new emerging non-canonical roles of RB1 that could impact on the response to antitumoral treatments.
Insights
The retinoblastoma (RB1) gene, a key tumor suppressor, influences cancer cell response to therapies. Understanding RB1
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- The retinoblastoma (RB1) gene, identified as the first tumor suppressor, plays a critical role in cell cycle regulation.
- RB1 loss-of-function and pathway alterations are prevalent in human cancers, often correlating with prognosis.
- RB1 status significantly impacts cellular responses to various stimuli and therapeutic interventions.
Purpose of the Study:
- To provide an overview of RB1's role in response to diverse anti-cancer therapies.
- To review the predictive value of RB1 status in clinical practice.
- To discuss emerging non-canonical RB1 functions influencing treatment outcomes.
Main Methods:
- Literature review of studies on RB1 and therapeutic responses.
- Analysis of RB1's role in conventional cytotoxic/cytostatic treatments.
- Review of RB1's predictive value in response to targeted therapies (e.g., CDK4/6 inhibitors, kinase inhibitors) and immunotherapy.
Main Results:
- RB1 status is a crucial determinant of cell response to both traditional and modern anti-cancer strategies.
- The predictive value of RB1 is underutilized due to functional complexity, context-dependency, and technical challenges.
- RB1 influences outcomes across various cancer types, including hormone-dependent cancers.
Conclusions:
- RB1's complex role necessitates further investigation for optimal clinical application.
- Understanding RB1's canonical and non-canonical functions is vital for predicting and improving anti-cancer treatment efficacy.
- Integrating RB1 status into clinical decision-making holds potential for personalized cancer therapy.
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