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Proliferative suppression by CDK4/6 inhibition: complex function of the retinoblastoma pathway in liver tissue and
Dayana B Rivadeneira1, Christopher N Mayhew, Chellappagounder Thangavel
1Kimmel Cancer Center, Thomas Jefferson University, Philadelphia, Pennsylvania, USA.
Background & Aims:
Hepatocellular carcinoma is the third leading cause of cancer mortality worldwide; current chemotherapeutic interventions for this disease are largely ineffective. The retinoblastoma tumor suppressor (RB) is functionally inactivated at relatively high frequency in hepatocellular carcinoma and hepatoma cell lines. Here, we analyzed the ability of CDK4/6 inhibition to inhibit hepatocyte proliferation and the effect of RB status on this process.
Methods:
Hepatoma cell lines and xenograft models harboring RB knockdown and mice harboring liver-specific Rb deletion were used to define the role of RB function in response to CDK4/6 inhibition.
Results:
Our study shows that CDK4/6-dependent cell cycle progression in hepatoma cells was readily arrested by inhibition of CDK4/6 by PD-0332991 or p16ink4a irrespective of RB status. Interestingly, upon CDK4/6 inhibition, p107 protein stability was dramatically increased as a function of RB loss. This engagement of compensatory mechanisms was critical for cell cycle inhibition in the absence of RB, because both the E1A oncoprotein and overexpression of E2F proteins were capable of overcoming the effect of CDK4/6 inhibition. These findings were recapitulated in xenograft models. Furthermore, to determine how these findings relate to hepatocyte proliferation in vivo, mice were exposed to carbon tetrachloride to induce liver regeneration followed by treatment with PD-0332991. This treatment significantly inhibited hepatocyte proliferation. Strikingly, this facet of PD-0332991 function was retained even in RB-deficient livers.
Conclusions:
These data show that CDK4/6 inhibition is a potent mediator of cytostasis and that RB loss can be readily compensated for in the context of both hepatoma cell lines and liver tissue.
Insights
CDK4/6 inhibition effectively halts hepatoma cell proliferation, even when the retinoblastoma tumor suppressor (RB) is lost. Compensatory mechanisms ensure cell cycle arrest, demonstrating CDK4/6 inhibitors
Area of Science:
- Oncology
- Cell Biology
- Molecular Biology
Background:
- Hepatocellular carcinoma (HCC) is a leading cause of cancer mortality with limited effective treatments.
- The retinoblastoma tumor suppressor (RB) protein is frequently inactivated in HCC.
- Understanding cell cycle regulation in HCC is crucial for developing new therapies.
Purpose of the Study:
- To investigate the efficacy of CDK4/6 inhibition in controlling hepatocyte proliferation.
- To determine the impact of retinoblastoma tumor suppressor (RB) status on CDK4/6 inhibitor response.
Main Methods:
- Utilized hepatoma cell lines with RB knockdown and liver-specific Rb-deleted mouse models.
- Administered CDK4/6 inhibitors (PD-0332991) and p16ink4a.
- Induced liver regeneration in mice using carbon tetrachloride followed by PD-0332991 treatment.
Main Results:
- CDK4/6 inhibition effectively arrested cell cycle progression in hepatoma cells, regardless of RB status.
- RB loss led to increased p107 stability, a compensatory mechanism for cell cycle inhibition.
- E1A oncoprotein and E2F overexpression could overcome CDK4/6 inhibition.
- PD-0332991 significantly inhibited hepatocyte proliferation in vivo, even in RB-deficient livers.
Conclusions:
- CDK4/6 inhibition is a potent strategy for inducing cytostasis in liver cancer.
- RB loss in hepatocellular carcinoma can be compensated for by other mechanisms, maintaining sensitivity to CDK4/6 inhibitors.
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