Impact of roscovitine, a selective CDK inhibitor, on cancer cells: bi-functionality increases its therapeutic

Józefa Wesierska-Gadek1, Andreea Borza, Oxana Komina

  • 1Cell Cycle Regulation Group, Department of Medicine I, Division: Institute of Cancer Research, Medical University of Vienna, Borschkegasse 8a, Vienna, Austria. Jozefa.Gadek-Wesierski@meduniwien.ac.at

Acta Biochimica Polonica
|September 3, 2009
PubMed

Insights

Roscovitine (ROSC), a cyclin-dependent kinase (CDK) inhibitor, halts cancer cell proliferation by inducing cell cycle arrest or apoptosis. Its effects vary based on cell type, cell cycle stage, and ROSC concentration, offering therapeutic potential.

Area of Science:

  • Oncology
  • Molecular Biology
  • Cell Biology

Background:

  • Malignant transformation involves uncontrolled cell proliferation due to dysregulated cell cycle progression and inactivated CDK inhibitors.
  • Targeting cyclin-dependent kinases (CDKs) is a rational therapeutic strategy for cancers exhibiting growth factor independence.

Purpose of the Study:

  • To investigate the effects of roscovitine (ROSC), a selective CDK inhibitor, on the proliferation of human breast (MCF-7) and cervix (HeLa) cancer cells.
  • To elucidate the mechanisms of cell cycle arrest and apoptosis induced by ROSC in different cancer cell types.

Main Methods:

  • Treatment of MCF-7 and HeLa cancer cells with varying concentrations of roscovitine.
  • Analysis of cell cycle status (G1, G2/M arrest) and induction of apoptosis.
  • Investigation of specific molecular pathways involved in ROSC-induced apoptosis, including caspase-dependent and p53-dependent pathways.

Main Results:

  • ROSC inhibits proliferation in both cell lines, inducing cell cycle arrest or apoptosis depending on cell type, cell cycle phase, and drug concentration.
  • Lower ROSC doses cause cell cycle arrest, notably at the G2/M transition in asynchronously growing cells, and transient G1 arrest in synchronized cells with intact G1/S checkpoints.
  • Higher ROSC doses trigger apoptosis; in HeLa cells via CDK7/RNA polymerase II inhibition and caspase activation, and in MCF-7 cells via a p53-dependent pathway involving HIPK2 and p53AIP1.

Conclusions:

  • Roscovitine effectively inhibits cancer cell proliferation through cell cycle arrest and apoptosis, with distinct mechanisms in different cancer types.
  • The efficacy and mechanism of ROSC are influenced by intrinsic cellular characteristics and drug concentration, highlighting its potential as a targeted cancer therapy.

Related Concept Videos

Inhibition of Cdk Activity02:34

Inhibition of Cdk Activity

The orderly progression of the cell cycle depends on the activation of Cdk protein by binding to its cyclin partner. However, the cell cycle must be restricted when undergoing abnormal changes. Most cancers correlate to the deregulated cell cycle, and since Cdks are a central component of the cell cycle, Cdk inhibitors are extensively studied to develop anticancer agents. For instance, cyclin D associates with several Cdks, such as Cdk 4/6, to form an active complex. The cyclin D-Cdk4/6 complex...
Inhibition of CDK Activity02:34

Inhibition of CDK Activity

The orderly progression of the cell cycle depends on the activation of Cdk protein by binding to its cyclin partner. However, the cell cycle must be restricted when undergoing abnormal changes. Most cancers correlate to the deregulated cell cycle, and since Cdks are a central component of the cell cycle, Cdk inhibitors are extensively studied to develop anticancer agents. For instance, cyclin D associates with several Cdks, such as Cdk 4/6, to form an active complex. The cyclin D-Cdk4/6 complex...
Targeted Cancer Therapies02:57

Targeted Cancer Therapies

The targeted cancer therapies, also known as “molecular targeted therapies,” take advantage of the molecular and genetic differences between the cancer cells and the normal cells. It needs a thorough understanding of the cancer cells to develop drugs that can target specific molecular aspects that drive the growth, progression, and spread of cancer cells without affecting the growth and survival of other normal cells in the body.
There are several types of targeted therapies against specific...
Targeted Cancer Therapies02:57

Targeted Cancer Therapies

The targeted cancer therapies, also known as “molecular targeted therapies,” take advantage of the molecular and genetic differences between the cancer cells and the normal cells. It needs a thorough understanding of the cancer cells to develop drugs that can target specific molecular aspects that drive the growth, progression, and spread of cancer cells without affecting the growth and survival of other normal cells in the body.
There are several types of targeted therapies against specific...
M-Cdk Drives Transition Into Mitosis02:15

M-Cdk Drives Transition Into Mitosis

Checkpoints throughout the cell cycle serve as safeguards and gatekeepers, allowing the cell cycle to progress in favorable conditions and slow or halt it in problematic ones. This regulation is known as the cell cycle control system.
Cyclin-dependent kinases, or Cdks, work in concert with cyclins to control cell cycle transitions. M-Cdk, a complex of Cdk1 bound to M cyclin, is a well-known example of this coordinated control that drives the transition from the G2 to the M phase.
M cyclin...
Combination Therapies and Personalized Medicine02:50

Combination Therapies and Personalized Medicine

Combining two or more treatment methods increases the life span of cancer patients while reducing damage to vital organs or tissue from the overuse of a single treatment. Combination therapy also targets different cancer-inducing pathways, thus reducing the chances of developing resistance to treatment.
The combination of the drug acetazolamide and sulforaphane is a good example of combination therapy to treat cancer. The cells in the interior of a large tumor often die due to the hypoxic and...