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Updated: Feb 11, 2026

Studying Cell Cycle-regulated Gene Expression by Two Complementary Cell Synchronization Protocols
Published on: June 6, 2017
Global Effects of DDX3 Inhibition on Cell Cycle Regulation Identified by a Combined Phosphoproteomics and Single Cell
Marise R Heerma van Voss1, Kai Kammers2, Farhad Vesuna3
1Department of Radiology and Radiological Sciences, Johns Hopkins University, School of Medicine, Baltimore, MD, USA; Department of Pathology, University Medical Center Utrecht, Utrecht, The Netherlands.
Abstract:
DDX3 is an RNA helicase with oncogenic properties. The small molecule inhibitor RK-33 is designed to fit into the ATP binding cleft of DDX3 and hereby block its activity. RK-33 has shown potent activity in preclinical cancer models. However, the mechanism behind the antineoplastic activity of RK-33 remains largely unknown. In this study we used a dual phosphoproteomic and single cell tracking approach to evaluate the effect of RK-33 on cancer cells. MDA-MB-435 cells were treated for 24 hours with RK-33 or vehicle control. Changes in phosphopeptide abundance were analyzed with quantitative mass spectrometry using isobaric mass tags (Tandem Mass Tags). At the proteome level we mainly observed changes in mitochondrial translation, cell division pathways and proteins related to cell cycle progression. Analysis of the phosphoproteome indicated decreased CDK1 activity after RK-33 treatment. To further evaluate the effect of DDX3 inhibition on cell cycle progression over time, we performed timelapse microscopy of Fluorescent Ubiquitin Cell Cycle Indicators labeled cells after RK-33 or siDDX3 exposure. Single cell tracking indicated that DDX3 inhibition resulted in a global delay in cell cycle progression in interphase and mitosis. In addition, we observed an increase in endoreduplication. Overall, we conclude that DDX3 inhibition affects cells in all phases and causes a global cell cycle progression delay.
Insights
The small molecule RK-33 inhibits DDX3, an RNA helicase, delaying cancer cell cycle progression and potentially impacting mitochondrial translation and cell division pathways.
Area of Science:
- Molecular Biology
- Oncology
- Biochemistry
Background:
- DDX3 is an RNA helicase implicated in cancer development.
- RK-33 is a small molecule inhibitor targeting DDX3's ATP binding site.
- The precise antineoplastic mechanism of RK-33 is not fully understood.
Purpose of the Study:
- To investigate the cellular effects of RK-33 on cancer cells.
- To elucidate the mechanism of RK-33's anti-cancer activity.
- To evaluate the impact of DDX3 inhibition on cell cycle progression.
Main Methods:
- Quantitative mass spectrometry (Tandem Mass Tags) for phosphoproteomic analysis.
- Timelapse microscopy with Fluorescent Ubiquitin Cell Cycle Indicators for single cell tracking.
- Treatment of MDA-MB-435 cells with RK-33 or siDDX3.
Main Results:
- RK-33 treatment altered proteins involved in mitochondrial translation, cell division, and cell cycle progression.
- Phosphoproteomic analysis revealed decreased CDK1 activity post-RK-33 treatment.
- Single cell tracking demonstrated a global delay in cell cycle progression (interphase and mitosis) and increased endoreduplication upon DDX3 inhibition.
Conclusions:
- DDX3 inhibition by RK-33 broadly affects cancer cells across all cell cycle phases.
- RK-33 induces a significant delay in cell cycle progression.
- The findings provide mechanistic insights into RK-33's antineoplastic effects.
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