Related Experiment Video
Updated: Jun 28, 2026

Studying Cell Cycle-regulated Gene Expression by Two Complementary Cell Synchronization Protocols
Published on: June 6, 2017
Gene expression profiling analysis reveals arsenic-induced cell cycle arrest and apoptosis in p53-proficient and
Xiaozhong Yu1, Joshua F Robinson, Elizabeth Gribble
1Institute for Risk Analysis and Risk Communication, Department of Environmental and Occupational Health Sciences, University of Washington, Seattle, WA 98105, USA. yuxz@u.washington.edu
Abstract:
Arsenic (As) is a well-known environmental toxicant and carcinogen as well as an effective chemotherapeutic agent. The underlying mechanism of this dual capability, however, is not fully understood. Tumor suppressor gene p53, a pivotal cell cycle checkpoint signaling protein, has been hypothesized to play a possible role in mediating As-induced toxicity and therapeutic efficiency. In this study, we found that arsenite (As(3+)) induced apoptosis and cell cycle arrest in a dose-dependent manner in both p53(+/+) and p53(-/-) mouse embryonic fibroblasts (MEFs). There was, however, a distinction between genotypes in the apoptotic response, with a more prominent induction of caspase-3 in the p53(-/-) cells than in the p53(+/+) cells. To examine this difference further, a systems-based genomic analysis was conducted comparing the critical molecular mechanisms between the p53 genotypes in response to As(3+). A significant alteration in the Nrf2-mediated oxidative stress response pathway was found in both genotypes. In p53(+/+) MEFs, As(3+) induced p53-dependent gene expression alterations in DNA damage and cell cycle regulation genes. However, in the p53(-/-) MEFs, As(3+) induced a significant up-regulation of pro-apoptotic genes (Noxa) and down-regulation of genes in immune modulation. Our findings demonstrate that As-induced cell death occurs through a p53-independent pathway in p53 deficient cells while apoptosis induction occurs through p53-dependent pathway in normal tissue. This difference in the mechanism of apoptotic responses between the genotypes provides important information regarding the apparent dichotomy of arsenic's dual mechanisms, and potentially leads to further advancement of its utility as a chemotherapeutic agent.
Insights
Arsenic (As) induces cell death through p53-dependent and independent pathways. This study reveals distinct molecular mechanisms in p53-deficient versus normal cells, advancing arsenic
Area of Science:
- Toxicology
- Molecular Biology
- Cancer Research
Background:
- Arsenic (As) exhibits dual roles as a toxicant and chemotherapeutic agent, with mechanisms not fully elucidated.
- The tumor suppressor gene p53 is a key regulator of cellular responses to stress and DNA damage.
Purpose of the Study:
- To investigate the role of p53 in mediating arsenic trioxide (As(3+))-induced apoptosis and cell cycle arrest.
- To compare the molecular mechanisms of As(3+) toxicity in p53 wild-type (p53(+/+)) and p53-deficient (p53(-/-)) cells.
Main Methods:
- Dose-dependent treatment of mouse embryonic fibroblasts (MEFs) with arsenite (As(3+)).
- Analysis of apoptosis (caspase-3 induction) and cell cycle arrest.
- Systems-based genomic analysis to compare gene expression profiles between p53(+/+) and p53(-/-) MEFs.
Main Results:
- As(3+) induced apoptosis and cell cycle arrest in both p53(+/+) and p53(-/-) MEFs.
- p53(-/-) MEFs showed more prominent caspase-3 induction compared to p53(+/+) MEFs.
- Genomic analysis revealed significant alterations in the Nrf2-mediated oxidative stress response pathway in both genotypes.
- p53(+/+) MEFs exhibited p53-dependent alterations in DNA damage and cell cycle genes, while p53(-/-) MEFs showed up-regulation of pro-apoptotic genes (Noxa) and down-regulation of immune modulation genes.
Conclusions:
- Arsenic-induced cell death can occur via p53-independent pathways in p53-deficient cells.
- Apoptosis induction by arsenic occurs through a p53-dependent pathway in normal cells.
- These findings clarify the dichotomy of arsenic's dual mechanisms and may inform its therapeutic applications.
Related Concept Videos
Abnormal Proliferation
DNA Damage can Stall the Cell Cycle
DNA Damage Can Stall the Cell Cycle
Interactions Between Signaling Pathways
Convergence and divergence, and cross-talk between signaling pathways
Two distinct signaling pathways can converge on a single functional unit, which may either be a single protein or a complex of proteins. The response is either functionally distinct or synergistic between the two pathways but different from the response...
Negative Regulator Molecules
Inhibition of Cdk Activity

