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Updated: May 31, 2026

Production and Detection of Reactive Oxygen Species (ROS) in Cancers
Published on: November 21, 2011
Selective killing of cancer cells by a small molecule targeting the stress response to ROS
Lakshmi Raj1, Takao Ide, Aditi U Gurkar
1Cutaneous Biology Research Center, Massachusetts General Hospital and Harvard Medical School, Building 149 13th Street, Charlestown, Massachusetts 02129, USA.
Abstract:
Malignant transformation, driven by gain-of-function mutations in oncogenes and loss-of-function mutations in tumour suppressor genes, results in cell deregulation that is frequently associated with enhanced cellular stress (for example, oxidative, replicative, metabolic and proteotoxic stress, and DNA damage). Adaptation to this stress phenotype is required for cancer cells to survive, and consequently cancer cells may become dependent upon non-oncogenes that do not ordinarily perform such a vital function in normal cells. Thus, targeting these non-oncogene dependencies in the context of a transformed genotype may result in a synthetic lethal interaction and the selective death of cancer cells. Here we used a cell-based small-molecule screening and quantitative proteomics approach that resulted in the unbiased identification of a small molecule that selectively kills cancer cells but not normal cells. Piperlongumine increases the level of reactive oxygen species (ROS) and apoptotic cell death in both cancer cells and normal cells engineered to have a cancer genotype, irrespective of p53 status, but it has little effect on either rapidly or slowly dividing primary normal cells. Significant antitumour effects are observed in piperlongumine-treated mouse xenograft tumour models, with no apparent toxicity in normal mice. Moreover, piperlongumine potently inhibits the growth of spontaneously formed malignant breast tumours and their associated metastases in mice. Our results demonstrate the ability of a small molecule to induce apoptosis selectively in cells that have a cancer genotype, by targeting a non-oncogene co-dependency acquired through the expression of the cancer genotype in response to transformation-induced oxidative stress.
Insights
Piperlongumine selectively kills cancer cells by targeting non-oncogene dependencies acquired during malignant transformation. This small molecule induces cancer cell death via increased reactive oxygen species (ROS), showing promise for cancer therapy.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Cancer cells exhibit deregulation and enhanced stress (oxidative, replicative, metabolic, proteotoxic, DNA damage) due to oncogene activation and tumor suppressor gene inactivation.
- Cancer cells develop dependencies on non-oncogenes for survival, presenting potential therapeutic targets.
- Targeting these non-oncogene dependencies can lead to synthetic lethality and selective cancer cell death.
Purpose of the Study:
- To identify small molecules that selectively kill cancer cells by exploiting non-oncogene dependencies.
- To investigate the mechanism of action and therapeutic potential of identified compounds.
Main Methods:
- Cell-based small-molecule screening.
- Quantitative proteomics.
- In vitro assays assessing cell viability and apoptosis.
- In vivo studies using mouse xenograft and spontaneous tumor models.
Main Results:
- Piperlongumine was identified as a small molecule that selectively kills cancer cells.
- Piperlongumine increases reactive oxygen species (ROS) and induces apoptotic cell death in cancer cells and normal cells with a cancer genotype, irrespective of p53 status.
- Piperlongumine demonstrated significant antitumor effects in mouse xenograft models with no apparent toxicity to normal mice.
- Piperlongumine inhibited the growth of spontaneous malignant breast tumors and metastases in mice.
Conclusions:
- Piperlongumine selectively induces apoptosis in cancer cells by targeting acquired non-oncogene co-dependencies.
- This mechanism exploits the stress phenotype of cancer cells, offering a novel therapeutic strategy.
- Piperlongumine shows significant potential as a selective anticancer agent with demonstrated efficacy in preclinical models.
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