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Updated: Jun 12, 2026

Detection of DNA Breaks in Dividing Human Cells by Neutral Comet Assay
Published on: August 23, 2024
Sulforaphane induces DNA single strand breaks in cultured human cells
Piero Sestili1, Marco Paolillo, Monia Lenzi
1Dipartimento di Scienze Biomolecolari, Via Maggetti, 21, Università degli Studi di Urbino Carlo Bo, 61029 Urbino, PU, Italy. piero.sestili@uniurb.it
Abstract:
Sulforaphane (SFR), an isothiocyanate from cruciferous vegetables, possesses growth-inhibiting and apoptosis-inducing activities in cancer cell lines. Recently, SFR has been shown to promote the mitochondrial formation of reactive oxygen species (ROS) in human cancer cell lines. The present study was undertaken to see whether SFR-derived ROS might cause DNA damage in cultured human cells, namely T limphoblastoid Jurkat and human umbilical vein endothelial cells (HUVEC). 1-3 h treatments with 10-30 microM SFR elicited intracellular ROS formation (as assayed with dihydrorhodamine, DHR, oxidation) as well as DNA breakage (as assessed with fast halo assay, FHA). These effects lacked cell-type specificity, since could be observed in both Jurkat and HUVEC. Differential-pH FHA analysis of damaged DNA showed that SFR causes frank DNA single strand breaks (SSBs); no DNA double strand breaks (DSBs) were found within the considered treatment times (up to 3 h). SFR-derived ROS were formed at the mitochondrial respiratory chain (MRC) level: indeed rotenone or myxothiazol (MRC Complex I and III inhibitors, respectively) abrogated ROS formation. Furthermore ROS were not formed in Jurkat cells pharmacologically depleted of respiring mitochondria (MRC-/Jurkat). Formation of ROS was causally linked to the induction of SSBs: indeed all the experimental conditions capable of preventing ROS formation also prevented the damage of nuclear DNA from SFR-intoxicated cells. As to the toxicological relevance of SSBs, we found that their prevention slightly but significantly attenuated SFR cytotoxicity, suggesting that high-dose SFR toxicity is the result of a complex series of events among which GSH depletion seems to play a pivotal role. In conclusion, the present study identifies a novel mechanism contributing to SFR toxicity which - since DNA damage is a prominent mechanism underlying the cytotoxic activity of established antineoplastic agents - might help to exploit the therapeutic value of SFR in anticancer drug protocols.
Insights
Sulforaphane (SFR) causes DNA damage by increasing mitochondrial reactive oxygen species (ROS) in human cells. This SFR-induced DNA damage, specifically single-strand breaks, contributes to its anticancer potential.
Area of Science:
- Biochemistry
- Molecular Biology
- Toxicology
Background:
- Sulforaphane (SFR), derived from cruciferous vegetables, exhibits anticancer properties by inhibiting cancer cell growth and inducing apoptosis.
- Recent studies indicate SFR promotes mitochondrial reactive oxygen species (ROS) formation in human cancer cells.
Purpose of the Study:
- To investigate if SFR-induced ROS cause DNA damage in cultured human cells.
- To determine the type of DNA damage and its cellular origin.
Main Methods:
- Treatment of Jurkat and human umbilical vein endothelial cells (HUVEC) with SFR.
- Assay of intracellular ROS using dihydrorhodamine (DHR) oxidation.
- Assessment of DNA breakage using fast halo assay (FHA) and differential-pH FHA.
- Inhibition of mitochondrial respiratory chain (MRC) complexes with rotenone or myxothiazol.
- Use of MRC-deficient Jurkat cells (MRC-/Jurkat).
Main Results:
- SFR treatment (10-30 microM) induced intracellular ROS and DNA single-strand breaks (SSBs) in both cell types.
- SFR-derived ROS originated from the mitochondrial respiratory chain (MRC).
- Inhibition of ROS formation or MRC activity prevented DNA damage.
- Preventing ROS formation attenuated SFR cytotoxicity, with GSH depletion also playing a role.
Conclusions:
- SFR induces DNA SSBs via mitochondrial ROS generation.
- This novel mechanism of SFR toxicity contributes to its potential as an anticancer agent.
- Understanding this pathway may aid in developing SFR-based cancer therapies.
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