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Updated: Jun 22, 2026

CometChip: A High-throughput 96-Well Platform for Measuring DNA Damage in Microarrayed Human Cells
Published on: October 18, 2014
Effects of oxidative and alkylating damage on microsatellite instability in nontumorigenic human cells
Mandy L Maneval1, Kristin A Eckert
1Jake Gittlen Cancer Research Institute, Pennsylvania State University College of Medicine, 500 University Drive, Hershey, PA 17033, USA.
Abstract:
Microsatellite instability is a phenomenon that is well characterized in mismatch repair-deficient tumor cell lines, including the potential etiological role of endogenous DNA damage. However, our understanding of microsatellite mutational mechanisms in repair-proficient, nontumorigenic cells is limited. We determined microsatellite mutation frequencies for human lymphoblastoid cells using an episomal DNA shuttle vector in which a (TTCC/AAGG)(9) microsatellite is inserted in-frame within the herpes simplex virus thymidine kinase (HSV-tk) gene. The responses of plasmid-bearing cells to reactive oxygen species or alkylating agents were compared after treatment with hydrogen peroxide (H(2)O(2)) and N-ethyl-N-nitrosourea (ENU). H(2)O(2) treatment induced a statistically significant increase in overall HSV-tk mutation frequency relative to controls, with catalase reducing the effect. H(2)O(2) treatment increased the mutation frequency within the microsatellite and the HSV-tk coding region to a similar extent (five and six-fold, respectively, relative to the control). Mutational specificity analyses demonstrated that the proportion of mutations within the microsatellite is not statistically different among the H(2)O(2), catalase, and PBS treatment groups. In contrast, treatment of cells bearing the microsatellite vector with ENU altered the mutational spectrum, relative to solvent control. ENU induced the expected base substitutions within the HSV-tk coding region, but did not increase the microsatellite mutation frequency. The low level of microsatellite mutagenesis observed after reactive oxygen species (ROS) insult likely reflects the normal repair processes of these nontumorigenic, repair-competent cells. Our ex vivo experiments demonstrate the manner in which repetitive DNA in normal human cells might respond to endogenous mutagens.
Insights
Reactive oxygen species increase microsatellite mutations in normal human cells, while alkylating agents do not. This study clarifies DNA repair mechanisms in repair-proficient cells responding to endogenous mutagens.
Area of Science:
- Genetics
- Molecular Biology
- Toxicology
Background:
- Microsatellite instability is known in mismatch repair-deficient cells.
- Mechanisms in repair-proficient cells are less understood.
- Endogenous DNA damage plays a potential etiological role.
Purpose of the Study:
- Investigate microsatellite mutation mechanisms in repair-proficient, nontumorigenic cells.
- Determine the effect of reactive oxygen species (ROS) and alkylating agents on microsatellite mutation frequencies.
- Characterize the mutational specificity in response to these agents.
Main Methods:
- Utilized an episomal DNA shuttle vector with a (TTCC/AAGG)(9) microsatellite in the HSV-tk gene in human lymphoblastoid cells.
- Treated cells with hydrogen peroxide (H(2)O(2)) and N-ethyl-N-nitrosourea (ENU).
- Assessed mutation frequencies and analyzed mutational specificity.
Main Results:
- H(2)O(2) significantly increased overall HSV-tk mutation frequency, affecting both microsatellite and coding regions.
- Catalase treatment reduced the H(2)O(2) effect.
- ENU induced base substitutions in the coding region but did not increase microsatellite mutation frequency.
Conclusions:
- ROS can induce microsatellite mutagenesis in normal human cells.
- Repair-proficient cells exhibit low microsatellite mutagenesis after ROS insult due to normal repair processes.
- Ex vivo experiments reveal how repetitive DNA responds to endogenous mutagens in normal cells.
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