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Updated: Aug 27, 2025

CometChip: A High-throughput 96-Well Platform for Measuring DNA Damage in Microarrayed Human Cells
Published on: October 18, 2014
Using the HepaCometChip Assay for Broad-Spectrum DNA Damage Analysis
Norah A Owiti1, Simran Kaushal1, Lincoln Martin2
1Department of Biological Engineering, Massachusetts Institute of Technology (MIT), Cambridge, Massachusetts.
Abstract:
Exposure to DNA damaging agents can lead to mutations that cause cancer. The liver is particularly vulnerable because it contains high levels of Cytochrome P450 enzymes that can convert xenobiotics into DNA reactive metabolites that form potentially carcinogenic bulky DNA adducts. As such, current requirements for preclinical testing include in vivo testing for DNA damage in the liver, which often requires many animals. Given that efforts are underway in many countries to reduce or eliminate the use of animals in research, there is a critical need for fast and robust in vitro tests to discern whether xenobiotics or potential pharmaceutical agents can damage the hepatocyte genome. One possible approach is to leverage the alkaline comet assay, which is used to assess genotoxicity based on the ability of damaged DNA to become free to migrate toward the anode during electrophoresis. The comet assay, however, has several limitations. The assay is (i) slow and (ii) vulnerable to experimental noise, (iii) it is difficult to detect bulky DNA adducts since they do not directly affect DNA migration, and (iv) cell types typically used do not have robust metabolic capacity. To address some of these concerns, we have developed the "HepaCometChip" (a.k.a. the HepaRG CometChip), wherein metabolically competent cells are incorporated into a higher throughput CometChip platform. Repair trapping is used to increase sensitivity for bulky lesions: undetectable bulky lesions are converted into repair intermediates (specifically, single-strand breaks) that can be detected with the assay. Here, we describe a protocol for performing the HepaCometChip assay that includes handling and dosing of HepaRG cells and performing the CometChip assay. With its higher throughput, ability to capture metabolic activation, and sensitivity to bulky lesions, the HepaCometChip offers a potential alternative to the use of animals for genotoxicity testing. © 2022 The Authors. Current Protocols published by Wiley Periodicals LLC. Basic Protocol 1: HepaRG cell culturing and dosing Basic Protocol 2: CometChip assay.
Insights
The HepaCometChip assay offers a faster, more sensitive in vitro method for detecting DNA damage in liver cells, potentially replacing animal testing for genotoxicity. This advanced comet assay captures metabolic activation and detects bulky DNA adducts.
Area of Science:
- Hepatotoxicity and Genotoxicity Testing
- In Vitro Toxicology Models
- Biotechnology and Assay Development
Background:
- The liver's vulnerability to DNA damaging agents necessitates robust genotoxicity testing.
- Current in vivo preclinical testing for liver genotoxicity is animal-intensive.
- Existing alkaline comet assays have limitations including speed, sensitivity to bulky adducts, and metabolic capacity.
Purpose of the Study:
- To develop a high-throughput, metabolically competent in vitro assay for detecting genotoxicity in liver cells.
- To improve upon the limitations of the traditional alkaline comet assay for preclinical drug safety evaluation.
- To provide an alternative to animal testing for assessing DNA damage induced by xenobiotics.
Main Methods:
- Development of the HepaCometChip assay, integrating metabolically competent HepaRG cells into a CometChip platform.
- Utilization of repair trapping to enhance sensitivity for bulky DNA adducts by converting them to detectable single-strand breaks.
- Establishment of protocols for HepaRG cell culturing, dosing, and CometChip assay performance.
Main Results:
- The HepaCometChip assay demonstrates higher throughput compared to traditional methods.
- The assay effectively captures metabolic activation of xenobiotics within the cells.
- Increased sensitivity for detecting bulky DNA lesions is achieved through the repair trapping mechanism.
Conclusions:
- The HepaCometChip assay presents a promising in vitro alternative for genotoxicity testing, particularly for liver cells.
- This assay addresses key limitations of conventional methods, including speed and sensitivity to bulky adducts.
- The HepaCometChip assay contributes to the reduction and replacement of animal use in preclinical safety assessments.

