Method Article

Assaying DNA Damage in Hippocampal Neurons Using the Comet Assay

DOI:

10.3791/50049

December 19th, 2012

In This Article

Summary

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The comet assay is an efficient way of detecting single- and double-strand breaks, including alkali-labile sites and DNA-DNA/DNA-protein cross-links on the DNA in all cells including hippocampal neurons. The method takes advantage of the differential migration of DNA in an electric field due to differences in amount of DNA damage.

Abstract

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A number of drugs target the DNA repair pathways and induce cell kill by creating DNA damage. Thus, processes to directly measure DNA damage have been extensively evaluated. Traditional methods are time consuming, expensive, resource intensive and require replicating cells. In contrast, the comet assay, a single cell gel electrophoresis assay, is a faster, non-invasive, inexpensive, direct and sensitive measure of DNA damage and repair. All forms of DNA damage as well as DNA repair can be visualized at the single cell level using this powerful technique.

The principle underlying the comet assay is that intact DNA is highly ordered whereas DNA damage disrupts this organization. The damaged DNA seeps into the agarose matrix and when subjected to an electric field, the negatively charged DNA migrates towards the cathode which is positively charged. The large undamaged DNA strands are not able to migrate far from the nucleus. DNA damage creates smaller DNA fragments which travel farther than the intact DNA. Comet Assay, an image analysis software, measures and compares the overall fluorescent intensity of the DNA in the nucleus with DNA that has migrated out of the nucleus. Fluorescent signal from the migrated DNA is proportional to DNA damage. Longer brighter DNA tail signifies increased DNA damage. Some of the parameters that are measured are tail moment which is a measure of both the amount of DNA and distribution of DNA in the tail, tail length and percentage of DNA in the tail. This assay allows to measure DNA repair as well since resolution of DNA damage signifies repair has taken place. The limit of sensitivity is approximately 50 strand breaks per diploid mammalian cell 1,2. Cells treated with any DNA damaging agents, such as etoposide, may be used as a positive control. Thus the comet assay is a quick and effective procedure to measure DNA damage.

Protocol

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1. Cell Culture

  1. Culture neuronal cells and treat them as needed.
  2. Harvest cells into 15 ml tubes: aspirate media, rinse with phosphate buffered saline (PBS, calcium and magnesium free), add trypsin, collect in 15 ml tubes and neutralize trypsin with appropriate serum containing media.
  3. Spin at 1,000 x g for 5 min.
  4. Aspirate media.
  5. Resuspend cells in PBS.
  6. Spin at 1,000 x g for 5 min.
  7. Aspirate media and resuspend cells in fresh PBS.
  8. Count cells using a hemacytometer or your preferred cell counter.
  9. Cell samples should be prepared immediately before starting the assay.
  10. All samples should be handled in the dark or yellow light to prevent DNA damage from ultraviolet light.

2. Comet Assay

1. Slide Preparation

  1. Melt 1% agarose (1 g / 100 ml in 1X Tris Base, Boric acid, EDTA, TBE) in a microwave for 3 min until all granules disappear.
  2. Dip slides into the molten agarose and wipe a side clean with a kimwipe. Allow the agarose to air-dry to a transparent film. This can be done in advance and slides can be stored.

2. Neutral Comet Assay

  1. Chill lysis solution (2.5 M NaCl, 100 mM EDTA pH 10, 10 mM Tris Base, 1% sodium lauryl sarcosinate, and 1% Triton X-100, pH 10) at 4 °C for at least 1 hr before use.
  2. 2.2.2. Melt 1% low melting point agarose (1 g / 100ml in 1X Tris Base, Boric acid, EDTA) in a microwave for 3 min until all granules disappear. The agarose needs to be cooled to 37 °C in a water bath to avoid artificial induction of comet tail. Ideally, the agarose needs to be cooled for half an hour before use.
  3. 2.2.3. Dilute the cell suspension so that there are 100,000 cells per ml. Combine the cell suspension with the low melting point agarose (at 37 °C) at a ratio of 1:10 (v/v), vortex briefly, and immediately pipette 50 μl onto the Comet Slide. Use the side of the pipette tip to spread the cell suspension evenly over the sample area. Each treatment group should be at least in triplicate.
  4. Place slides flat in refrigerator for 30 min until a circle appears in the periphery of the slide.
  5. Prechill the lysis solution and submerge slides in this solution for 30 min in the dark at 4 °C (or in a refrigerator).
  6. Pour off or aspirate the lysis solution and add 1X neutral electrophoresis buffer (Tris base, Boric acid, EDTA, 1X TBE). Leave slides in this buffer for half an hour in the refrigerator.
  7. Add prechilled 1X Neutral Electrophoresis Buffer (TBE) in electrophoresis chamber, place slides in electrophoresis slide tray. Align slides so that they are equidistant from electrodes.
  8. Pour 1X neutral electrophoresis buffer up to 0.2 inches above slides. Excess buffer will interfere with electrophoresis.
  9. Set power supply voltage to 1 V per cm (measured electrode to electrode) and run for 30 min at 4 °C (or the cold room) in the dark.

3. Alkaline Comet Assay

  1. Chill lysis solution (2.5 M NaCl, 100 mM EDTA pH 10, 10 mM Tris Base, 1% sodium lauryl sarcosinate, and 1% Triton X-100, pH 10) at 4 °C for at least 1 hr before use.
  2. Melt 1% low melting point agarose (1 g / 100 ml in 1X Tris Base, Boric acid, EDTA) in a microwave for 3 min until all granules disappear. Then cool in a 37 °C water bath for at least 30 min.
  3. Combine cells at 1 x 105 / ml with molten low melting point agarose (at 37 °C) at a ratio of 1:10 (v/v), vortex briefly, and immediately pipette 50 μl onto the Comet Slide. Use the side of the pipette tip to spread the cell suspension evenly over the sample area. Each treatment group should be at least in triplicate.
  4. Place slides flat in refrigerator for 30 min until a circle appears in the periphery of the slide.
  5. Immerse slides in prechilled lysis solution and leave at 4 °C for 1 hr to overnight in the dark.
  6. Remove the slides from the lysis solution, drain the slides and rinse once with cold neutralization buffer for 5 min to remove residual detergent and salts prior to the alkali-unwinding step.
  7. Place slides in a gel electrophoresis chamber filled with prechilled freshly made electrophoresis Buffer (300 mM NaOH, 1 mM EDTA, pH>13) not to exceed 0.5 cm above slides. Align slides so that they are equidistant from electrodes.
  8. Let slides sit in the alkaline buffer for 30 min in the dark to allow for unwinding of the DNA and the expression of alkali-liable damage.
  9. Set power supply voltage to 1 V per cm (measured electrode to electrode) and run for 30 min at 4 °C (or the cold room).

4. Fixing and Staining Cells

  1. Drain excess Electrophoresis Buffer
  2. Immerse slides in pre-chilled distilled water for 5 min at RT.
  3. Immerse slides in pre-chilled 70% ethanol for 5 min at RT.
  4. Dry samples overnight. Do not expose slides to bright light. Samples may be stored for months at room temperature prior to scoring at this stage.
  5. Stain slides by immersing in Sybr green (1X diluted in PBS) for 20 min in the refrigerator.
  6. Remove slides and allow them to dry completely in the dark. The agarose will become transparent when completely dry.

4. Image Acquisition and Analysis

  1. Acquire images using fluorescent microscope set to the green filter (Zeiss AxioVision) and analyze using Comet Assay software (Perceptive Instruments).
  2. Click on the "comet head" (the nucleus) and the software calculates the parameters including the mean tail moment and amount of DNA in the nucleus.
  3. Analyze at least 200 cells per treatment.
  4. Export data to Microsoft Excel.
  5. Calculate mean tail moment for each treatment group and plot data as appropriate.

5. Representative Results

An example of comet assay analysis on neuronal cells is shown in Figure 2 and Figure 3. In this case, irradiation of the neuronal cells induces DNA damage. As the cells are subjected to the electrical field, the DNA migrates at different rates due to differences in size which is subsequently analyzed using the Comet Assay software. The more the DNA damage, the farther the DNA migrates out of the nucleus. This decreases the fluorescent intensity in the nucleus which is subsequently picked up by the software and results in higher tail moment. Table 1 depicts a representative table from comet assay analysis and Figure 4 shows a representative graph comparing DNA damage in neuronal cells following radiation as measured by the comet assay.

Comet assay process flowchart: cell lysis, electrophoresis, staining, microscopy analysis.
Figure 1. Flow chart of the comet assay. Click here to view larger figure.

Comet assay diagram in neurons; DNA damage analysis with tail and no tail comparison.
Figure 2. Representative images of neuronal cells (A) without and (B) with comet tail.

Microscopy analysis; fluorescence microscopy images sequence, focusing, and 3D intensity mapping.
Figure 3. Comet assay analysis using Comet Assay software. (A) Representative screen shots of image acquired using Carl Zeiss fluorescent microscope and analyzed using Comet Assay software. (B) Clicking on the nucleus or the "comet head" (circled in green) generates a fluorescent map and graph (circled in yellow) and a (C) data table (circled in red). Click here to view larger figure.

Bar graph comparing mean tail moment with and without IR exposure, indicating DNA damage.
Figure 4. Representative graph obtained by plotting the mean tail moment obtained by analyzing DNA damage in irradiated and non-irradiated neuronal cells using neutral comet assay. As expected, 3Gy radiation (x-ray) induces DNA damage as depicted by the higher mean tail moment in the irradiated neuronal cells. Shown is the mean tail moment (+/- Standard error), **P<0.01.

Comet assay results table showing head/tail length, intensity, moment; DNA damage assessment.
Table 1. Representative table obtained by comet assay analysis on irradiated and non-irradiated neuronal cells. Click here to view larger figure.

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Discussion

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The comet assay has the unique capacity of analyzing individual cells. This is advantageous in identification of subpopulations of cells that demonstrate differential response to cytotoxic agents. A few practical limitations have to be taken into account. The number of cells that can be evaluated individually may vary depending on the individual. The sample size needs to be increased if there is variance in DNA damage within a population. Viable single-cell suspension is critical for this assay since predominant presence...

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Disclosures

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No conflicts of interest declared.

Acknowledgements

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This work was supported by the IMPACT Award from the Department of Radiation Oncology, University of Alabama-Birmingham Comprehensive Cancer Center, the Fighting Children's Cancer Foundation, and the Gabrielle's Angel Foundation (to ESY.).

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Materials

List of materials used in this article
NameCompanyCatalog NumberComments
1.5 ml tubesSanta Cruz Biotechnology, IncSc-200271
10X TBE (Tris base, boric acid, EDTA)Fisher ScientificBP13331
15 ml tubeFisher Scientific0553851
AgaroseSigmaA5093
Aluminum foilFisher Scientific01213101
BeakerFisher ScientificFB102300
CentrifugeThermo Scientific75004261PR
Comet Assay softwareComet Assay IV Image Analysis System
CylinderFisher Scientific08555F
EDTAGIBCO15575
Electrophoresis chamberThermo Scientific09528101
EthanolFisher ScientificA407P4
Fluorescent microscopeZeiss Axio VisionAny fluorescent microscope with green filter will suffice
HemacytometerFisher Scientific0267152
Low melting point agarosePromegaV2111
MicrowaveSears
Phosphate buffered saline, calcium free, magnesium freeHyCloneSH3025601
Power supplyBioRad1645050
RefrigeratorSears
RulerStaples
SlideFisher Scientific12550143
Sodium chlorideSigmaS7653
Sodium hydroxideSigmaS5881
Sodium lauryl sarcosinateFisher ScientificS529
Sybr greenInvitrogenS7585
TrayFisher Scientific15242B
Tris BaseSigmaT6066
Triton-X 100SigmaT8787
TrypsinHyCloneSH3023601
VortexFisher Scientific02216108
Water bathFisher Scientific154622Q

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Tags

ElectrophoresisFluorescence MicroscopyCell LysisLow Melting Point AgaroseTail Moment AnalysisDNA RepairGamma H2AX Foci

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