Related Experiment Video
Updated: Jun 16, 2025

Author Spotlight: Combining Proximity Ligand Assay with Gamma-H2AX Staining to Characterize Protein Interactions in DNA Damage Response
Published on: August 2, 2024
Proximity Ligand Assay to Localize Proteins in DNA Damage Sites
Fernanda Luisa Basei1, Lívia Alves Dos Reis Moura2, Victor da Cruz Ferreira2
1Faculty of Pharmaceutical Sciences, University of Campinas; fbasei@unicamp.br.
Abstract:
The DNA damage response is a genetic information safeguard that protects cells from perpetuating damaged DNA. The characterization of the proteins that cooperate in this process allows the identification of alternative targets for therapeutic intervention in several diseases, such as cancer, aging-related diseases, and chronic inflammation. The Proximity Ligand Assay (PLA) emerged as a tool for estimating interaction between proteins as well as spatial proximity among organelles or cellular structures and allows the temporal localization and co-localization analysis under stress conditions, for instance. The method is simple because it is similar to conventional immunofluorescence and allows the staining of an organelle, cellular structure, or a specific marker such as mitochondria, endoplasmic reticulum, PML bodies, or DNA double-strand marker, yH2AX simultaneously. The phosphorylation of the S139 at Histone 2A variant, H2AX, then referred to as yH2AX, is widely used as a very sensitive and specific marker of DNA double-strand breaks. Each focus of yH2AX staining corresponds to one break in DNA that occurs a few minutes after the damage. The analysis of changes in yH2AX foci is the most common assay for studying if the protein of interest is implicated in DNA damage response (DDR). Whether a direct role in the DNA damage site is expected, fluorescence microscopy is used to verify the colocalization of the protein of interest with yH2AX foci. However, except for the new super-resolution fluorescence methods, to conclude, the local interaction with DNA damage sites can be a little subjective. Here, we show an assay to evaluate the localization of proteins in the DDR pathway using yH2AX as a marker of the damage site. This assay can be used to characterize the temporal localization under different insults that cause DNA damage.
Insights
The DNA damage response (DDR) pathway is crucial for cell health. This study presents a new assay using yH2AX as a marker to precisely evaluate protein localization at DNA damage sites.
Area of Science:
- Cellular Biology
- Molecular Biology
- Genetics
Background:
- The DNA damage response (DDR) is vital for safeguarding genetic integrity and preventing diseases like cancer.
- Understanding protein interactions within the DDR pathway offers therapeutic targets for cancer, aging, and inflammation.
- The Proximity Ligand Assay (PLA) is a tool for assessing protein interactions and spatial proximity.
Purpose of the Study:
- To develop and validate a novel assay for evaluating the localization of proteins within the DDR pathway.
- To utilize yH2AX as a specific marker for DNA double-strand breaks to pinpoint protein recruitment sites.
- To enable temporal localization analysis of DDR proteins under various DNA-damaging conditions.
Main Methods:
- The study employs an assay similar to conventional immunofluorescence for ease of use.
- Simultaneous staining of cellular structures (e.g., mitochondria, ER) and the DNA double-strand break marker, yH2AX.
- Utilizing yH2AX foci, which represent individual DNA breaks, as a precise marker for damage sites.
Main Results:
- The developed assay allows for the evaluation of protein localization at DNA damage sites marked by yH2AX.
- This method facilitates the characterization of temporal protein localization dynamics under different DNA-damaging insults.
- The assay provides a more objective assessment of protein interaction with DNA damage sites compared to traditional fluorescence microscopy.
Conclusions:
- The novel assay offers a robust method for studying protein involvement in the DNA damage response.
- It enhances the understanding of DDR mechanisms by enabling precise spatiotemporal analysis of protein localization.
- This technique can aid in identifying new therapeutic targets for DDR-related diseases.
More Related Videos
13:10Detection and Visualization of DNA Damage-induced Protein Complexes in Suspension Cell Cultures Using the Proximity Ligation Assay
Published on: June 9, 2017
11:58A Simple, Rapid, and Quantitative Assay to Measure Repair of DNA-protein Crosslinks on Plasmids Transfected into Mammalian Cells
Published on: March 5, 2018