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Updated: Dec 7, 2025

Extraction of Histones from Clinical Specimens for Epigenetic Profiling by Mass Spectrometry
Published on: November 21, 2025
Comprehensive histone epigenetics: A mass spectrometry based screening assay to measure epigenetic toxicity
Sigrid Verhelst1, Laura De Clerck1, Sander Willems1
1ProGenTomics, Laboratory of Pharmaceutical Biotechnology, Ghent University, Ottergemsesteenweg 460, 9000, Ghent, Belgium.
Abstract:
Evidence of the involvement of epigenetics in pathologies such as cancer, diabetes, and neurodegeneration has increased global interest in epigenetic modifications. For nearly thirty years, it has been known that cancer cells exhibit abnormal DNA methylation patterns. In contrast, the large-scale analysis of histone post-translational modifications (hPTMs) has lagged behind because classically, histone modification analysis has relied on site specific antibody-based techniques. Mass spectrometry (MS) is a technique that holds the promise to picture the histone code comprehensively in a single experiment. Therefore, we developed an MS-based method that is capable of tracking all possible hPTMs in an untargeted approach. In this way, trends in single and combinatorial hPTMs can be reported and enable prediction of the epigenetic toxicity of compounds. Moreover, this method is based on the use of human cells to provide preliminary data, thereby omitting the need to sacrifice laboratory animals. Improving the workflow and the user-friendliness in order to become a high throughput, easily applicable, toxicological screening assay is an ongoing effort. Still, this novel toxicoepigenetic assay and the data it generates holds great potential for, among others, pharmaceutical industry, food science, clinical diagnostics and, environmental toxicity screening. •There is a growing interest in epigenetic modifications, and more specifically in histone post-translational modifications (hPTMs).•We describe an MS-based workflow that is capable of tracking all possible hPTMs in an untargeted approach that makes use of human cells.•Improving the workflow and the user-friendliness in order to become a high throughput, easily applicable, toxicological screening assay is an ongoing effort.
Insights
This study introduces a mass spectrometry method to comprehensively analyze histone post-translational modifications (hPTMs) using human cells. This novel approach aids in predicting compound toxicity and advancing epigenetic research.
Area of Science:
- Epigenetics and Molecular Toxicology
- Biochemistry and Analytical Chemistry
Background:
- Growing interest in epigenetic modifications, particularly histone post-translational modifications (hPTMs), due to their role in diseases like cancer.
- Limitations of traditional antibody-based methods for large-scale hPTM analysis.
- Need for comprehensive and efficient methods to study the histone code.
Purpose of the Study:
- To develop and present a mass spectrometry (MS)-based workflow for untargeted, comprehensive analysis of all possible hPTMs.
- To enable the tracking of single and combinatorial hPTMs for predicting epigenetic toxicity.
- To establish a human cell-based assay, reducing reliance on animal testing.
Main Methods:
- Development of an untargeted mass spectrometry (MS) workflow.
- Application of the method to human cells for hPTM profiling.
- Analysis of single and combinatorial histone post-translational modifications.
Main Results:
- A novel MS-based method capable of tracking all possible hPTMs in an untargeted manner was successfully developed.
- The method allows for the reporting of trends in single and combinatorial hPTMs.
- The assay utilizes human cells, providing preliminary toxicological data without animal sacrifice.
Conclusions:
- The developed MS-based workflow offers a comprehensive approach to studying hPTMs.
- This toxicoepigenetic assay has significant potential for applications in pharmaceuticals, food science, diagnostics, and environmental screening.
- Ongoing efforts focus on improving workflow efficiency and user-friendliness for high-throughput toxicological screening.

