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.

Methodsx
|September 30, 2020
PubMed

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.

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