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Published on: January 31, 2018
Acetylation dynamics of human nuclear proteins during the ionizing radiation-induced DNA damage response
Martin V Bennetzen1, Dorthe Helena Larsen, Christoffel Dinant
1Center for Experimental BioInformatics, Department of Biochemistry and Molecular Biology, University of Southern Denmark, Odense, Denmark.
Abstract:
Genotoxic insults, such as ionizing radiation (IR), cause DNA damage that evokes a multifaceted cellular DNA damage response (DDR). DNA damage signaling events that control protein activity, subcellular localization, DNA binding, protein-protein interactions, etc. rely heavily on time-dependent posttranslational modifications (PTMs). To complement our previous analysis of IR-induced temporal dynamics of nuclear phosphoproteome, we now identify a range of human nuclear proteins that are dynamically regulated by acetylation, and predominantly deacetylation, during IR-induced DDR by using mass spectrometry-based proteomic approaches. Apart from cataloging acetylation sites through SILAC proteomic analyses before IR and at 5 and 60 min after IR exposure of U2OS cells, we report that: (1) key components of the transcriptional machinery, such as EP300 and CREBBP, are dynamically acetylated; (2) that nuclear acetyltransferases themselves are regulated, not on the protein abundance level, but by (de)acetylation; and (3) that the recently reported p53 co-activator and methyltransferase MLL3 is acetylated on five lysines during the DDR. For selected examples, protein immunoprecipitation and immunoblotting were used to assess lysine acetylation status and thereby validate the mass spectrometry data. We thus present evidence that nuclear proteins, including those known to regulate cellular functions via epigenetic modifications of histones, are regulated by (de)acetylation in a timely manner upon cell's exposure to genotoxic insults. Overall, these results present a resource of temporal profiles of a spectrum of protein acetylation sites during DDR and provide further insights into the highly dynamic nature of regulatory PTMs that help orchestrate the maintenance of genome integrity.
Insights
Ionizing radiation (IR) triggers a DNA damage response (DDR) involving dynamic protein acetylation. This study reveals temporal acetylation changes in key nuclear proteins, including transcription factors and acetyltransferases, crucial for maintaining genome integrity.
Area of Science:
- Cellular Biology
- Molecular Biology
- Genetics
Background:
- Genotoxic insults like ionizing radiation (IR) induce a complex DNA damage response (DDR).
- Posttranslational modifications (PTMs), particularly acetylation, are critical for regulating DDR signaling pathways.
- Previous studies focused on the phosphoproteome; this study investigates the role of acetylation in the IR-induced DDR.
Purpose of the Study:
- To identify human nuclear proteins dynamically regulated by acetylation during the IR-induced DDR.
- To characterize the temporal dynamics of protein acetylation following IR exposure.
- To provide a resource of acetylation site dynamics during DDR.
Main Methods:
- Quantitative proteomic analysis using Stable Isotope Labeling by Amino acids in Cell culture (SILAC).
- Mass spectrometry to profile nuclear protein acetylation at different time points after IR exposure (0, 5, and 60 minutes).
- Validation of mass spectrometry data using immunoprecipitation and immunoblotting.
Main Results:
- Identified dynamic acetylation and deacetylation of numerous nuclear proteins during IR-induced DDR.
- Key transcriptional machinery components, including EP300 and CREBBP, showed dynamic acetylation.
- Nuclear acetyltransferases were regulated by (de)acetylation, not protein abundance changes.
- MLL3, a p53 co-activator, was found to be acetylated during DDR.
Conclusions:
- Protein acetylation, predominantly deacetylation, is a dynamically regulated process during the cellular response to genotoxic stress.
- Acetylation regulates not only transcriptional machinery but also the regulators of acetylation itself.
- These findings highlight the intricate, time-dependent regulatory role of acetylation in maintaining genome integrity following DNA damage.
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