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Characterization at the Molecular Level using Robust Biochemical Approaches of a New Kinase Protein
Published on: June 30, 2019
Identification of carboxyl-terminal MCM3 phosphorylation sites using polyreactive phosphospecific antibodies
Yuling Shi1, Gerald E Dodson, Partha S Mukhopadhyay
1Department of Pharmacology, University of Wisconsin School of Medicine and Public Health, Madison, Wisconsin 53706, USA.
Abstract:
The functionally related ATM (ataxia telangiectasia-mutated) and ATR (ATM-Rad3-related) protein kinases are critical regulators of DNA damage responses in mammalian cells. ATM and ATR share highly overlapping substrate specificities and show a strong preference for the phosphorylation of Ser or Thr residues followed by Gln. In this report we used a polyreactive phosphospecific antibody (alpha-pDSQ) that recognizes a subset of phosphorylated Asp-Ser-Gln sequences to purify candidate ATM/ATR substrates. This led to the identification of phosphorylation sites in the carboxyl terminus of the minichromosome maintenance protein 3 (MCM3), a component of the hexameric MCM DNA helicase. We show that the alpha-DSQ antibody recognizes tandem DSQ phosphorylation sites (Ser-725 and Ser-732) in the carboxyl terminus of murine MCM3 (mMCM3) and that ATM phosphorylates both sites in vitro. ATM phosphorylated the carboxyl termini of mMCM3 and human MCM3 in vivo and the phosphorylated form of MCM3 retained association with the canonical MCM complex. Although DNA damage did not affect steady-state levels of chromatin-bound MCM3, the ATM-phosphorylated form of MCM3 was preferentially localized to the soluble, nucleoplasmic fraction. This finding suggests that the carboxyl terminus of chromatin-loaded MCM3 may be sequestered from ATM-dependent checkpoint signals. Finally, we show that ATM and ATR jointly contribute to UV light-induced MCM3 phosphorylation, but that ATM is the predominant UV-activated MCM3 kinase in vivo. The carboxyl-terminal ATM phosphorylation sites are conserved in vertebrate MCM3 orthologs suggesting that this motif may serve important regulatory functions in response to DNA damage. Our findings also suggest that DSQ motifs are common phosphoacceptor motifs for ATM family kinases.
Insights
The study identifies new phosphorylation sites on MCM3 by ATM (ataxia telangiectasia-mutated) and ATR (ATM-Rad3-related) kinases, crucial for DNA damage response. Phosphorylation affects MCM3 localization, suggesting regulation of DNA repair pathways.
Area of Science:
- Cellular Biology
- Molecular Biology
- Biochemistry
Background:
- ATM (ataxia telangiectasia-mutated) and ATR (ATM-Rad3-related) kinases are vital for DNA damage responses in mammalian cells.
- These kinases share substrate specificities, preferring Ser/Thr residues followed by Gln.
Purpose of the Study:
- To identify novel ATM/ATR substrates using a phosphospecific antibody (alpha-pDSQ).
- To investigate the role of ATM/ATR phosphorylation in the regulation of the MCM3 protein and its function in DNA repair.
Main Methods:
- Utilized a polyreactive phosphospecific antibody (alpha-pDSQ) to detect phosphorylated Asp-Ser-Gln (DSQ) motifs.
- Purified candidate substrates and identified phosphorylation sites in the carboxyl terminus of minichromosome maintenance protein 3 (MCM3).
- Performed in vitro and in vivo phosphorylation assays using ATM and ATR kinases.
Main Results:
- Identified tandem DSQ phosphorylation sites (Ser-725 and Ser-732) in murine MCM3 (mMCM3) recognized by the alpha-DSQ antibody.
- Demonstrated that ATM phosphorylates both mMCM3 sites in vitro and mMCM3/human MCM3 in vivo.
- Observed that ATM-phosphorylated MCM3 remains in the MCM complex but preferentially localizes to the soluble fraction, suggesting sequestration from checkpoint signals.
- Showed that ATM and ATR contribute to UV-induced MCM3 phosphorylation, with ATM being the predominant kinase.
Conclusions:
- The carboxyl-terminal ATM phosphorylation sites in MCM3 are conserved across vertebrates, indicating regulatory importance in DNA damage response.
- DSQ motifs represent common phosphoacceptor sites for ATM family kinases.
- ATM-dependent phosphorylation of MCM3 influences its subcellular localization, potentially modulating DNA repair processes.
