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.

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.

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