Checkpoint activation by Spd1: a competition-based system relying on tandem disordered PCNA binding motifs

Author:

Olsen Johan G1,Prestel Andreas1ORCID,Kassem Noah1,Broendum Sebastian S1,Shamim Hossain Mohammad2,Simonsen Signe1,Grysbæk Martin2,Mortensen Josefine2,Rytkjær Louise Lund2,Haxholm Gitte W1,Marabini Riccardo1,Holmberg Christian2ORCID,Carr Antony M3,Crehuet Ramon4,Nielsen Olaf2ORCID,Kragelund Birthe B1ORCID

Affiliation:

1. Structural Biology and NMR Laboratory, The Linderstrøm-Lang Centre for Protein Science and REPIN, Department of Biology, Ole Maaloes Vej 5, University of Copenhagen , 2200  Copenhagen N , Denmark

2. Cell cycle and Genome Stability Group, Functional Genomics, Department of Biology, Ole Maaloes Vej 5, University of Copenhagen , 2200  Copenhagen N , Denmark

3. Genome Damage and Stability Centre, University of Sussex , John Maynard Smith Building , Falmer , BN1 9RQ , Brighton

4. Institute for Advanced Chemistry of Catalonia (IQAC), CSIC , c/ Jordi Girona 18-26 , 08034 Barcelona

Abstract

Abstract DNA regulation, replication and repair are processes fundamental to all known organisms and the sliding clamp proliferating cell nuclear antigen (PCNA) is central to all these processes. S-phase delaying protein 1 (Spd1) from S. pombe, an intrinsically disordered protein that causes checkpoint activation by inhibiting the enzyme ribonucleotide reductase, has one of the most divergent PCNA binding motifs known. Using NMR spectroscopy, in vivo assays, X-ray crystallography, calorimetry, and Monte Carlo simulations, an additional PCNA binding motif in Spd1, a PIP-box, is revealed. The two tandemly positioned, low affinity sites exchange rapidly on PCNA exploiting the same binding sites. Increasing or decreasing the binding affinity between Spd1 and PCNA through mutations of either motif compromised the ability of Spd1 to cause checkpoint activation in yeast. These results pinpoint a role for PCNA in Spd1-mediated checkpoint activation and suggest that its tandemly positioned short linear motifs create a neatly balanced competition-based system, involving PCNA, Spd1 and the small ribonucleotide reductase subunit, Suc22R2. Similar mechanisms may be relevant in other PCNA binding ligands where divergent binding motifs so far have gone under the PIP-box radar.

Funder

AICR

Danish Council for Independent Research Natural Sciences

Novo Nordisk Foundation

Thrond Mohn stiftelsen

European Synchrotron Radiation Facility

Structural Biology and NMR Laboratory

Villumfonden

Carlsberg Foundation

Novo Nordisk Scholarship

Publisher

Oxford University Press (OUP)

Subject

Genetics

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