4.7 Article

Investigating the human Calcineurin Interaction Network using the πΦLxVP SLiM

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SCIENTIFIC REPORTS
卷 6, 期 -, 页码 -

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NATURE PUBLISHING GROUP
DOI: 10.1038/srep38920

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  1. US Department of Energy, Office of Science, Office of Basic Energy Sciences [DE-AC02-98CH10886]
  2. National Institute of Neurological Disorders and Stroke [R01NS091336]
  3. National Institute of General Medicine [R01GM098482]

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Ser/thr phosphorylation is the primary reversible covalent modification of proteins in eukaryotes. As a consequence, it is the reciprocal actions of kinases and phosphatases that act as key molecular switches to fine tune cellular events. It has been well documented that similar to 400 human ser/thr kinases engage substrates via consensus phosphosite sequences. Strikingly, we know comparatively little about the mechanism by which similar to 40 human protein ser/thr phosphatases (PSPs) dephosphorylate similar to 15000 different substrates with high specificity. The identification of substrates of the essential PSP calcineurin (CN) has been exceptionally challenging and only a small fraction has been biochemically confirmed. It is now emerging that CN binds regulators and substrates via two short linear motifs (SLiMs), the well-studied PxIxIT SLiM and the LxVP SLiM, which remains controversial at the molecular level. Here we describe the crystal structure of CN in complex with its substrate NFATc1 and show that the LxVP SLiM is correctly defined as pi Phi LxVP. Bioinformatics studies using the pi Phi LxVP SLiM resulted in the identification of 567 potential CN substrates; a small subset was experimentally confirmed. This combined structural-bioinformatics approach provides a powerful method for dissecting the CN interaction network and for elucidating the role of CN in human health and disease.

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