1. Academic Validation
  2. Crystallographic and kinetic analyses of human IPMK reveal disordered domains modulate ATP binding and kinase activity

Crystallographic and kinetic analyses of human IPMK reveal disordered domains modulate ATP binding and kinase activity

  • Sci Rep. 2018 Nov 12;8(1):16672. doi: 10.1038/s41598-018-34941-3.
Corey D Seacrist 1 Raymond D Blind 2 3
Affiliations

Affiliations

  • 1 Department of Pharmacology, Vanderbilt University School of Medicine, Nashville, TN, 37232, USA.
  • 2 Department of Pharmacology, Vanderbilt University School of Medicine, Nashville, TN, 37232, USA. [email protected].
  • 3 Departments of Pharmacology, Biochemistry and Medicine; Division of Diabetes, Endocrinology and Metabolism, Vanderbilt Diabetes Research and Training Center, Vanderbilt University School of Medicine, Nashville, TN, 37232, USA. [email protected].
Abstract

Inositol polyphosphate multikinase (IPMK) is a member of the IPK-superfamily of kinases, catalyzing phosphorylation of several soluble inositols and the signaling phospholipid PI(4,5)P2 (PIP2). IPMK also has critical non-catalytic roles in p53, mTOR/Raptor, TRAF6 and AMPK signaling mediated partly by two disordered domains. Although IPMK non-catalytic functions are well established, it is less clear if the disordered domains are important for IPMK kinase activity or ATP binding. Here, kinetic and structural analyses of an engineered human IPMK lacking all disordered domains (ΔIPMK) are presented. Although the KM for PIP2 is identical between ΔIPMK and wild type, ΔIPMK has a 1.8-fold increase in kcat for PIP2, indicating the native IPMK disordered domains decrease IPMK activity in vitro. The 2.5 Å crystal structure of ΔIPMK is reported, confirming the conserved ATP-grasp fold. A comparison with other IPK-superfamily structures revealed a putative "ATP-clamp" in the disordered N-terminus, we predicted would stabilize ATP binding. Consistent with this observation, removal of the ATP clamp sequence increases the KM for ATP 4.9-fold, indicating the N-terminus enhances ATP binding to IPMK. Together, these structural and kinetic studies suggest in addition to mediating protein-protein interactions, the disordered domains of IPMK impart modulatory capacity to IPMK kinase activity through multiple kinetic mechanisms.

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