6wob Citations

New structural insights reveal an expanded reaction cycle for inositol pyrophosphate hydrolysis by human DIPP1.

FASEB J 35 e21275 (2021)
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Cited: 9 times
EuropePMC logo PMID: 33475202

Abstract

Nudix hydrolases attract considerable attention for their wide range of specialized activities in all domains of life. One particular group of Nudix phosphohydrolases (DIPPs), through their metabolism of diphosphoinositol polyphosphates (PP-InsPs), regulates the actions of these polyphosphates upon bioenergetic homeostasis. In the current study, we describe, at an atomic level, hitherto unknown properties of human DIPP1.We provide X-ray analysis of the catalytic core of DIPP1 in crystals complexed with either natural PP-InsPs, alternative PP-InsP stereoisomers, or non-hydrolysable methylene bisphosphonate analogs ("PCP-InsPs"). The conclusions that we draw from these data are interrogated by studying the impact upon catalytic activity upon mutagenesis of certain key residues. We present a picture of a V-shaped catalytic furrow with overhanging ridges constructed from flexible positively charged side chains; within this cavity, the labile phosphoanhydride bond is appropriately positioned at the catalytic site by an extensive series of interlocking polar contacts which we analogize as "suspension cables." We demonstrate functionality for a triglycine peptide within a β-strand which represents a non-canonical addition to the standard Nudix catalytic core structure. We describe pre-reaction enzyme/substrate states which we posit to reflect a role for electrostatic steering in substrate capture. Finally, through time-resolved analysis, we uncover a chronological sequence of DIPP1/product post-reaction states, one of which may rationalize a role for InsP6 as an inhibitor of catalytic activity.

Articles - 6wob mentioned but not cited (1)

  1. New structural insights reveal an expanded reaction cycle for inositol pyrophosphate hydrolysis by human DIPP1. Zong G, Jork N, Hostachy S, Fiedler D, Jessen HJ, Shears SB, Wang H. FASEB J 35 e21275 (2021)


Articles citing this publication (8)

  1. Development of Novel IP6K Inhibitors for the Treatment of Obesity and Obesity-Induced Metabolic Dysfunctions. Zhou Y, Mukherjee S, Huang D, Chakraborty M, Gu C, Zong G, Stashko MA, Pearce KH, Shears SB, Chakraborty A, Wang H, Wang X. J Med Chem 65 6869-6887 (2022)
  2. Structural and catalytic analyses of the InsP6 kinase activities of higher plant ITPKs. Zong G, Shears SB, Wang H. FASEB J 36 e22380 (2022)
  3. Duf89 abets lncRNA control of fission yeast phosphate homeostasis via its antagonism of precocious lncRNA transcription termination. Sanchez AM, Garg A, Schwer B, Shuman S. RNA 29 808-825 (2023)
  4. Fluorination Influences the Bioisostery of Myo-Inositol Pyrophosphate Analogs. Hostachy S, Wang H, Zong G, Franke K, Riley AM, Schmieder P, Potter BVL, Shears SB, Fiedler D. Chemistry 29 e202302426 (2023)
  5. Inositol Pyrophosphate-Controlled Kinetochore Architecture and Mitotic Entry in S. pombe. Kuenzel NA, Alcázar-Román AR, Saiardi A, Bartsch SM, Daunaraviciute S, Fiedler D, Fleig U. J Fungi (Basel) 8 933 (2022)
  6. Inositol pyrophosphate dynamics reveals control of the yeast phosphate starvation program through 1,5-IP8 and the SPX domain of Pho81. Chabert V, Kim GD, Qiu D, Liu G, Michaillat Mayer L, Jamsheer K M, Jessen HJ, Mayer A. Elife 12 RP87956 (2023)
  7. Activities, substrate specificity, and genetic interactions of fission yeast Siw14, a cysteinyl-phosphatase-type inositol pyrophosphatase. Sanchez AM, Schwer B, Jork N, Jessen HJ, Shuman S. mBio 14 e0205623 (2023)
  8. Biochemical and structural characterization of an inositol pyrophosphate kinase from a giant virus. Zong G, Desfougères Y, Portela-Torres P, Kwon YU, Saiardi A, Shears SB, Wang H. EMBO J 43 462-480 (2024)