The Kinetic Properties of a Human PPIP5K Reveal That Its Kinase Activities Are Protected Against the Consequences of a Deteriorating Cellular Bioenergetic Environment
Overview
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We obtained detailed kinetic characteristics--stoichiometry, reaction rates, substrate affinities and equilibrium conditions--of human PPIP5K2 (diphosphoinositol pentakisphosphate kinase 2). This enzyme synthesizes 'high-energy' PP-InsPs (diphosphoinositol polyphosphates) by metabolizing InsP₆ (inositol hexakisphosphate) and 5-InsP₇ (5-diphosphoinositol 1,2,3,4,6-pentakisphosphate) to 1-InsP₇ (1-diphosphoinositol 2,3,4,5,6-pentakisphosphate) and InsP₈ (1,5-bis-diphosphoinositol 2,3,4,6-tetrakisphosphate), respectively. These data increase our insight into the PPIP5K2 reaction mechanism and clarify the interface between PPIP5K catalytic activities and cellular bioenergetic status. For example, stochiometric analysis uncovered non-productive, substrate-stimulated ATPase activity (thus, approximately 2 and 1.2 ATP molecules are utilized to synthesize each molecule of 1-InsP₇ and InsP₈, respectively). Impaired ATPase activity of a PPIP5K2-K248A mutant increased atomic-level insight into the enzyme's reaction mechanism. We found PPIP5K2 to be fully reversible as an ATP-synthase in vitro, but our new data contradict previous perceptions that significant 'reversibility' occurs in vivo. PPIP5K2 was insensitive to physiological changes in either [AMP] or [ATP]/[ADP] ratios. Those data, together with adenine nucleotide kinetics (ATP Km=20-40 μM), reveal how insulated PPIP5K2 is from cellular bioenergetic challenges. Finally, the specificity constants for PPIP5K2 revise upwards by one-to-two orders of magnitude the inherent catalytic activities of this enzyme, and we show its equilibrium point favours 80-90% depletion of InsP₆/₅-InsP₇.
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Raia P, Lee K, Bartsch S, Rico-Resendiz F, Portugal-Calisto D, Vadas O Nat Commun. 2025; 16(1):1753.
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Hamid A, Ladke J, Shah A, Ganguli S, Pal M, Singh A Biosci Rep. 2024; 44(10).
PMID: 39230924 PMC: 11461180. DOI: 10.1042/BSR20240792.
Crystal Structure and Enzymology of Inositol Tris/Tetrakisphosphate Kinase 1 (ITPK1).
Whitfield H, Rodriguez R, Shipton M, Li A, Riley A, Potter B Biochemistry. 2023; 63(1):42-52.
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Qi J, Shi L, Zhu L, Chen Y, Zhu H, Cheng W J Cardiovasc Transl Res. 2023; 17(1):197-215.
PMID: 37615888 DOI: 10.1007/s12265-023-10427-0.
Metabolic Consequences of Polyphosphate Synthesis and Imminent Phosphate Limitation.
Kim G, Qiu D, Jessen H, Mayer A mBio. 2023; 14(3):e0010223.
PMID: 37074217 PMC: 10294617. DOI: 10.1128/mbio.00102-23.