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Published on: November 23, 2019
A Thermostable Class III Phosphoribosyl Pyrophosphate Synthetase from Pyrolobus fumarii 1A: Characterization and
Jingfei Wu1, Tananori Akiyama2, Yasuhisa Asano1
1Biotechnology Research Center and Department of Biotechnology, Toyama Prefectural University, 5180 Kurokawa, Imizu, Toyama, 939-0398, Japan.
Abstract:
Phosphoribosyl pyrophosphate (PRPP) functions as a central metabolic intermediate, supplying ribose-5-phosphate moieties for the biosynthesis of nucleotides, certain amino acids, and a range of essential cofactors. In this study, a thermostable phosphoribosyl pyrophosphate synthetase (PfPRS) was identified from the hyper thermophilic archaeon Pyrolobus fumarii 1A, a hyper thermophilic archaeon that grows optimally at 90-113 °C. The prs gene was heterologously expressed in Escherichia coli, and the recombinant enzyme was purified and characterized. Peak catalytic activity of PfPRS was observed at approximately pH 7.5 and 55 °C and retained over 85% of its activity after 2 h of incubation across pH 4.0-10.5. PfPRS exhibited high thermal stability. The enzyme exhibited half-lives of 12 h at 90 °C, 5 h at 95 °C, and 3 h at 100 °C. Among the nucleotides tested as diphosphate donors, PfPRS showed a strong preference for ATP, whereas ADP served as an effective inhibitor. Kinetic analysis revealed Km values of 35 µM for R5P and 46 µM for ATP, with turnover rates (kcat) of 71 s-1 and 56 s-1. PfPRS was co-immobilized with polyphosphate kinase 2 (DrPPK2) from Deinococcus radiodurans using a cross-linked enzyme aggregate (CLEA) system to enable ATP regeneration and to explore the feasibility of using PfPRS for PRPP biosynthesis.
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