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Human uridine 5′-monophosphate synthase stores metabolic potential in inactive biomolecular condensates
Authors:Deborah M. Kim-Holzapfel  Raja Dey  Brian C. Richardson  Danushka Arachchige  Kanamata Reddy  Humberto De Vitto  Janarjan Bhandari  Jarrod B. French
Affiliation:1.Department of Biochemistry and Cell Biology, Stony Brook University, Stony Brook, New York, USA;2.Molecular and Cellular Biology PhD Program, Stony Brook University, Stony Brook, New York, USA;3.The Hormel Institute, University of Minnesota, Austin, Minnesota, USA
Abstract:Human uridine 5′-monophosphate synthase (HsUMPS) is a bifunctional enzyme that catalyzes the final two steps in de novo pyrimidine biosynthesis. The individual orotate phosphoribosyl transferase and orotidine monophosphate domains have been well characterized, but little is known about the overall structure of the protein and how the organization of domains impacts function. Using a combination of chromatography, electron microscopy, and complementary biophysical methods, we report herein that HsUMPS can be observed in two structurally distinct states, an enzymatically active dimeric form and a nonactive multimeric form. These two states readily interconvert to reach an equilibrium that is sensitive to perturbations of the active site and the presence of substrate. We determined that the smaller molecular weight form of HsUMPS is an S-shaped dimer that can self-assemble into relatively well-ordered globular condensates. Our analysis suggests that the transition between dimer and multimer is driven primarily by oligomerization of the orotate phosphoribosyl transferase domain. While the cellular distribution of HsUMPS is unaffected, quantification by mass spectrometry revealed that de novo pyrimidine biosynthesis is dysregulated when this protein is unable to assemble into inactive condensates. Taken together, our data suggest that HsUMPS self-assembles into biomolecular condensates as a means to store metabolic potential for the regulation of metabolic rates.
Keywords:Nucleotide metabolism   mesoscale assembly   membraneless organelles   metabolic potential   pyrimidines   purinosome
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