AI Article Synopsis

  • Glutamine amidotransferases (GATs) are enzymes that break down glutamine and transfer the resulting ammonia to various metabolites through two distinct catalytic actions connected by a channel.
  • The GAT GMP synthetase (GMPS) is involved in the conversion of xanthosine monophosphate (XMP) into guanosine monophosphate (GMP), with structural studies helping to illustrate the ammonia transfer process.
  • This review summarizes the latest insights into GMPS's molecular function, highlighting how the structure of a glutamine-bound mutant has advanced our understanding of its catalytic mechanisms.

Article Abstract

Glutamine amidotransferases (GATs) catalyze the hydrolysis of glutamine and transfer the generated ammonia to diverse metabolites. The two catalytic activities, glutaminolysis and the subsequent amination of the acceptor substrate, happen in two distinct catalytic pockets connected by a channel that facilitates the movement of ammonia. The pathway for the synthesis of guanosine monophosphate (GMP) from xanthosine monophosphate (XMP) is enabled by the GAT GMP synthetase (GMPS). In most available crystal structures of GATs, the ammonia channel is evident in their native state or upon ligand binding, providing molecular details of the conduit. In addition, conformational changes that enable the coordination of the two catalytic chemistries are also informed by the available structures. In contrast, despite the first structure of a GMPS being published in 1996, the understanding of catalysis in the acceptor domain and inter-domain crosstalk became possible only after the structure of a glutamine-bound mutant of GMPS was determined. In this review, we present the current status of our understanding of the molecular basis of catalysis in GMPS, becoming the first comprehensive assessment of the biochemical function of this intriguing enzyme.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10526850PMC
http://dx.doi.org/10.3390/biom13091379DOI Listing

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