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Crystal Structures of Carbamate Kinase from Giardia lamblia Bound with Citric Acid and AMP-PNP

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Title
Crystal Structures of Carbamate Kinase from Giardia lamblia Bound with Citric Acid and AMP-PNP
Published in
PLOS ONE, May 2013
DOI 10.1371/journal.pone.0064004
Pubmed ID
Authors

Kap Lim, Liudmila Kulakova, Andrey Galkin, Osnat Herzberg

Abstract

The parasite Giardia lamblia utilizes the L-arginine dihydrolase pathway to generate ATP from L-arginine. Carbamate kinase (CK) catalyzes the last step in this pathway, converting ADP and carbamoyl phosphate to ATP and ammonium carbamate. Because the L-arginine pathway is essential for G. lamblia survival and absent in high eukaryotes including humans, the enzyme is a potential target for drug development. We have determined two crystal structures of G. lamblia CK (glCK) with bound ligands. One structure, in complex with a nonhydrolyzable ATP analog, adenosine 5'-adenylyl-β,γ-imidodiphosphate (AMP-PNP), was determined at 2.6 Å resolution. The second structure, in complex with citric acid bound in the postulated carbamoyl phosphate binding site, was determined in two slightly different states at 2.1 and 2.4 Å resolution. These structures reveal conformational flexibility of an auxiliary domain (amino acid residues 123-170), which exhibits open or closed conformations or structural disorder, depending on the bound ligand. The structures also reveal a smaller conformational change in a region associated the AMP-PNP adenine binding site. The protein residues involved in binding, together with a model of the transition state, suggest that catalysis follows an in-line, predominantly dissociative, phosphotransfer reaction mechanism, and that closure of the flexible auxiliary domain is required to protect the transition state from bulk solvent.

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Geographical breakdown

Country Count As %
United States 1 5%
Unknown 19 95%

Demographic breakdown

Readers by professional status Count As %
Student > Bachelor 11 55%
Student > Ph. D. Student 3 15%
Researcher 3 15%
Professor > Associate Professor 1 5%
Unknown 2 10%
Readers by discipline Count As %
Biochemistry, Genetics and Molecular Biology 7 35%
Agricultural and Biological Sciences 5 25%
Chemistry 4 20%
Social Sciences 1 5%
Philosophy 1 5%
Other 0 0%
Unknown 2 10%