2gcq Citations

Cavitation as a mechanism of substrate discrimination by adenylosuccinate synthetases.

Biochemistry 45 11703-11 (2006)
Cited: 7 times
EuropePMC logo PMID: 16981730

Abstract

Adenylosuccinate synthetase catalyzes the first committed step in the de novo biosynthesis of AMP, coupling L-aspartate and IMP to form adenylosuccinate. Km values of IMP and 2'-deoxy-IMP are nearly identical with each substrate supporting comparable maximal velocities. Nonetheless, the Km value for L-aspartate and the Ki value for hadacidin (a competitive inhibitor with respect to L-aspartate) are 29-57-fold lower in the presence of IMP than in the presence of 2'-deoxy-IMP. Crystal structures of the synthetase ligated with hadacidin, GDP, and either 6-phosphoryl-IMP or 2'-deoxy-6-phosphoryl-IMP are identical except for the presence of a cavity normally occupied by the 2'-hydroxyl group of IMP. In the presence of 6-phosphoryl-IMP and GDP (hadacidin absent), the L-aspartate pocket can retain its fully ligated conformation, forming hydrogen bonds between the 2'-hydroxyl group of IMP and sequence-invariant residues. In the presence of 2'-deoxy-6-phosphoryl-IMP and GDP, however, the L-aspartate pocket is poorly ordered. The absence of the 2'-hydroxyl group of the deoxyribonucleotide may destabilize binding of the ligand to the L-aspartate pocket by disrupting hydrogen bonds that maintain a favorable protein conformation and by the introduction of a cavity into the fully ligated active site. At an approximate energy cost of 2.2 kcal/mol, the unfavorable thermodynamics of cavity formation may be the major factor in destabilizing ligands at the L-aspartate pocket.

Articles - 2gcq mentioned but not cited (3)

  1. Characterization of a triad of genes in cyanophage S-2L sufficient to replace adenine by 2-aminoadenine in bacterial DNA. Czernecki D, Bonhomme F, Kaminski PA, Delarue M. Nat Commun 12 4710 (2021)
  2. Stochastic protein multimerization, activity, and fitness. Hagner K, Setayeshgar S, Lynch M. Phys Rev E 98 062401 (2018)
  3. Cavitation as a mechanism of substrate discrimination by adenylosuccinate synthetases. Iancu CV, Zhou Y, Borza T, Fromm HJ, Honzatko RB. Biochemistry 45 11703-11711 (2006)


Reviews citing this publication (1)

  1. Mechanisms supporting aminoadenine-based viral DNA genomes. Kaminski PA. Cell Mol Life Sci 79 51 (2021)

Articles citing this publication (3)

  1. In the quest for new targets for pathogen eradication: the adenylosuccinate synthetase from the bacterium Helicobacter pylori. Bubić A, Mrnjavac N, Stuparević I, Łyczek M, Wielgus-Kutrowska B, Bzowska A, Luić M, Leščić Ašler I. J Enzyme Inhib Med Chem 33 1405-1414 (2018)
  2. Synthesis of inosine 6-phosphate diesters via phosphitylation of the carbonyl oxygen. Oka N, Morita Y, Itakura Y, Ando K. Chem Commun (Camb) 49 11503-11505 (2013)
  3. A comprehensive method for determining cellular uptake of purine nucleoside phosphorylase and adenylosuccinate synthetase inhibitors by H. pylori. Wojtyś MI, Jaźwiec R, Kazazić S, Leščić Ašler I, Knežević P, Aleksić Sabo V, Luić M, Jagusztyn-Krynicka EK, Bzowska A. Appl Microbiol Biotechnol 105 7949-7967 (2021)