Literature DB >> 15248756

Inhibitor coordination interactions in the binuclear manganese cluster of arginase.

Evis Cama1, Stéphanie Pethe, Jean-Luc Boucher, Shoufa Han, Frances A Emig, David E Ash, Ronald E Viola, Daniel Mansuy, David W Christianson.   

Abstract

Arginase is a manganese metalloenzyme that catalyzes the hydrolysis of L-arginine to form L-ornithine and urea. The structure and stability of the binuclear manganese cluster are critical for catalytic activity as it activates the catalytic nucleophile, metal-bridging hydroxide ion, and stabilizes the tetrahedral intermediate and its flanking states. Here, we report X-ray structures of a series of inhibitors bound to the active site of arginase, and each inhibitor exploits a different mode of coordination with the Mn(2+)(2) cluster. Specifically, we have studied the binding of fluoride ion (F(-); an uncompetitive inhibitor) and L-arginine, L-valine, dinor-N(omega)-hydroxy-L-arginine, descarboxy-nor-N(omega)-hydroxy-L-arginine, and dehydro-2(S)-amino-6-boronohexanoic acid. Some inhibitors, such as fluoride ion, dinor-N(omega)-hydroxy-L-arginine, and dehydro-2(S)-amino-6-boronohexanoic acid, cause the net addition of one ligand to the Mn(2+)(2) cluster. Other inhibitors, such as descarboxy-nor-N(omega)-hydroxy-L-arginine, simply displace the metal-bridging hydroxide ion of the native enzyme and do not cause any net change in the metal coordination polyhedra. The highest affinity inhibitors displace the metal-bridging hydroxide ion (and sometimes occupy a Mn(2+)(A) site found vacant in the native enzyme) and maintain a conserved array of hydrogen bonds with their alpha-amino and -carboxylate groups.

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Year:  2004        PMID: 15248756     DOI: 10.1021/bi0491705

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  16 in total

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Review 3.  The versatility of boron in biological target engagement.

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5.  Inhibition of human arginase I by substrate and product analogues.

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6.  In silico design and in vitro assessment of anti-Helicobacter pylori compounds as potential small-molecule arginase inhibitors.

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7.  Impact of substrate protonation and tautomerization states on interactions with the active site of arginase I.

Authors:  Shanthi Nagagarajan; Fengtian Xue; Alexander D MacKerell
Journal:  J Chem Inf Model       Date:  2013-01-31       Impact factor: 4.956

Review 8.  Arginine depriving enzymes: applications as emerging therapeutics in cancer treatment.

Authors:  Neha Kumari; Saurabh Bansal
Journal:  Cancer Chemother Pharmacol       Date:  2021-07-26       Impact factor: 3.333

9.  Comparative investigation of the reaction mechanisms of the organophosphate-degrading phosphotriesterases from Agrobacterium radiobacter (OpdA) and Pseudomonas diminuta (OPH).

Authors:  Marcelo M Pedroso; Fernanda Ely; Nataša Mitić; Margaret C Carpenter; Lawrence R Gahan; Dean E Wilcox; James L Larrabee; David L Ollis; Gerhard Schenk
Journal:  J Biol Inorg Chem       Date:  2014-08-08       Impact factor: 3.358

10.  Binding of the unreactive substrate analog L-2-amino-3-guanidinopropionic acid (dinor-L-arginine) to human arginase I.

Authors:  Edward L D'Antonio; David W Christianson
Journal:  Acta Crystallogr Sect F Struct Biol Cryst Commun       Date:  2012-07-27
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