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Featured researches published by Joseph J. Villafranca.


Journal of Biological Chemistry | 1999

Competitive, Reversible Inhibition of Cytosolic Phospholipase A2 at the Lipid-Water Interface by Choline Derivatives That Partially Partition into the Phospholipid Bilayer

James R. Burke; Mark R. Witmer; F. Christopher Zusi; Kurt R. Gregor; Lynda B. Davern; Ramesh Padmanabha; R. Thomas Swann; Daniel Smith; Jeffrey Tredup; Radmila Micanovic; Susan P. Manly; Joseph J. Villafranca; Kenneth M. Tramposch

Cytosolic phospholipase A2 (cPLA2) catalyzes the selective release of arachidonic acid from the sn-2 position of phospholipids and is believed to play a key cellular role in the generation of arachidonic acid. When assaying the human recombinant cPLA2 using membranes isolated from [3H]arachidonate-labeled U937 cells as substrate, 2-(2′-benzyl-4-chlorophenoxy)ethyl-dimethyl-n-octadecyl-ammonium chloride (compound 1) was found to inhibit the enzyme in a dose-dependent manner (IC50 = 5 μm). It was over 70 times more selective for the cPLA2 as compared with the human nonpancreatic secreted phospholipase A2, and it did not inhibit other phospholipases. Additionally, it inhibited arachidonate production inN-formyl-methionyl-leucyl-phenylalanine-stimulated U937 cells. To further characterize the mechanism of inhibition, an assay in which the enzyme is bound to vesicles of 1,2-dimyristoyl-sn-glycero-3-phosphomethanol containing 6–10 mol % of 1-palmitoyl-2-[1-14C]arachidonoyl-sn-glycero-3-phosphocholine was employed. With this substrate system, the dose-dependent inhibition could be defined by kinetic equations describing competitive inhibition at the lipid-water interface. The apparent equilibrium dissociation constant for the inhibitor bound to the enzyme at the interface (K I *app) was determined to be 0.097 ± 0.032 mol % versus an apparent dissociation constant for the arachidonate-containing phospholipid of 0.3 ± 0.1 mol %. Thus, compound 1 represents a novel structural class of inhibitor of cPLA2 that partitions into the phospholipid bilayer and competes with the phospholipid substrate for the active site. Shorter n-alkyl-chained (C-4, C-6, C-8) derivatives of compound 1 were shown to have even smallerK I *app values. However, these short-chained analogs were less potent in terms of bulk inhibitor concentration needed for inhibition when using the [3H]arachidonate-labeled U937 membranes as substrate. This discrepancy was reconciled by showing that these shorter-chained analogs did not partition into the [3H]arachidonate-labeled U937 membranes as effectively as compound 1. The implications for in vivo efficacy that result from these findings are discussed.


Journal of Biological Chemistry | 1971

Heptulose Synthesis from Nonphosphorylated Aldoses and Ketoses by Spinach Transketolase

Joseph J. Villafranca; Bernard Axelrod


Journal of Biological Chemistry | 1971

The Mechanism of Aconitase Action I. PREPARATION, PHYSICAL PROPERTIES OF THE ENZYME, AND ACTIVATION BY IRON(II)

Joseph J. Villafranca; Albert S. Mildvan


Journal of Biological Chemistry | 1974

Magnetic Resonance Studies of Manganese (III) and Iron(III) Superoxide Dismutases TEMPERATURE AND FREQUENCY DEPENDENCE OF PROTON RELAXATION RATES OF WATER

Joseph J. Villafranca; Fred J. Yost; Irwin Fridovich


Journal of Biological Chemistry | 1972

The Mechanism of Aconitase Action III. DETECTION AND PROPERTIES OF ENZYME-METAL-SUBSTRATE AND ENZYME-METAL-INHIBITOR BRIDGE COMPLEXES WITH MANGANESE(II) AND IRON(II)

Joseph J. Villafranca; Albert S. Mildvan


Protein Science | 1996

Kinetic and crystallographic studies of Escherichia coli UDP-N-acetylmuramate:L-alanine ligase

John J. Emanuele; Haiyong Jin; Bruce L. Jacobson; Chiehying Y. Chang; Howard Einspahr; Joseph J. Villafranca


Journal of Biological Chemistry | 1972

Role of Metal Ions in Reactions Catalyzed by Pig Heart Triphosphopyridine Nucleotide-dependent Isocitrate Dehydrogenase I. MAGNETIC RESONANCE AND BINDING STUDIES OF THE COMPLEXES OF ENZYME, MANGANOUS ION, AND SUBSTRATES

Joseph J. Villafranca; Roberta F. Colman


Journal of Biological Chemistry | 1971

The Mechanism of Aconitase Action II. MAGNETIC RESONANCE STUDIES OF THE COMPLEXES OF ENZYME, MANGANESE(II), IRON(II), AND SUBSTRATES

Joseph J. Villafranca; Albert S. Mildvan


Journal of Biological Chemistry | 1974

The Mechanism of Aconitase Action EVIDENCE FOR AN ENZYME ISOMERIZATION BY STUDIES OF INHIBITION BY TRICARBOXYLIC ACIDS

Joseph J. Villafranca


Protein Science | 1996

Investigating the effects of posttranslational adenylylation on the metal binding sites of Escherichia coli glutamine synthetase using lanthanide luminescence spectroscopy

Luis P. Reynaldo; Joseph J. Villafranca; William DeW. Horrocks

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