Yara Gorzalczany
Tel Aviv University
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Publication
Featured researches published by Yara Gorzalczany.
Journal of Leukocyte Biology | 2006
Ariel Mizrahi; Yevgeny Berdichevsky; Yelena Ugolev; Shahar Molshanski-Mor; Yael Nakash; Iris Dahan; Nathalie Alloul; Yara Gorzalczany; Rive Sarfstein; Miriam Hirshberg; Edgar Pick
Phagocytes generate superoxide (O2.−) by an enzyme complex known as reduced nicotinamide adenine dinucleotide phosphate (NADPH) oxidase. Its catalytic component, responsible for the NADPH‐driven reduction of oxygen to O2.−, is flavocytochrome b559, located in the membrane and consisting of gp91phox and p22phox subunits. NADPH oxidase activation is initiated by the translocation to the membrane of the cytosolic components p47phox, p67phox, and the GTPase Rac. Cytochrome b559 is converted to an active form by the interaction of gp91phox with p67phox, leading to a conformational change in gp91phox and the induction of electron flow. We designed a new family of NADPH oxidase activators, represented by chimeras comprising various segments of p67phox and Rac1. The prototype chimera p67phox (1–212)‐Rac1 (1–192) is a potent activator in a cell‐free system, also containing membrane p47phox and an anionic amphiphile. Chimeras behave like bona fide GTPases and can be prenylated, and prenylated (p67phox‐Rac1) chimeras activate the oxidase in the absence of p47phox and amphiphile. Experiments involving truncations, mutagenesis, and supplementation with Rac1 demonstrated that the presence of intrachimeric bonds between the p67phox and Rac1 moieties is an absolute requirement for the ability to activate the oxidase. The presence or absence of intrachimeric bonds has a major impact on the conformation of the chimeras, as demonstrated by fluorescence resonance energy transfer, small angle X‐ray scattering, and gel filtration. Based on this, a “propagated wave” model of NADPH oxidase activation is proposed in which a conformational change initiated in Rac is propagated to p67phox and from p67phox to gp91phox.
Inflammation | 2003
Natalia Sigal; Yara Gorzalczany; Edgar Pick
The NADPH oxidase complex of phagocytes comprises a membrane-associated flavocytochrome b559, and 4 cytosolic components: p47phox, p67phox, p40phox, and the small GTPase Rac. Activation of the oxidase in vivo is the result of assembly of the cytosolic components with cytochrome b559 and is mimicked in vitro by a cell-free system consisting of membranes, p47phox, p67phox, nonprenylated or prenylated Rac, and an anionic amphiphile as activator (defined as “p47phox and amphiphile-dependent” or canonical pathway). We reported that prenylated Rac1 is capable of activating the NADPH oxidase in vitro in the absence of p47phox and amphiphile (defined as “p47phox and amphiphile-independent” pathway). We now demonstrate that the 2 pathways exhibit distinctive susceptibilities to inhibitors: 1) The anionic amphiphile lithium dodecyl sulfate, an activator of the canonical pathway, has the opposite effect (inhibition) on oxidase activation by prenylated Rac and p67phox; 2) GDP and, paradoxically, GTP (but not GMP, ATP, ADP, and AMP) prevent oxidase activation by the p47phox and amphiphile-independent pathway but do not affect activation by the canonical pathway; 3) The Rac-binding domain of p21-activated kinase is a potent inhibitor of activation by the p47phox and amphiphile-independent pathway while exerting a milder inhibitory effect on the canonical pathway; 4) The C-terminal polybasic Rac1 peptide 177–191 and the cationic antibiotic neomycin sulfate inhibit activation by the canonical pathway but do not affect activation by the p47phox and amphiphile-independent pathway; 5) Binding of prenylated Rac1 to membrane-mimicking phospholipid vesicles is, nevertheless, enhanced when these contain negatively charged lipids. It is proposed that preferential inhibition of oxidase activation, via the p47phox and amphiphile-independent pathway, is a reflection of interference by the inhibitors with Rac-dependent recruitment of p67phox to the membrane.
Journal of Biological Chemistry | 2000
Yara Gorzalczany; Natalia Sigal; Michal Itan; Ofra Lotan; Edgar Pick
Journal of Biological Chemistry | 2004
Rive Sarfstein; Yara Gorzalczany; Ariel Mizrahi; Yevgeny Berdichevsky; Shahar Molshanski-Mor; Carolyn Weinbaum; Miriam Hirshberg; Marie-Claire Dagher; Edgar Pick
Biochemistry | 1998
Amir Toporik; Yara Gorzalczany; Miriam Hirshberg; Edgar Pick; Ofra Lotan
Biochemistry | 2001
Nathalie Alloul; Yara Gorzalczany; Michal Itan; Natalia Sigal; Edgar Pick
Journal of Biological Chemistry | 1994
Gili Joseph; Yara Gorzalczany; Vasilij Koshkin; Edgar Pick
Journal of Biological Chemistry | 1998
Igor Morozov; Ofra Lotan; Gili Joseph; Yara Gorzalczany; Edgar Pick
FEBS Journal | 1993
Edgar Pick; Yara Gorzalczany; Sharon Engel
Archive | 2003
Natalia Sigal; Yara Gorzalczany; Rive Sarfstein; Carolyn Weinbaum; Yi Zheng; Edgar Pick; Julius Friedrich