Phospholipase A2 (PLA2) plays a central role in membrane phospholipid homeostasis, phospholipid remodeling, and general phospholipid metabolism. This enzyme also catalyzes the release of arachidonic acid, the key first step in the biosynthesis of the eicosanoids, including prostaglandins and leukotrienes. PLA2 is also implicated in signal transduction. We have performed extensive studies in the past with the PLA2 from cobra venom (N. naja naja) and have used this enzyme as a model for investigating enzyme-lipid interactions. We now plan to apply these same approaches to studying the newly discovered mammalian cellular PLA2s. This research proposal focuses on characterizing novel cellular PLA2s and also continues our studies on lipid hydrolysis with the cobra venom PLA2. In particular, we will investigate a novel Ca2+-independent PLA2 from the mouse macrophage-like cell line, P388D1. These studies will include kinetic characterization and an investigation into the regulation of this enzyme by ATP and by enzyme oligomerization. We also plan to sequence and clone this enzyme. We will determine the expression levels of three low molecular weight PLA2s in P388D1 cells. Two of these enzymes are novel low molecular weight PLA2s which we will express and characterize, one with 16-Cys residues (Group IIC) and one with 12-Cys residues (Group V). We will continue our investigation of lipolytic enzyme hydrolysis with cobra venom PLA2 and will extend these studies to include various mammalian PLA2s where appropriate. These studies will include investigation of interfacial activation and lipid activation and will help to determine the overall rate-limiting step of PLA2 action.
These aims will be accomplished by a combination of kinetic analysis, equilibrium dialysis, heavy atom isotope studies, and site-directed mutagenesis.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM020501-24
Application #
2838438
Study Section
Physiological Chemistry Study Section (PC)
Project Start
1977-06-01
Project End
1999-11-30
Budget Start
1998-12-01
Budget End
1999-11-30
Support Year
24
Fiscal Year
1999
Total Cost
Indirect Cost
Name
University of California San Diego
Department
Chemistry
Type
Schools of Arts and Sciences
DUNS #
077758407
City
La Jolla
State
CA
Country
United States
Zip Code
92093
Burla, Bo; Arita, Makoto; Arita, Masanori et al. (2018) MS-based lipidomics of human blood plasma: a community-initiated position paper to develop accepted guidelines. J Lipid Res 59:2001-2017
Psarra, Anastasia; Kokotou, Maroula G; Galiatsatou, Gerasimia et al. (2018) Highly Potent 2-Oxoester Inhibitors of Cytosolic Phospholipase A2 (GIVA cPLA2). ACS Omega 3:8843-8853
Vasquez, Alexis M; Mouchlis, Varnavas D; Dennis, Edward A (2018) Review of four major distinct types of human phospholipase A2. Adv Biol Regul 67:212-218
Quehenberger, Oswald; Dahlberg-Wright, Signe; Jiang, Jiang et al. (2018) Quantitative determination of esterified eicosanoids and related oxygenated metabolites after base hydrolysis. J Lipid Res 59:2436-2445
Gregus, Ann M; Buczynski, Matthew W; Dumlao, Darren S et al. (2018) Inhibition of spinal 15-LOX-1 attenuates TLR4-dependent, nonsteroidal anti-inflammatory drug-unresponsive hyperalgesia in male rats. Pain 159:2620-2629
Navratil, Aaron R; Shchepinov, Mikhail S; Dennis, Edward A (2018) Lipidomics Reveals Dramatic Physiological Kinetic Isotope Effects during the Enzymatic Oxygenation of Polyunsaturated Fatty Acids Ex Vivo. J Am Chem Soc 140:235-243
Mouchlis, Varnavas D; Chen, Yuan; McCammon, J Andrew et al. (2018) Membrane Allostery and Unique Hydrophobic Sites Promote Enzyme Substrate Specificity. J Am Chem Soc 140:3285-3291
Chandra, Vikas; Wu, Dalei; Li, Sheng et al. (2017) The quaternary architecture of RAR?-RXR? heterodimer facilitates domain-domain signal transmission. Nat Commun 8:868
Kokotou, Maroula G; Galiatsatou, Gerasimia; Magrioti, Victoria et al. (2017) 2-Oxoesters: A Novel Class of Potent and Selective Inhibitors of Cytosolic Group IVA Phospholipase A2. Sci Rep 7:7025
Tseng, Roger; Goularte, Nicolette F; Chavan, Archana et al. (2017) Structural basis of the day-night transition in a bacterial circadian clock. Science 355:1174-1180

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