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Analyzing the Functions of Mast Cells In Vivo Using 'Mast Cell Knock-in' Mice
Published on: May 27, 2015
Oxidative stress suppresses cysteinyl leukotriene generation by mouse bone marrow-derived mast cells
Ping He1, Tanya Laidlaw1, Akiko Maekawa1
1From the Division of Rheumatology, Immunology, and Allergy, Brigham and Women's Hospital, and Department of Medicine, Harvard Medical School, Boston, Massachusetts 02115.
Abstract:
Cysteinyl leukotrienes and oxidative stress have both been implicated in bronchial asthma; however, there is no previous study that focused on the ability of oxidative stress to alter cysteinyl leukotriene generation. In this study, treatment of bone marrow-derived mast cells with prostaglandin D(2) reduced their ability to generate leukotriene (LT) C(4) upon calcium ionophore stimulation but had little effect on LTB(4) generation. This effect could be reproduced by a selective agonist of the DP(2) receptor, 15R-methyl prostaglandin D(2) (15R-D(2)). 15R-D(2) dose-dependently inhibited LTC(4) generation with an IC(50) of 2 μM, and the effect was not altered by a DP(2)/thromboxane antagonist or by a peroxisome proliferator-activated receptor-γ antagonist. 15R-D(2) exerted its suppressive effect via a reduction in intracellular GSH, a mechanism that involved the conjugation of its non-enzymatic breakdown product to GSH. At 10 μM, 15R-D(2) reduced LTC(4) generation to 10%, intracellular GSH to 50%, and LTC(4) synthase (LTC(4)S) activity to 33.5% of untreated cells without altering immunoreactive LTC(4)S protein expression or 5-lipoxygenase activity. The effects of 15R-D(2) on LTC(4)S activity could be partially reversed by reducing reagent. The sulfhydryl-reactive oxidative agent diamide suppressed LTC(4)S activity and induced a reversible formation of covalent dimer LTC(4)S. LTC(4)S bearing a C56S mutation was resistant to the effect of diamide. Covalent dimer LTC(4)S was observed in nasal polyp biopsies, indicating that dimerization and inactivation of LTC(4)S can occur at the site of inflammation. These results suggest a cellular redox regulation of LTC(4)S function through a post-translational mechanism.
Insights
Oxidative stress regulates cysteinyl leukotriene generation in asthma. Prostaglandin D2 selectively inhibits leukotriene C4 production by reducing intracellular glutathione and inactivating LTC4 synthase via dimerization.
Area of Science:
- Immunology
- Biochemistry
- Respiratory Medicine
Background:
- Cysteinyl leukotrienes (LTs) and oxidative stress are implicated in bronchial asthma.
- The direct impact of oxidative stress on cysteinyl leukotriene generation remains unstudied.
Purpose of the Study:
- To investigate the role of oxidative stress in modulating cysteinyl leukotriene generation.
- To elucidate the mechanism by which prostaglandin D2 affects leukotriene C4 production in mast cells.
Main Methods:
- Treatment of bone marrow-derived mast cells with prostaglandin D2 (PGD2) and its selective DP2 receptor agonist, 15R-methyl prostaglandin D2 (15R-D2).
- Measurement of leukotriene C4 (LTC4) and leukotriene B4 (LTB4) generation, intracellular glutathione (GSH) levels, and LTC4 synthase (LTC4S) activity.
- Investigation of diamide-induced LTC4S dimerization and mutation studies (C56S) in vitro and analysis of nasal polyp biopsies.
Main Results:
- 15R-D2 dose-dependently inhibited LTC4 generation and LTC4S activity, but not LTB4 generation or LTC4S protein expression.
- The inhibitory effect involved a reduction in intracellular GSH and was linked to the conjugation of a PGD2 breakdown product with GSH.
- Oxidative stress (diamide) induced reversible covalent dimerization and inactivation of LTC4S, a modification observed in nasal polyp tissues.
Conclusions:
- Cellular redox regulation of LTC4 synthase function occurs via a post-translational mechanism, specifically through reversible dimerization.
- This redox-sensitive inactivation of LTC4S may contribute to the pathophysiology of inflammatory airway diseases like asthma.
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