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Quantification of Monocyte Chemotactic Activity In Vivo and Characterization of Blood Monocyte Derived Macrophages
Published on: August 12, 2019
Modulation of alveolar macrophage-derived 5-lipoxygenase products by the sulfhydryl reactant, N-ethylmaleimide
Abstract:
The sulfhydryl reactant N-ethylmaleimide (NEM) stimulates the release and cyclooxygenase metabolism of arachidonic acid in rat alveolar macrophages. Because both 5-lipoxygenation and leukotriene (LT) C4 synthesis represent sulfhydryl-dependent steps in the 5-lipoxygenase pathway, we examined the effect of NEM on 5-lipoxygenase, as well as cyclooxygenase, metabolism in resting and agonist-stimulated cells by reverse-phase high performance liquid chromatography and radioimmunoassay. NEM at 5-10 microM stimulated the synthesis of thromboxane, but not prostaglandin E2 or the 5-lipoxygenase products LTC4, LTB4, or 5-hydroxyeicosatetraenoic acid from endogenously released arachidonate. In the presence of exogenous fatty acid, however, NEM stimulated the synthesis of large quantities of LTB4. The effect of NEM on arachidonate metabolism stimulated by the calcium ionophore A23187 and the particulate zymosan was also investigated. NEM augmented arachidonate release and thromboxane synthesis stimulated by A23187 but inhibited A23187-induced LTC4 synthesis with an IC50 of approximately 4.3 microM. This inhibitory effect closely paralleled the ability of NEM to deplete intracellular glutathione (IC50 approximately 4.3 microM). Preincubation with the intracellular cysteine delivery agent L-2-oxothiazolidine-4-carboxylate augmented intracellular glutathione concentration and A23187-stimulated LTC4 synthesis and attenuated the capacity of NEM to deplete glutathione and inhibit LTC4 synthesis. While LTB4 and 5-hydroxyeicosatetraenoic synthesis were unaffected at these low NEM concentrations, LTB4 synthesis was inhibited at high concentrations (IC50 approximately 210 microM). Zymosan-induced eicosanoid synthesis was modulated by NEM in a similar fashion. Thus, NEM is an agonist of arachidonate metabolism with the capacity to modulate the spectrum of macrophage-derived eicosanoids by virtue of specific biochemical interactions with substrates and enzymes of the 5-lipoxygenase pathway.
Insights
N-ethylmaleimide (NEM) affects arachidonic acid metabolism in rat macrophages. It stimulates thromboxane but inhibits leukotriene C4 synthesis, impacting eicosanoid pathways.
Area of Science:
- Biochemistry
- Immunology
- Cell Biology
Background:
- Arachidonic acid metabolism is crucial for inflammatory responses.
- The 5-lipoxygenase pathway involves sulfhydryl-dependent steps.
- N-ethylmaleimide (NEM) is a sulfhydryl reactant.
Purpose of the Study:
- To investigate the effect of NEM on 5-lipoxygenase and cyclooxygenase metabolism in rat alveolar macrophages.
- To determine how NEM modulates eicosanoid synthesis in resting and stimulated cells.
Main Methods:
- Reverse-phase high-performance liquid chromatography (HPLC) and radioimmunoassay were used.
- Experiments involved endogenous and exogenous arachidonic acid.
- Cellular responses were studied with calcium ionophore A23187 and zymosan stimulation.
Main Results:
- NEM (5-10 microM) stimulated thromboxane synthesis but not prostaglandin E2 or 5-lipoxygenase products from endogenous arachidonate.
- NEM stimulated LTB4 synthesis from exogenous fatty acids.
- NEM augmented A23187-stimulated thromboxane release but inhibited LTC4 synthesis, correlating with glutathione depletion.
- High NEM concentrations inhibited LTB4 synthesis.
Conclusions:
- N-ethylmaleimide acts as an agonist of arachidonic acid metabolism in macrophages.
- NEM modulates the spectrum of macrophage-derived eicosanoids through specific biochemical interactions.
- NEM's effects are linked to its interaction with sulfhydryl-dependent enzymes and substrates in inflammatory pathways.

