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W G Yu

Publications and source records attributed to W G Yu.

26 records · Page 2Linked to original sources

Formation of monohydroxy derivatives of arachidonic acid, linoleic acid, and oleic acid during oxidation of low density lipoprotein by copper ions and endothelial cells.

An important event in the formation of atherosclerotic lesions is the uptake of modified low density lipoprotein (LDL) by macrophages via scavenger receptors. Modification of LDL, which results in its recognition by these receptors, can be initiated by peroxidation of LDL lipids. The first step in this process is the formation of monohydroperoxy derivatives of fatty acids, which are subsequently degraded to the corresponding monohydroxy compounds, or to a variety of secondary oxidation products. In order to understand this process more completely, we have developed a mass spectrometric procedure to measure the amounts of specific hydroperoxy/hydroxy fatty acids formed by oxidation of the major unsaturated fatty acids in human LDL, oleic acid, linoleic acid, and arachidonic acid. Oxidation of human LDL in the presence of a relatively strong stimulus (20 microM CuSO4) resulted in very large increases in the amounts of the major monohydroxy derivatives of linoleic acid (9- and 13-hydroxy derivatives) and arachidonic acid (5-, 8-, 9-, 11-, 12-, and 15-hydroxy derivatives) in LDL lipids in the early stages of the reaction. After 20 h, the amounts of these products declined due to substrate depletion, but large amounts of monohydroxy derivatives of oleic acid (8-, 10-, and 11-hydroxy derivatives) were detected. Although thiobarbituric acid-reactive substances clearly increased under these conditions, the changes were not nearly so dramatic as those observed for monohydroxy fatty acids. Oxidation of LDL in the presence of endothelial cells, a much milder stimulus, resulted in 2.5- to 3-fold increases in the amounts of monohydroxy derivatives of linoleic and arachidonic acids, as well as thiobarbituric acid-reactive substances, with more modest increases in the amounts of hydroxylated derivatives of oleic acid. There was little positional specificity in the oxidation of the above fatty acids in the presence of either stimulus, suggesting that the formation of these products proceeds primarily by lipid peroxidation, rather than by catalysis by lipoxygenases. However, an important role for lipoxygenases in the initiation of these reactions cannot be excluded. In conclusion, oxidation of LDL in the presence of copper ions or endothelial cells results in the formation of a large number of monohydroxy derivatives of oleic, linoleic, and arachidonic acids. The relative amounts of products formed from each of these fatty acids depends on the strength of the stimulus as well as the incubation time.

Arachidonic Acids↗

[Effect of sodium ferulate on arachidonic acid metabolism].

Sodium ferulate (SF) is one of the antiplatelet ingredients in Radix Angleica sinensis. The effect of SF on 14C-arachidonic acid metabolism in washed intact rabbit platelets was studied with radiochromatography and radioautography. SF (0.1-3.2 mmol/L) inhibited the generation of platelet thromboxane B2 in a dose-dependent manner (reduced by 16.7-93.8%) and the IC50 was shown to be 0.762 mmol/L. Simultaneously with the reduction of TXB2 generation, the formation of PGE2 and PGF2 alpha was also reduced significantly after treatment with SF. Using radioimmunoassay SF (0.145-2.32 mmol/L) was found to inhibit rabbit platelet TXB2 formation in a dose-dependent manner. SF (0.58-2.32 mmol/L) also suppressed aortic tissue 6-keto-PGF1 alpha generation in rabbits. At the same concentrations the inhibitory effect of SF on platelet TXB2 formation was greater than that on aortic tissue 6-keto-PGF1 alpha generation. These results indicate that the cyclo-oxygenase activity may be inhibited by SF.

6-Ketoprostaglandin F1 alpha↗

Thymic stromal cells eliminate T cells stimulated with antigen plus stromal Ia molecules through their cross-talk involving the production of interferon-gamma and nitric oxide.

We previously established a thymic stromal cell clone capable of inducing differentiation of immature thymocytes and described a clonal elimination model in which T cell clones are killed on the monolayer of this stromal clone by stimulation of their T cell receptors (TCR) with antigen plus stromal Ia molecules. This study investigated molecular mechanisms underlying this phenomenon. Antigenic stimulation on thymic stromal cells produced large amounts of interferon-gamma (IFN-gamma) and small amounts of tumor necrosis factor-alpha (TNF-alpha). Addition of anti-IFN-gamma monoclonal antibody (mAb) to these cultures largely prevented death of TCR-stimulated T cells. T cell death was also induced when cultures were treated with recombinant IFN-gamma (rIFN-gamma) or rTNF-alpha instead of the relevant antigen, showing that these lymphokines are involved in the process of T cell death. It was further demonstrated that these lymphokines, especially IFN-gamma, induced the expression of mRNA for the inducible type of nitric oxide (NO) synthase in thymic stromal cells and that enhanced levels of NO were produced by stromal cells cultures with T cells plus antigen or stimulated with rIFN-gamma or rTNF-alpha. NO was found to be critically responsible for inducing T cell death on the stromal cell monolayer following stimulation of T cells with antigen or of stromal cells with rIFN-gamma or rTNF-alpha, because T cells death was completely prevented by addition of NG-monomethyl-L-arginine (L-NMMA), which is capable of inhibiting NO production. These results indicate that elimination of TCR-stimulated T cells on thymic stromal monolayers with the capacity to support thymocyte differentiation is induced by the cross-talk between IFN-gamma/TNF-alpha-producing T cells and stromal cells capable of producing NO in response to these lymphokines.

Cell Communication↗