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ω-Alkynyl Lipid Surrogates for Polyunsaturated Fatty Acids: Free Radical and Enzymatic Oxidations

机译:多不饱和脂肪酸的ω-炔基脂质代用品:自由基和酶氧化

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摘要

Lipid and lipid metabolite profiling are important parameters in understanding the pathogenesis of many diseases. Alkynylated polyunsaturated fatty acids are potentially useful probes for tracking the fate of fatty acid metabolites. The nonenzymatic and enzymatic oxidations of ω-alkynyl linoleic acid and ω-alkynyl arachidonic acid were compared to that of linoleic and arachidonic acid. There was no detectable difference in the primary products of nonenzymatic oxidation, which comprised cis, trans-hydroxy fatty acids. Similar hydroxy fatty acid products were formed when ω-alkynyl linoleic acid and ω- alkynyl arachidonic acid were reacted with lipoxygenase enzymes that introduce oxygen at different positions in the carbon chains. The rates of oxidation of ω-alkynylated fatty acids were reduced compared to those of the natural fatty acids. Cydooxygenase-1 and -2 did not oxidize alkynyl linoleic but efficiently oxidized alkynyl arachidonic acid. The products were identified as alkynyl 11-hydroxy-eicosatetraenoic acid, alkynyl 11-hydroxy-8,9-epoxy-eicosatrienoic acid, and alkynyl prostaglandins. This deviation from the metabolic profile of arachidonic acid may limit the utility of alkynyl arachidonic acid in the tracking of cyclooxygenase-based lipid oxidation. The formation of alkynyl 11-hydroxy-8,9-epoxy-eicosatrienoic acid compared to alkynyl prostaglandins suggests that the ω-alkyne group causes a conformational change in the fatty acid bound to the enzyme, which reduces the efficiency of cyclization of dioxalanyl intermediates to endoperoxide intermediates. Overall, ω- alkynyl linoleic acid and ω-alkynyl arachidonic acid appear to be metabolically competent surrogates for tracking the fate of polyunsaturated fatty acids when looking at models involving autoxidation and oxidation by lipoxygenases.
机译:脂质和脂质代谢物谱是了解许多疾病发病机理的重要参数。炔基化多不饱和脂肪酸可能是用于追踪脂肪酸代谢产物命运的探针。比较了ω-炔基亚油酸和ω-炔基花生四烯酸的非酶促氧化和酶促氧化与亚油酸和花生四烯酸的非酶促氧化和酶促氧化。在非酶氧化的主要产物中没有可检测到的差异,主要产物是顺式,反式-羟基脂肪酸。当ω-炔基亚油酸和ω-炔基花生四烯酸与脂氧合酶反应时会形成相似的羟基脂肪酸产物,所述脂氧合酶将氧引入碳链的不同位置。与天然脂肪酸相比,ω-炔基化脂肪酸的氧化速率降低了。氧化加氧酶-1和-2不会氧化炔基亚油酸,但会有效氧化炔基花生四烯酸。产物被鉴定为炔基11-羟基-二十碳四烯酸,炔基11-羟基-8,9-环氧-二十碳三烯酸和炔基前列腺素。与花生四烯酸的代谢特征的这种偏离可能限制了炔基花生四烯酸在跟踪基于环加氧酶的脂质氧化中的效用。与炔基前列腺素相比,炔基11-羟基-8,9-环氧-二十碳三烯酸的形成表明ω-炔基导致与酶结合的脂肪酸的构象变化,从而降低了二氧丙氨酰基中间体环化成环的效率。内过氧化物中间体。总体而言,当观察涉及脂氧合酶的自氧化和氧化模型时,ω-炔基亚油酸和ω-炔基花生四烯酸似乎是代谢能力强的替代物,可追踪多不饱和脂肪酸的命运。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2014年第32期|11529-11539|共11页
  • 作者单位

    A.B. Hancock Memorial Laboratory for Cancer Research, Departments of Chemistry, Vanderbilt Institute for Chemical Biology, Vanderbilt Center in Molecular Toxicology, Vanderbilt Ingram Cancer Center, Vanderbilt University, Nashville, Tennessee 37235, United States;

    A.B. Hancock Memorial Laboratory for Cancer Research, Departments of Chemistry, Vanderbilt Institute for Chemical Biology, Vanderbilt Center in Molecular Toxicology, Vanderbilt Ingram Cancer Center, Vanderbilt University, Nashville, Tennessee 37235, United States, Department of Chemistry, Imperial College of London, South Kensington Campus, Exhibition Road, London SW7 2AZ, UK;

    A.B. Hancock Memorial Laboratory for Cancer Research, Departments of Biochemistry Vanderbilt Institute for Chemical Biology, Vanderbilt Center in Molecular Toxicology, Vanderbilt Ingram Cancer Center, Vanderbilt University, Nashville, Tennessee 37235, United States;

    A.B. Hancock Memorial Laboratory for Cancer Research, Departments of Chemistry, Vanderbilt Institute for Chemical Biology, Vanderbilt Center in Molecular Toxicology, Vanderbilt Ingram Cancer Center, Vanderbilt University, Nashville, Tennessee 37235, United States;

    A.B. Hancock Memorial Laboratory for Cancer Research, Departments of Chemistry, Vanderbilt Institute for Chemical Biology, Vanderbilt Center in Molecular Toxicology, Vanderbilt Ingram Cancer Center, Vanderbilt University, Nashville, Tennessee 37235, United States;

    A.B. Hancock Memorial Laboratory for Cancer Research, Departments of Pharmacology, Vanderbilt Institute for Chemical Biology, Vanderbilt Center in Molecular Toxicology, Vanderbilt Ingram Cancer Center, Vanderbilt University, Nashville, Tennessee 37235, United States, Department of Molecular Toxicology, University of California Berkeley, Berkeley, CA 94720, United States;

    A.B. Hancock Memorial Laboratory for Cancer Research, Departments of Chemistry, Vanderbilt Institute for Chemical Biology, Vanderbilt Center in Molecular Toxicology, Vanderbilt Ingram Cancer Center, Vanderbilt University, Nashville, Tennessee 37235, United States, A.B. Hancock Memorial Laboratory for Cancer Research, Departments of Biochemistry Vanderbilt Institute for Chemical Biology, Vanderbilt Center in Molecular Toxicology, Vanderbilt Ingram Cancer Center, Vanderbilt University, Nashville, Tennessee 37235, United States, A.B. Hancock Memorial Laboratory for Cancer Research, Departments of Pharmacology, Vanderbilt Institute for Chemical Biology, Vanderbilt Center in Molecular Toxicology, Vanderbilt Ingram Cancer Center, Vanderbilt University, Nashville, Tennessee 37235, United States;

    A.B. Hancock Memorial Laboratory for Cancer Research, Departments of Chemistry, Vanderbilt Institute for Chemical Biology, Vanderbilt Center in Molecular Toxicology, Vanderbilt Ingram Cancer Center, Vanderbilt University, Nashville, Tennessee 37235, United States, A.B. Hancock Memorial Laboratory for Cancer Research, Departments of Biochemistry Vanderbilt Institute for Chemical Biology, Vanderbilt Center in Molecular Toxicology, Vanderbilt Ingram Cancer Center, Vanderbilt University, Nashville, Tennessee 37235, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 入库时间 2022-08-18 03:11:09

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