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脂氧素:传递细胞内和细胞间信息的类二十烷酸。

Lipoxins: eicosanoids carrying intra- and intercellular messages.

作者信息

Serhan C N

机构信息

Department of Medicine, Brigham and Women's Hospital, Boston, Massachusetts.

出版信息

J Bioenerg Biomembr. 1991 Feb;23(1):105-22. doi: 10.1007/BF00768841.

Abstract

The lipoxins are a recent addition to the family of biologically active products derived from arachidonic acid. Compounds of this series contain a conjugated tetraene structure and can be generated by the actions of the major lipoxygenases of human tissues (5-, 12-, and 15-LO's). Biosynthesis of the lipoxins from cellular sources of unesterified arachidonic acid is triggered by the initial actions of either the 15-LO or 5-LO followed by additional reactions. Recent results indicate that lipoxins are also generated by receptor-mediated events during cell-cell interactions with the transcellular metabolism of key intermediates. Lipoxin A4 and lipoxin B4 each possess a unique spectrum of biological activities unlike those of other eicosanoids in both in vivo and in vitro systems. Lipoxin A4 stimulates changes in the microvasculature and can block some of the proinflammatory effects of leukotrienes (in vivo). Lipoxin A4 and lipoxin B4 both inhibit natural killer cells (in vitro), and lipoxin B4 displays selective actions on hematopoietic cells. The finding that lipoxin A4 activates isolated protein kinase C suggests that it may also serve an intracellular role in its cell of origin before it is released to the extracellular milieu. Thus, cell-cell interactions, along with multiple oxygenations by lipoxygenases, generate compounds that can regulate cellular responses by serving as both intra- and intercellular messages.

摘要

脂氧素是源自花生四烯酸的生物活性产物家族中的新成员。该系列化合物含有共轭四烯结构,可由人体组织中的主要脂氧合酶(5-、12-和15-脂氧合酶)作用生成。从细胞来源的未酯化花生四烯酸生物合成脂氧素是由15-脂氧合酶或5-脂氧合酶的初始作用引发,随后进行其他反应。最近的结果表明,在细胞间相互作用以及关键中间体的跨细胞代谢过程中,受体介导的事件也会生成脂氧素。在体内和体外系统中,脂氧素A4和脂氧素B4各自具有独特的生物活性谱,与其他类二十烷酸不同。脂氧素A4会刺激微脉管系统发生变化,并能阻断白三烯的一些促炎作用(在体内)。脂氧素A4和脂氧素B4都能抑制自然杀伤细胞(在体外),并且脂氧素B4对造血细胞具有选择性作用。脂氧素A4激活分离的蛋白激酶C这一发现表明,在其释放到细胞外环境之前,它可能在其起源细胞中也发挥细胞内作用。因此,细胞间相互作用以及脂氧合酶的多次氧化作用会生成一些化合物,这些化合物可作为细胞内和细胞间信息来调节细胞反应。

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