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十八烷酸信号通路早期和晚期中间体对利马豆中植物挥发物生物合成的差异诱导。

Differential induction of plant volatile biosynthesis in the lima bean by early and late intermediates of the octadecanoid-signaling pathway.

作者信息

Koch T, Krumm T, Jung V, Engelberth J, Boland W

机构信息

Max Planck Institute for Chemical Ecology, Tatzendpromenade 1a, 07745 Jena, Germany.

出版信息

Plant Physiol. 1999 Sep;121(1):153-62. doi: 10.1104/pp.121.1.153.

Abstract

Plants are able to respond to herbivore damage with de novo biosynthesis of an herbivore-characteristic blend of volatiles. The signal transduction initiating volatile biosynthesis may involve the activation of the octadecanoid pathway, as exemplified by the transient increase of endogenous jasmonic acid (JA) in leaves of lima bean (Phaseolus lunatus) after treatment with the macromolecular elicitor cellulysin. Within this pathway lima bean possesses at least two different biologically active signals that trigger different biosynthetic activities. Early intermediates of the pathway, especially 12-oxo-phytodienoic acid (PDA), are able to induce the biosynthesis of the diterpenoid-derived 4,8, 12-trimethyltrideca-1,3,7,11-tetraene. High concentrations of PDA result in more complex patterns of additional volatiles. JA, the last compound in the sequence, lacks the ability to induce diterpenoid-derived compounds, but is highly effective at triggering the biosynthesis of other volatiles. The phytotoxin coronatine and amino acid conjugates of linolenic acid (e.g. linolenoyl-L-glutamine) mimic the action of PDA, but coronatine does not increase the level of endogenous JA. The structural analog of coronatine, the isoleucine conjugate of 1-oxo-indanoyl-4-carboxylic acid, effectively mimics the action of JA, but does not increase the level of endogenous JA. The differential induction of volatiles resembles previous findings on signal transduction in mechanically stimulated tendrils of Bryonia dioica.

摘要

植物能够通过从头生物合成具有食草动物特征的挥发性混合物来应对食草动物的损害。启动挥发性物质生物合成的信号转导可能涉及十八烷酸途径的激活,例如用大分子激发子纤维素酶处理后,利马豆(菜豆)叶片中内源性茉莉酸(JA)的短暂增加就说明了这一点。在这条途径中,利马豆至少拥有两种不同的生物活性信号,它们触发不同的生物合成活动。该途径的早期中间体,特别是12-氧代植物二烯酸(PDA),能够诱导二萜衍生的4,8,12-三甲基十三碳-1,3,7,11-四烯的生物合成。高浓度的PDA会导致更复杂的其他挥发性物质模式。JA是该序列中的最后一种化合物,缺乏诱导二萜衍生化合物的能力,但在触发其他挥发性物质的生物合成方面非常有效。植物毒素冠菌素和亚麻酸的氨基酸共轭物(如亚麻酰-L-谷氨酰胺)模拟PDA的作用,但冠菌素不会增加内源性JA的水平。冠菌素的结构类似物,1-氧代茚满酰-4-羧酸的异亮氨酸共轭物,有效地模拟JA的作用,但不会增加内源性JA的水平。挥发性物质的差异诱导类似于先前在机械刺激的白泻根卷须中信号转导的研究结果。

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