Floral and insect-induced volatile formation in Arabidopsis lyrata ssp petraea, a perennial, outcrossing relative of A.thaliana

被引:40
作者
Abel, Christian [1 ]
Clauss, Maria [1 ]
Schaub, Andrea [2 ]
Gershenzon, Jonathan [1 ]
Tholl, Dorothea [1 ]
机构
[1] Max Planck Inst Chem Ecol, D-07745 Jena, Germany
[2] Ionicon Analyt GmbH, A-6020 Innsbruck, Austria
关键词
Arabidopsis; Diurnal volatile emission; Herbivory; Terpenoid; Terpene synthase; Volatiles; POPULATION GENETIC-STRUCTURE; SCENT PRODUCTION; INDIRECT DEFENSE; EMISSION; SYNTHASE; BIOSYNTHESIS; IDENTIFICATION; VARIABILITY; RESPONSES; BRASSICACEAE;
D O I
10.1007/s00425-009-0921-7
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Volatile organic compounds have been reported to serve some important roles in plant communication with other organisms, but little is known about the biological functions of most of these substances. To gain insight into this problem, we have compared differences in floral and vegetative volatiles between two closely related plant species with different life histories. The self-pollinating annual, Arabidopsis thaliana, and its relative, the outcrossing perennial, Arabidopsis lyrata, have markedly divergent life cycles and breeding systems. We show that these differences are in part reflected in the formation of distinct volatile mixtures in flowers and foliage. Volatiles emitted from flowers of a German A. lyrata ssp. petraea population are dominated by benzenoid compounds in contrast to the previously described sesquiterpene-dominated emissions of A. thaliana flowers. Flowers of A. lyrata ssp. petraea release benzenoid volatiles in a diurnal rhythm with highest emission rates at midday coinciding with observed visitations of pollinating insects. Insect feeding on leaves of A. lyrata ssp. petraea causes a variable release of the volatiles methyl salicylate, C-11- and C-16-homoterpenes, nerolidol, plus the sesquiterpene (E)-beta-caryophyllene, which in A. thaliana is emitted exclusively from flowers. An insect-induced gene (AlCarS) with high sequence similarity to the florally expressed (E)-beta-caryophyllene synthase (AtTPS21) from A. thaliana was identified from individuals of a German A. lyrata ssp. petraea population. Recombinant AlCarS converts the sesquiterpene precursor, farnesyl diphosphate, into (E)-beta-caryophyllene with alpha-humulene and alpha-copaene as minor products indicating its close functional relationship to the A. thaliana AtTPS21. Differential regulation of these genes in flowers and foliage is consistent with the different functions of volatiles in the two Arabidopsis species.
引用
收藏
页码:1 / 11
页数:11
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