Transcriptional responses of Arabidopsis thaliana ecotypes with different glucosinolate profiles after attack by polyphagous Myzus persicale and oligophagous Brevicoryne brassicae

被引:117
作者
Kusnierczyk, Anna
Winge, Per
Midelfart, Herman
Armbruster, W. Scott
Rossiter, John T.
Bones, Atle Magnar [1 ]
机构
[1] Norwegian Univ Sci & Technol, Dept Biol, N-7491 Trondheim, Norway
[2] Imperial Coll Wye, Dept Biol, Wye TN25 5AH, Kent, England
[3] Univ Portsmouth, Sch Biol Sci, Portsmouth PO1 2DY, Hants, England
关键词
aphid; generalist; indole glucosinolates; infestation; jasmonate; microarray; myrosinase; plant defence system; specialist;
D O I
10.1093/jxb/erm043
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Plants are equipped with a range of defence mechanisms against herbivorous insects. In cruciferous species, jasmonic acid, salicylic acid, and ethylene along with glucosinolates and their hydrolysis products play important roles in plant protection and plant-insect communication. In turn, a number of herbivores have adapted to plants that contain glucosinolates. As a result of adaptation to their host plants, specialized insects may elicit different plant-inducible responses than generalists. Oligonucleotide microarrays and qRT-PCR analysis were used to characterize transcriptional profiles of Arabidopsis thaliana plants in response to infestation with a generalist aphid, Myzus persicae, or a cruciferous plant specialist, Brevicoryne brassicae. To find possible differences and similarities in molecular responses between plants differing in predominant glucosinolate hydrolysis products, three ecotypes of A. thaliana were chosen: Wassilewskija (Ws), Cape Verde Islands (Cvi), and Landsberg erecta (Ler), which, respectively, produce mainly isothiocyanates, epithionitriles, and nitriles. In all three ecotypes, general stress-responsive genes, genes belonging to octadecanoid and indole glucosinolate synthesis pathways were induced upon both generalist and specialist attack. By contrast, transcription of myrosinases, enzymes hydrolysing glucosinolates, was suppressed. The induction of the jasmonic acid synthesis pathway was strongest in Cvi, while the up-regulation of the indole glucosinolate synthesis pathway was highest in Ler, suggesting a slightly different defence strategy in these two ecotypes. Specialist and generalist infestations caused statistically significant differential regulation of 60 genes in Ws and 21 in Cvi. Among these were jasmonic acid and tryptophan synthesis pathway enzymes, and pathogenesis related protein (PR1). Insect no-choice experiments revealed lowered fitness of B. brassicae on Ler and Cvi in comparison to Ws, but no ecotype-dependent change in fecundity of M. persicae. Targeted studies employing constructs of GUS reporter gene under the control of promoters from CYP79B2 and CYP79B3 genes showed insect-specific induction of the indole glucosinolates synthesis pathway.
引用
收藏
页码:2537 / 2552
页数:16
相关论文
共 84 条
[51]   Gene expression and glucosinolate accumulation in Arabidopsis thaliana in response to generalist and specialist herbivores of different feeding guilds and the role of defense signaling pathways [J].
Mewis, Inga ;
Tokuhisa, James G. ;
Schultz, Jack C. ;
Appel, Heidi M. ;
Ulrichs, Christian ;
Gershenzon, Jonathan .
PHYTOCHEMISTRY, 2006, 67 (22) :2450-2462
[52]   Cytochrome P450CYP79B2 from Arabidopsis catalyzes the conversion of tryptophan to indole-3-acetaldoxime, a precursor of indole glucosinolates and indole-3-acetic acid [J].
Mikkelsen, MD ;
Hansen, CH ;
Wittstock, U ;
Halkier, BA .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2000, 275 (43) :33712-33717
[53]   Modulation of CYP79 genes and glucosinolate profiles in Arabidopsis by defense signaling pathways [J].
Mikkelsen, MD ;
Petersen, BL ;
Glawischnig, E ;
Jensen, AB ;
Andreasson, E ;
Halkier, BA .
PLANT PHYSIOLOGY, 2003, 131 (01) :298-308
[54]   Behavioral and chemosensory responses to a host recognition cue by larvae of Pieris rapae [J].
Miles, CI ;
del Campo, ML ;
Renwick, JAA .
JOURNAL OF COMPARATIVE PHYSIOLOGY A-NEUROETHOLOGY SENSORY NEURAL AND BEHAVIORAL PHYSIOLOGY, 2005, 191 (02) :147-155
[55]   Aphid saliva [J].
Miles, PW .
BIOLOGICAL REVIEWS, 1999, 74 (01) :41-85
[56]   Gene expression profiling of Arabidopsis thaliana in compatible plant-aphid interactions [J].
Moran, PJ ;
Cheng, YF ;
Cassell, JL ;
Thompson, GA .
ARCHIVES OF INSECT BIOCHEMISTRY AND PHYSIOLOGY, 2002, 51 (04) :182-203
[57]   Molecular responses to aphid feeding in Arabidopsis in relation to plant defense pathways [J].
Moran, PJ ;
Thompson, GA .
PLANT PHYSIOLOGY, 2001, 125 (02) :1074-1085
[58]  
Poch HLCY, 1998, PLANT SCI, V138, P209, DOI 10.1016/S0168-9452(98)00144-7
[59]   PLANT PENETRATION BY FEEDING APHIDS (HEMIPTERA, APHIDOIDEA) [J].
POLLARD, DG .
BULLETIN OF ENTOMOLOGICAL RESEARCH, 1973, 62 (04) :631-714
[60]   Differential wound induction of the myrosinase system in oilseed rape (Brassica napus):: contrasting insect damage with mechanical damage [J].
Pontoppidan, B ;
Hopkins, R ;
Rask, L ;
Meijer, J .
PLANT SCIENCE, 2005, 168 (03) :715-722