Indole glucosinolate breakdown and its biological effects

被引:213
作者
Agerbirk, Niels [2 ]
De Vos, Martin [1 ]
Kim, Jae Hak [1 ]
Jander, Georg [1 ]
机构
[1] Boyce Thompson Inst Plant Res, Ithaca, NY 14853 USA
[2] Univ Copenhagen, Fac Life Sci, DK-1871 Frederiksberg C, Denmark
关键词
Ascorbigen; Brassicaceae; Cancer; Indole-3-acetonitrile; Indole-3-carbinol; Indol-3-ylmethyl isothiocyanate; Insect; Myrosinase; MYROSINASE-CATALYZED HYDROLYSIS; OILSEED RAPE; ARABIDOPSIS-THALIANA; CHINESE-CABBAGE; PLASMODIOPHORA-BRASSICAE; PHYSIOLOGICAL-RESPONSES; CRUCIFEROUS VEGETABLES; AUXIN BIOSYNTHESIS; METHYL JASMONATE; ISATIS-TINCTORIA;
D O I
10.1007/s11101-008-9098-0
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Most species in the Brassicaceae produce one or more indole glucosinolates. In addition to the parent indol-3-ylmethylglucosinolate (IMG), other commonly encountered indole glucosinolates are 1-methoxyIMG, 4-hydroxyIMG, and 4-methoxyIMG. Upon tissue disruption, enzymatic hydrolysis of IMG produces an unstable aglucone, which reacts rapidly to form indole-3-acetonitrile and indol-3-ylmethyl isothiocyanate. The isothiocyanate, in turn, can react with water, ascorbate, glutathione, amino acids, and other plantmetabolites to produce a variety of physiologically active indole compounds. Myrosinase-initiated breakdown of the substituted indole glucosinolates proceeds in a similar manner to that of IMG. Induction of indole glucosinolate production in response to biotic stress, experiments with mutant plants, and artificial diet assays suggest a significant role for indole glucosinolates in plant defense. However, some crucifer-feeding specialist herbivores recognize indole glucosinolates and their breakdown products as oviposition and/or feeding stimulants. In mammalian diets, IMG can have both beneficial and deleterious effects. Most IMG breakdown products induce the synthesis of phase 1 detoxifying enzymes, which may in some cases prevent carcinogenesis, but in other cases promote carcinogenesis. Recent advances in indole glucosinolate research have been fueled by their occurrence in the well-studied model plant Arabidopsis thaliana. Knowledge gained from genetic and biochemical experiments with A. thaliana can be applied to gain new insight into the ecological and nutritional properties of indole glucosinolates in other plant species.
引用
收藏
页码:101 / 120
页数:20
相关论文
共 129 条
[51]   Development of an insect herbivore and its pupal parasitoid reflect differences in direct plant defense [J].
Harvey, Jeffrey A. ;
Gols, Rieta ;
Wagenaar, Roel ;
Bezemer, T. Martijn .
JOURNAL OF CHEMICAL ECOLOGY, 2007, 33 (08) :1556-1569
[52]   Cruciferous vegetables and human cancer risk: epidemiologic evidence and mechanistic basis [J].
Higdon, Jane V. ;
Delage, Barbara ;
Williams, David E. ;
Dashwood, Roderick H. .
PHARMACOLOGICAL RESEARCH, 2007, 55 (03) :224-236
[53]   A critical review of the bioavailability of glucosinolates and related compounds [J].
Holst, B ;
Williamson, G .
NATURAL PRODUCT REPORTS, 2004, 21 (03) :425-447
[54]   Influence of increasing herbivore pressure on modification of glucosinolate content of swedes (Brassica napus spp. rapifera) [J].
Hopkins, RJ ;
Griffiths, DW ;
Birch, ANE ;
McKinlay, RG .
JOURNAL OF CHEMICAL ECOLOGY, 1998, 24 (12) :2003-2019
[55]   Investigation of ascorbigen as a breakdown product of glucobrassicin autolysis in Brassica vegetables [J].
Hrncirik, K ;
Valusek, J ;
Velisek, J .
EUROPEAN FOOD RESEARCH AND TECHNOLOGY, 2001, 212 (05) :576-581
[56]  
HUANG XP, 1993, ENTOMOL EXP APPL, V68, P59, DOI 10.1007/BF02380582
[57]   RELATIVE ACTIVITIES OF GLUCOSINOLATES AS OVIPOSITION STIMULANTS FOR PIERIS-RAPAE AND P-NAPI-OLERACEA [J].
HUANG, XP ;
RENWICK, JAA .
JOURNAL OF CHEMICAL ECOLOGY, 1994, 20 (05) :1025-1037
[58]  
Irwin RE, 2003, ECOLOGY, V84, P1733, DOI 10.1890/0012-9658(2003)084[1733:TROHIT]2.0.CO
[59]  
2
[60]   Antennal contact chemosensilla in Psylliodes chrysocephala responding to cruciferous allelochemicals [J].
Isidoro, N ;
Bartlet, E ;
Ziesmann, J ;
Williams, IH .
PHYSIOLOGICAL ENTOMOLOGY, 1998, 23 (02) :131-138