» Articles » PMID: 11402209

Genetic Control of Natural Variation in Arabidopsis Glucosinolate Accumulation

Overview
Journal Plant Physiol
Specialty Physiology
Date 2001 Jun 13
PMID 11402209
Citations 259
Authors
Affiliations
Soon will be listed here.
Abstract

Glucosinolates are biologically active secondary metabolites of the Brassicaceae and related plant families that influence plant/insect interactions. Specific glucosinolates can act as feeding deterrents or stimulants, depending upon the insect species. Hence, natural selection might favor the presence of diverse glucosinolate profiles within a given species. We determined quantitative and qualitative variation in glucosinolates in the leaves and seeds of 39 Arabidopsis ecotypes. We identified 34 different glucosinolates, of which the majority are chain-elongated compounds derived from methionine. Polymorphism at only five loci was sufficient to generate 14 qualitatitvely different leaf glucosinolate profiles. Thus, there appears to be a modular genetic system regulating glucosinolate profiles in Arabidopsis. This system allows the rapid generation of new glucosinolate combinations in response to changing herbivory or other selective pressures. In addition to the qualitative variation in glucosinolate profiles, we found a nearly 20-fold difference in the quantity of total aliphatic glucosinolates and were able to identify a single locus that controls nearly three-quarters of this variation.

Citing Articles

Novel Regulators and Their Epistatic Networks in Arabidopsis' Defence Responses to Alternaria alternata Infection.

Zeng Q, Liu X, Yan X, Zhang J, Li C, Yan C Mol Plant Pathol. 2025; 26(2):e70058.

PMID: 39894981 PMC: 11788323. DOI: 10.1111/mpp.70058.


Quantitative Trait Loci Identification and Candidate Genes Characterization for Indole-3-Carbinol Content in Seedlings of .

Xiong Y, Li H, Fan S, Ding Y, Wu M, He J Int J Mol Sci. 2025; 26(2).

PMID: 39859526 PMC: 11766266. DOI: 10.3390/ijms26020810.


Evolution and comparative transcriptome analysis of glucosinolate pathway genes in L.

Liu S, Wu Z, Chen X, Chen Z, Shen Y, Qadir S Front Plant Sci. 2024; 15:1483635.

PMID: 39719940 PMC: 11666375. DOI: 10.3389/fpls.2024.1483635.


Blue-green light treatment enhances the quality and nutritional value in postharvest Chinese cabbage ( L. ssp. ).

Zhang R, He Q, Pan Q, Feng Y, Shi Y, Li G Food Chem X. 2024; 24:102004.

PMID: 39634529 PMC: 11615587. DOI: 10.1016/j.fochx.2024.102004.


Investigation of the Roles of Phosphatidylinositol 4-Phosphate 5-Kinases 7,9 and Wall-Associated Kinases 1-3 in Responses to Indole-3-Carbinol and Biotic Stress in Arabidopsis Thaliana.

Khamesa-Israelov H, Finkelstein A, Shani E, Chamovitz D Biomolecules. 2024; 14(10).

PMID: 39456186 PMC: 11506499. DOI: 10.3390/biom14101253.


References
1.
Mauricio R . Costs of resistance to natural enemies in field populations of the annual plant Arabidopsis thaliana. Am Nat. 2008; 151(1):20-8. DOI: 10.1086/286099. View

2.
Graser G, Schneider B, Oldham N, Gershenzon J . The methionine chain elongation pathway in the biosynthesis of glucosinolates in Eruca sativa (Brassicaceae). Arch Biochem Biophys. 2000; 378(2):411-9. DOI: 10.1006/abbi.2000.1812. View

3.
Giamoustaris A, Mithen R . Genetics of aliphatic glucosinolates. IV. Side-chain modification in Brassica oleracea. Theor Appl Genet. 2013; 93(5-6):1006-10. DOI: 10.1007/BF00224105. View

4.
Wittstock U, Halkier B . Cytochrome P450 CYP79A2 from Arabidopsis thaliana L. Catalyzes the conversion of L-phenylalanine to phenylacetaldoxime in the biosynthesis of benzylglucosinolate. J Biol Chem. 2000; 275(19):14659-66. DOI: 10.1074/jbc.275.19.14659. View

5.
Sonderby I, Geu-Flores F, Halkier B . Biosynthesis of glucosinolates--gene discovery and beyond. Trends Plant Sci. 2010; 15(5):283-90. DOI: 10.1016/j.tplants.2010.02.005. View