Glucosinolate structural diversity, identification, chemical synthesis and metabolism in plants

被引:363
作者
Blazevic, Ivica [1 ]
Montaut, Sabine [2 ]
Burcul, Franko [3 ]
Olsen, Carl Erik [4 ]
Burow, Meike [4 ,5 ]
Rollin, Patrick [6 ,7 ]
Agerbirk, Niels [4 ]
机构
[1] Univ Split, Fac Chem & Technol, Dept Organ Chem, Rudera Boskovica 35, Split 21000, Croatia
[2] Laurentian Univ, Dept Chem & Biochem, Biomol Sci Programme, 935 Ramsey Lake Rd, Sudbury, ON P3E 2C6, Canada
[3] Univ Split, Fac Chem & Technol, Dept Analyt Chem, Rudera Boskovica 35, Split 21000, Croatia
[4] Univ Copenhagen, Dept Plant & Environm Sci, Thorvaldsensvej 40, DK-1871 Frederiksberg C, Denmark
[5] Univ Copenhagen, DynaMo Ctr, Thorvaldsensvej 40, DK-1871 Frederiksberg C, Denmark
[6] Univ Orleans, ICOA, BP 6759, F-45067 Orleans 2, France
[7] CNRS, UMR 7311, BP 6759, F-45067 Orleans 2, France
关键词
Critical review; Glucosinolate structure; Hydrolysis products; Synthesis; Structural variation; Qualitative analysis; GC-MS; HPLC-MS; NMR; CHROMATOGRAPHY-MASS-SPECTROMETRY; MUSTARD OIL GLUCOSIDES; ERUCA-SATIVA L; MYROSINASE-CATALYZED HYDROLYSIS; THIOCYANATE-FORMING PROTEIN; LINEAR ION-TRAP; ARABIDOPSIS-THALIANA; BRASSICA-NAPUS; GAS-CHROMATOGRAPHY; RAPHANUS-SATIVUS;
D O I
10.1016/j.phytochem.2019.112100
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The glucosinolates (GSLs) is a well-defined group of plant metabolites characterized by having an S-beta-D-glucopyrano unit anomerically connected to an O-sulfated (Z)-thiohydroximate function. After enzymatic hydrolysis, the sulfated aglucone can undergo rearrangement to an isothiocyanate, or form a nitrile or other products. The number of GSLs known from plants, satisfactorily characterized by modern spectroscopic methods (NMR and MS) by mid-2018, is 88. In addition, a group of partially characterized structures with highly variable evidence counts for approximately a further 49. This means that the total number of characterized GSLs from plants is somewhere between 88 and 137. The diversity of GSIs in plants is critically reviewed here, resulting in significant discrepancies with previous reviews. In general, the well-characterized GSLs show resemblance to C-skeletons of the amino acids Ala, Val, Leu, Trp, Ile, Phe/Tyr and Met, or to homologs of Ile, Phe/Tyr or Met. Insufficiently characterized, still hypothetic GSLs include straight-chain alkyl GSLs and chain-elongated GSLs derived from Leu. Additional reports (since 2011) of insufficiently characterized GSLs are reviewed. Usually the crucial missing information is correctly interpreted NMR, which is the most effective tool for GSL identification. Hence, modem use of NMR for GSL identification is also reviewed and exemplified. Apart from isolation, GSLs may be obtained by organic synthesis, allowing isotopically labeled GSLs and any kind of side chain. Enzymatic turnover of GSLs in plants depends on a considerable number of enzymes and other protein factors and fur-thermore depends on GSL structure. Identification of GSLs must be presented transparently and live up to standard requirements in natural product chemistry. Unfortunately, many recent reports fail in these respects, including reports based on chromatography hyphenated to MS. In particular, the possibility of isomers and isobaric structures is frequently ignored. Recent reports are re-evaluated and interpreted as evidence of the existence of "isoGSLs", i.e. non-GSL isomers of GSLs in plants. For GSL analysis, also with MS-detection, we stress the importance of using authentic standards.
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