Benzoxazolinone detoxification by N-Glucosylation: The multi-compartment-network of Zea mays L.

被引:17
作者
Schulz, Margot [1 ]
Filary, Barbara [1 ]
Kuehn, Sabine [1 ]
Colby, Thomas [2 ,3 ]
Harzen, Anne [4 ]
Schmidt, Juergen [1 ]
Sicker, Dieter [4 ]
Hennig, Lothar [4 ]
Hofmann, Diana [5 ]
Disko, Ulrich [5 ]
Anders, Nico [6 ]
机构
[1] Univ Bonn, IMBIO Inst Biotechnol Pflanzen, Karlrobert Kreiten Str 13, D-53115 Bonn, Germany
[2] Max Planck Inst Pflanzenzuchtungsforsch, Carl von Linne Weg 10, D-50829 Cologne, Germany
[3] Max Planck Inst Biol Aging, Joseph Stelzmann Str 9b, D-50931 Cologne, Germany
[4] Univ Leipzig, Inst Organ Chem, Johannisallee 29, D-04103 Leipzig, Germany
[5] Forschungszentrum Julich, IBG Agrossphare 3, D-52428 Julich, Germany
[6] Rhein Westfal TH Aachen, AVT Enzyme Proc Technol, Worringer Weg 1, D-52074 Aachen, Germany
关键词
protein shifting; Zea mays L; extraplastic space; cell wall polymer; peroxidase; glucanase; glucoside carbamate pathway; Benzoxazolinone detoxification; CELL-WALL; BOA DETOXIFICATION; MAIZE; PROTEINS; IDENTIFICATION; FUNGI; ALLELOCHEMICALS; BENZOXAZINOIDS; DEHYDROGENASE; DEGRADATION;
D O I
10.1080/15592324.2015.1119962
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 major detoxification product in maize roots after 24h benzoxazolin-2(3H)-one (BOA) exposure was identified as glucoside carbamate resulting from rearrangement of BOA-N-glucoside, but the pathway of N-glucosylation, enzymes involved and the site of synthesis were previously unknown. Assaying whole cell proteins revealed the necessity of H2O2 and Fe2+ ions for glucoside carbamate production. Peroxidase produced BOA radicals are apparently formed within the extraplastic space of the young maize root. Radicals seem to be the preferred substrate for N-glucosylation, either by direct reaction with glucose or, more likely, the N-glucoside is released by glucanase/glucosidase catalyzed hydrolysis from cell wall components harboring fixed BOA. The processes are accompanied by alterations of cell wall polymers. Glucoside carbamate accumulation could be suppressed by the oxireductase inhibitor 2-bromo-4 '-nitroacetophenone and by peroxidase inhibitor 2,3-butanedione. Alternatively, activated BOA molecules with an open heterocycle may be produced by microorganisms (e.g., endophyte Fusarium verticillioides) and channeled for enzymatic N-glucosylation. Experiments with transgenic Arabidopsis lines indicate a role of maize glucosyltransferase BX9 in BOA-N-glycosylation. Western blots with BX9 antibody demonstrate the presence of BX9 in the extraplastic space. Proteomic analyses verified a high BOA responsiveness of multiple peroxidases in the apoplast/cell wall. BOA incubations led to shifting, altered abundances and identities of the apoplast and cell wall located peroxidases, glucanases, glucosidases and glutathione transferases (GSTs). GSTs could function as glucoside carbamate transporters. The highly complex, compartment spanning and redox-regulated glucoside carbamate pathway seems to be mainly realized in Poaceae. In maize, carbamate production is independent from benzoxazinone synthesis.
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页数:16
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