Differential Roles for VviGST1, VviGST3, and VviGST4 in Proanthocyanidin and Anthocyanin Transport in Vitis vinifera

被引:94
作者
Perez-Diaz, Ricardo [1 ]
Madrid-Espinoza, Jose [1 ]
Salinas-Cornejo, Josselyn [1 ]
Gonzalez-Villanueva, Enrique [1 ]
Ruiz-Lara, Simon [1 ]
机构
[1] Univ Talca, Inst Ciencias Biol, Talca, Chile
关键词
anthocyanins; flavonoid transport; glutathione S-transferase; grapevine; GST; proanthocyanidins; GLUTATHIONE-S-TRANSFERASE; DEVELOPING GRAPE BERRIES; FLAVONOID ACCUMULATION; ARABIDOPSIS-THALIANA; GENE; PROTEIN; SEQUESTRATION; EXPRESSION; BIOSYNTHESIS; TRAFFICKING;
D O I
10.3389/fpls.2016.01166
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
In plant cells, flavonoids are synthesized in the cytosol and then are transported and accumulated in the vacuole. Glutathione S-transferase-mediated transport has been proposed as a mechanism involved in flavonoid transport, however, whether binding of flavonoids to glutathione S-transferase (GST) or their transport is glutathione-dependent is not well understood. Glutathione S-transferases from Vitis vinffera (VviGSTs) have been associated with the transport of anthocyanins, however, their ability to transport other flavonoids such as proanthocyanidins (PAs) has not been established. Following bioinformatics approaches, we analyzed the capability of VviGST1, VviGST3, VviGST4, and Arabidopsis 1119 to bind different flavonoids. Analyses of protein-ligand interactions indicate that these GSTs can bind glutathione and monomers of anthocyanin, PAs and flavonols. A total or partial overlap of the binding sites for glutathione and flavonoids was found in VviGST1, and a similar condition was observed in VviGST3 using anthocyanin and flavonols as ligands, whereas VviGST4 and 1119 have both sites for GSH and flavonoids separated. To validate the bioinformatics predictions, functional complementation assays using the Arabidopsis tt19 mutant were performed. Overexpression of VviGST3 in tt19-1 specifically rescued the dark seed coat phenotype associated to correct PA transport, which correlated with higher binding affinity for PA precursors. VviGST4, originally characterized as an anthocyanin-related GST, complemented both the anthocyanin and PA deposition, resembling the function of TT19. By contrast, VviGST1 only partially rescued the normal seed color. Furthermore the expression pattern of these VviGSTs showed that each of these genes could be associated with the accumulation of different flavonoids in specific tissues during grapevine fruit development. These results provide new insights into GST-mediated PA transport in grapevine and suggest that VviGSTs present different specificities for flavonoid ligands. In addition, our data provide evidence to suggest that GST-mediate flavonoid transport is glutathione-dependent.
引用
收藏
页数:13
相关论文
共 66 条
[1]   Functional complementation of anthocyanin sequestration in the vacuole by widely divergent glutathione S-transferases [J].
Alfenito, MR ;
Souer, E ;
Goodman, CD ;
Buell, R ;
Mol, J ;
Koes, R ;
Walbot, V .
PLANT CELL, 1998, 10 (07) :1135-1149
[2]   Berry skin development in Norton grape: Distinct patterns of transcriptional regulation and flavonoid biosynthesis [J].
Ali, Mohammad B. ;
Howard, Susanne ;
Chen, Shangwu ;
Wang, Yechun ;
Yu, Oliver ;
Kovacs, Laszlo G. ;
Qiu, Wenping .
BMC PLANT BIOLOGY, 2011, 11
[3]   VvCO and VvCOL1, two CONSTANS homologous genes, are regulated during flower induction and dormancy in grapevine buds [J].
Almada, Ruben ;
Cabrera, Nuri ;
Casaretto, Jose A. ;
Ruiz-Lara, Simon ;
Gonzalez Villanueva, Enrique .
PLANT CELL REPORTS, 2009, 28 (08) :1193-1203
[4]   Directed evolution of Tau class glutathione transferases reveals a site that regulates catalytic efficiency and masks co-operativity [J].
Axarli, Irine ;
Muleta, Abdi W. ;
Vlachakis, Dimitrios ;
Kossida, Sophia ;
Kotzia, Georgia ;
Maltezos, Anastasios ;
Dhavala, Prathusha ;
Papageorgiou, Anastassios C. ;
Labrou, Nikolaos E. .
BIOCHEMICAL JOURNAL, 2016, 473 :559-570
[5]   A plasma membrane H+-ATPase is required for the formation of proanthocyanidins in the seed coat endothelium of Arabidopsis thaliana [J].
Baxter, IR ;
Young, JC ;
Armstrong, G ;
Foster, N ;
Bogenschutz, N ;
Cordova, T ;
Peer, WA ;
Hazen, SP ;
Murphy, AS ;
Harper, JF .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2005, 102 (07) :2649-2654
[6]   SWISS-MODEL: modelling protein tertiary and quaternary structure using evolutionary information [J].
Biasini, Marco ;
Bienert, Stefan ;
Waterhouse, Andrew ;
Arnold, Konstantin ;
Studer, Gabriel ;
Schmidt, Tobias ;
Kiefer, Florian ;
Cassarino, Tiziano Gallo ;
Bertoni, Martino ;
Bordoli, Lorenza ;
Schwede, Torsten .
NUCLEIC ACIDS RESEARCH, 2014, 42 (W1) :W252-W258
[7]   Proanthocyanidin synthesis and expression of genes encoding leucoanthocyanidin reductase and anthocyanidin reductase in developing grape berries and grapevine leaves [J].
Bogs, J ;
Downey, MO ;
Harvey, JS ;
Ashton, AR ;
Tanner, GJ ;
Robinson, SP .
PLANT PHYSIOLOGY, 2005, 139 (02) :652-663
[8]   Floral dip:: a simplified method for Agrobacterium-mediated transformation of Arabidopsis thaliana [J].
Clough, SJ ;
Bent, AF .
PLANT JOURNAL, 1998, 16 (06) :735-743
[9]   Purification, molecular cloning, and characterization of glutathione S-transferases (GSTs) from pigmented Vitis vinifera L. cell suspension cultures as putative anthocyanin transport proteins [J].
Conn, Simon ;
Curtin, Chris ;
Bezier, Annie ;
Franco, Chris ;
Zhang, Wei .
JOURNAL OF EXPERIMENTAL BOTANY, 2008, 59 (13) :3621-3634
[10]   Characterization of anthocyanic vacuolar inclusions in Vitis vinifera L. cell suspension cultures [J].
Conn, Simon ;
Franco, Chris ;
Zhang, Wei .
PLANTA, 2010, 231 (06) :1343-1360