| Literature DB >> 24151302 |
Juan David Rejón1, François Delalande, Christine Schaeffer-Reiss, Christine Carapito, Krzysztof Zienkiewicz, Juan de Dios Alché, María Isabel Rodríguez-García, Alain Van Dorsselaer, Antonio Jesús Castro.
Abstract
Proteomic analysis of the stigmatic exudate of Lilium longiflorum and Olea europaea led to the identification of 51 and 57 proteins, respectively, most of which are described for the first time in this secreted fluid. These results indicate that the stigmatic exudate is an extracellular environment metabolically active, participating in at least 80 different biological processes and 97 molecular functions. The stigma exudate showed a markedly catabolic profile and appeared to possess the enzyme machinery necessary to degrade large polysaccharides and lipids secreted by papillae to smaller units, allowing their incorporation into the pollen tube during pollination. It may also regulate pollen-tube growth in the pistil through the selective degradation of tube-wall components. Furthermore, some secreted proteins were involved in pollen-tube adhesion and orientation, as well as in programmed cell death of the papillae cells in response to either compatible pollination or incompatible pollen rejection. Finally, the results also revealed a putative cross-talk between genetic programmes regulating stress/defence and pollination responses in the stigma.Entities:
Keywords: Eastern lily; exudate; olive; proteomics; secretome.; stigma
Mesh:
Substances:
Year: 2013 PMID: 24151302 PMCID: PMC3871823 DOI: 10.1093/jxb/ert345
Source DB: PubMed Journal: J Exp Bot ISSN: 0022-0957 Impact factor: 6.992
Main features of plants chosen for this study
| Feature | Lily | Olive |
|---|---|---|
| Taxonomy | Monocots | Dicots |
| Type of stigma | Wet/Papillary | Wet/Papillary |
| Exudate composition | Aqueous | Lipidic |
| Stigma/style anatomy | Hollow | Solid |
| Pollination | Entomophilous | Anemophilous |
| Geographical distribution | Japan to Philippines | Mediterranean |
| Cultivation purpose | Ornamental | Agricultural |
| Sampling method | Pipetting | Brushing |
Fig. 1.The lily and olive SE. (A) Macroscopic drops of exudate (arrow) formed on the lily stigma surface. (B) Morphology of the olive stigma. (C) TEM photomicrograph showing the olive SE (asterisks) at anthesis. (D, E) SEM photomicrographs of the olive SE (asterisks) as above. Ov, ovary; pp, papillae; St, stigma; Sy, style. (This figure is available in colour at JXB online.)
Fig. 2.Protein profile of the SE in several plant species. (A) Exudate protein samples (~15 µg per lane) were separated by SDS-PAGE and stained with Coomassie Brilliant Blue. Protein markers are displayed on the left. (B) The gel band intensities were profiled for each species.
Fig. 3.Venn diagram comparing the total number of proteins identified in Eastern lily, tobacco, and olive SEs. Tobacco data from Sang .
Fig. 4.Distribution of functional classes of lily and olive stigma exudate proteins. (A) Pie chart of main functional categories (Ruepp ). (B) Pie chart of secondary functional categories referred to metabolism (Ruepp ). The percentage of proteins in each category is shown.
List of cell-wall-modifying enzymes identified in the stigma exudates of lily and olive
| Olive | Lily | Cell-wall process |
|---|---|---|
| Dhurrinase ( | – | Cellulose, xyloglucan catabolism |
| β-Glucosidase ( | β-glucosidase ( | Cellulose, xyloglucan catabolism |
| – | β-Xylosidase/α-arabinofuranosidase ( | Arabinan catabolism |
| – | Exo-1,3-β-glucanase ( | 1,3-β-glucan (callose) catabolism |
| UDP-glucose 6-dehydrogenase ( | – | Unknown |
| Xyloglucan endotransglucosylase ( | – | Xyloglucan catabolism |
| Endo-1,3-β-glucanase ( | Endo-1,3-β-glucanase ( | 1,3-β-glucan (callose) catabolism |
| – | α-Galactosidase ( | Galactomannan catabolism |
| Polygalacturonase ( | Polygalacturonase ( | Homogalacturonan catabolism |
| – | β-Galactosidase, GH family 35 ( | Galactan catabolism |
| – | β-Galactosidase, GH family 42 ( | Galactan catabolism |
| Pectinesterase ( | Pectinesterase ( | Homogalacturonan catabolism |
| Pectin acetylesterase ( | – | Homogalacturonan catabolism |
| Lipid transfer protein ( | – | Cellulose, xyloglucan catabolism |
| – | Glycerophosphodiester Pdiesterase ( | Unknown |
| α-1,4-Glucan-protein synthase ( | – | Cellulose biosynthesis |
The accession no. in Supplementary Table S2 is given in parentheses.