| Literature DB >> 22639652 |
Roman Pleskot1, Přemysl Pejchar, Radek Bezvoda, Irene K Lichtscheidl, Mieke Wolters-Arts, Jan Marc, Viktor Zárský, Martin Potocký.
Abstract
Entities:
Keywords: diacylglycerol kinase; lipid phosphate phosphatase; phosphatidic acid; phospholipase D; pollen tube; signaling; tip growth; tobacco
Year: 2012 PMID: 22639652 PMCID: PMC3355619 DOI: 10.3389/fpls.2012.00054
Source DB: PubMed Journal: Front Plant Sci ISSN: 1664-462X Impact factor: 5.753
Figure 1Phylogenetic analysis of plant PLDs (A), DGKs (B), and LPPs (C). All trees represent the protein maximum likelihood (ML) phylogeny of particular genes. Numbers at nodes correspond to the approximate likelihood ratio test with the SH-like (Shimodaira–Hasegawa-like) support from ML (top) and posterior probabilities from Bayesian analysis (bottom). Missing values indicate support below 50%, a dash indicates that a different topology was inferred by Bayesian analysis. Circles represent 100% support by both methods. Branches were collapsed if the inferred topology was not supported by both methods. The tree in (A) was rooted using human PLD1 as an outgroup; the trees in (B) and (C) were rooted using human DGKε and yeast LPP1, respectively. Scale bars indicating the rates of substitutions/site are shown in corresponding trees. Species abbreviations: Atha, Arabidopsis thaliana; Mtru, Medicago truncatula; Osat, Oryza sativa; Ppat, Physcomitrella patens; Ptri, Populus trichocarpa; Smoe, Selaginella moellendorffii; Sbic, Sorghum bicolor.
Figure 2Expression analysis of . (A) Expression data for selected genes for specific organs were retrieved from Genevestigator (www.genevestigator.ethz.ch). Scale bar at the bottom of the figure indicates relative levels of expression potential. (B) Presence of PLD, DGK, and LPP proteins in mature pollen based on the study of Grobei et al. (2009).
Figure 3The DGK inhibitor R59022 inhibits pollen tube growth, whereas the LPP inhibitors NEM, PG, and propranolol promote pollen tube growth. Pollen tubes were incubated for 90 min in germination medium supplemented with specified concentrations of R59022 (A), NEM (B), PG (C), and propranolol (D). The pollen tubes were then fixed with 3.7% formaldehyde and the length of pollen tubes was measured. At least 120 cells were measured for each treatment in two independent experiments. Data represent the average pollen tube length ± SEM. Significant difference from the control samples is indicated by an asterisk (ANOVA, Kruskal–Wallis test, p < 0.05).
Figure 4The PLD antagonist . (A) Ninety-minute-old pollen tubes were pre-incubated in germination medium on ice for 10 min, and 2 μM FM1-43 dye together with a particular drug or PA were then simultaneously added and the cells monitored for 30 min. Representative pollen tubes observed at two times are shown. (B) Alternatively, pollen tubes were incubated in germination medium containing 2 μM FM1-43 for 90 min, a particular drug or PA were then added for 10 min and the cells were observed with a confocal microscope. At least 15 cells were analyzed for each treatment in four independent experiments and typical examples are shown. Scale bar = 10 μm.
Figure 5The altering of the PA levels affects the deposition of cell wall material. (A) Ninety-minute-old pollen tubes were stained with Ruthenium red dye for pectins or with Aniline blue for callose. Triangles mark the callose-free region. (B) The effects of altering the PA levels on pectin and callose deposition were quantified by ImageJ software. At least 16 cells were analyzed for each treatment in three independent experiments. Significant difference from the control samples is indicated by an asterisk (ANOVA, Tukey–Kramer test, p < 0.05). Scale bar = 10 μm.
Figure 6Pharmacological inhibition of DGK causes changes in vacuolar morphology. Ninety-minute-old pollen tubes were stained with the vacuolar marker 1 μM carboxy-DCFDA for 5 min and then transferred either to a control medium or media containing a particular drug or PA for 15 min. Subsequently, the pollen tubes were imaged with a confocal microscope. At least 20 cells were analyzed for each treatment in four independent experiments and typical examples are shown. Scale bar = 10 μm.
Figure 7PLD-derived PA is specifically involved in the regulation of the actin dynamics. Pollen tube cultures (90 min after imbibition in sucrose medium) were treated with a particular drug, PA or the corresponding volume of control solution for 5 or 20 min before fixation. The actin cytoskeleton was visualized by Alexa Fluor 633 Phalloidin as described in Pleskot et al. (2010). At least 20 cells were analyzed for each treatment in three independent experiments and typical examples are shown. Scale bar = 10 μm.
Figure 8Alterations in PA levels in tobacco pollen tubes result in changes in the growth and architecture of the cell. (A) Time-series analysis of pollen tubes treated with n-ButOH or PA by video-enhanced contrast microscopy. Ninety-minute-old cells were treated with 0.5% n-ButOH, 50 μM PA, or control medium and imaged after indicated times. The image field for control cells had to be shifted after 8 min of imaging and the starting position of the pollen tube tip after the shift is marked. At least six pollen tubes were imaged for each treatment and representative pictures are shown. (B) Growth rates of cells after treatments with n-ButOH, R59022 or PA. Data points represent the mean values of at least six pollen tubes ± SEM. Significant difference from the control samples is indicated by an asterisk (ANOVA, Tukey–Kramer test, p < 0.05). Scale bar = 5 μm.
Figure 9Changes in particle dynamics in pollen tubes in response to altered PA levels. (A) Analysis of particle movement in the tips of pollen tubes treated with n-ButOH, PA, or control medium. Three pollen tubes were selected from each treatment and the movement of individual particles in the tip was followed for total time of 500 ms in ∼80 ms intervals using the Manual Tracking plugin of the ImageJ software. (B) Analysis of movements of big organelles in the shank of the same pollen tubes as in (A) was done after 8 min. Data represent the mean values of 14–19 trajectories ± SEM. Significant difference from the control samples is indicated by an asterisk (ANOVA, Tukey–Kramer test, p < 0.05).
Figure 10PLD inhibition causes changes in the ultrastructure of the pollen tube tip and decreases the number of secretory vesicles. The micrographs in (A) show the ultrastructure of a control pollen tube and a cell treated with 0.5% n-ButOH for 15 min before chemical fixation. cw, cell wall; mt, mitochondrion; sv, secretory vesicle. Scale bar = 2 μm. (B) Quantification of secretory vesicles in the tip region. Three cells were analyzed for each treatment; data represent mean values ± SEM. Significant difference from the control sample is indicated by an asterisk (ANOVA, Tukey–Kramer test, p < 0.05).
Figure 11Antisense ODNs-mediated knock-down of tobacco LPP4 promotes pollen tube growth. Pollen tubes were cultivated in the presence of 30 μM antisense or sense ODNs against tobacco LPP4 for 90 min. At least 100 cells were measured for each treatment in three independent experiments. Data show the mean growth rates of pollen tubes ± SEM. The antisense-mediated promotion of the pollen tube growth rate is statistically significant in comparison with controls and sense ODNs (ANOVA, Kruskal–Wallis test, p < 0.05).