| Literature DB >> 17022830 |
Markus M Herrmann1, Sheena Pinto, Jantjeline Kluth, Udo Wienand, René Lorbiecke.
Abstract
<span class="abstract_title">BACKGROUND: The <span class="Species">tomato kinase Pto confers resistance to bacterial speck disease caused by Pseudomonas syringae pv. tomato in a gene for gene manner. Upon recognition of specific avirulence factors the Pto kinase activates multiple signal transduction pathways culminating in induction of pathogen defense. The soluble cytoplasmic serine/threonine kinase Pti1 is one target of Pto phosphorylation and is involved in the hypersensitive response (HR) reaction. However, a clear role of Pti1 in plant pathogen resistance is uncertain. So far, no Pti1 homologues from monocotyledonous species have been studied.Entities:
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Year: 2006 PMID: 17022830 PMCID: PMC1609167 DOI: 10.1186/1471-2229-6-22
Source DB: PubMed Journal: BMC Plant Biol ISSN: 1471-2229 Impact factor: 4.215
Figure 1Similarity and predicted genomic structure of ZmPti1a. (A) Alignment of Pti1 kinases from maize with SlPti1 from tomato. Amino acids identical in at least three of the sequences are highlighted in grey. The 11 canonical subdomains conserved in serine/threonine kinases are indicated with Roman numerals. Invariant residues common to the majority of protein kinases are marked with black dots. Invariant residues that are conserved in other protein kinases but not in Pti1 kinases are marked with open circles. The highly conserved lysine residue in subdomain II which is required for activity in SlPti1 and most protein kinases is boxed. Threonine 233 has been identified as the major site of SlPti1 phosphorylation by SlPto and is marked with an asterisk. Amino acids which differ between ZmPti1a and the deduced protein sequence of the second cloned ZmPti1a cDNA [GenBank:AY554282] are indicated above the sequences. (B) Genomic locus and restriction map of the ZmPti1a gene. Exons are indicated as boxes with Roman numerals. Start and stop of the open reading frame are marked with an arrow and asterisk, respectively. E, EcoRI; H, HindIII; P, PstI, X, XhoI.
Figure 2Phylogenetic analysis of ZmPti1 kinases. Similarity and phylogenetic relationship of Pti1 proteins from maize, rice, tobacco, soybean and tomato were calculated using ClustalX and visualized using Treeview. SlPto [gi 626010/pir:A49332] was used as the outgroup. Consensus sequences of the N-termini are given for each subgroup. Highly conserved residues are indicated in bold. Ambiguities are given in brackets with residues of high appearance in bold and of less appearance in subscribed letters.
Figure 3Transient expression of GFP fusion constructs. Wild type ZmPti1a, ZmPti1b, ZmPti1c, SlPti1 and N-terminal mutants of ZmPti1a were transiently expressed as C-terminal GFP fusion proteins in onion epidermal cells and in in vitro germinating pollen, respectively. Schematic representations of wild type and mutant GFP fusions are depicted in the table. Amino acids being potential targets for N-terminal modification are marked with asterisks above the ZmPti1a wild type sequence. For mutant constructs the subcellular localization is symbolized in the table; nucleus (n); cytoplasmic granules (g); cytoplasm (c). (A) Wild type ZmPti1a. Top panel: onion epidermal cell; bottom panel: pollen tube (B) 24 aa of the ZmPti1a N-terminus fused to GFP. (C) N-terminally truncated ZmPti1a. Top panel: onion epidermal cell; bottom panel: pollen tube (D) Wild type SlPti1 from tomato. (E) GFP control. (F) ZmPti1a containing Cys3 → Ala3 mutation. (G) ZmPti1a containing Gly2 → Ala2 and Cys3 → Ala3 mutation. (H) Wild type ZmPti1b. (I) Wild type ZmPti1c. Scale bars = 50 μm.
Figure 6Expression of ZmPti1a:GFP fusions in maize pollen. Transgenic maize lines ectopically expressing wild type ZmPti1a:GFP, Myr:GFP or ΔZmPti1a:GFP (see legend Fig. 2) were generated by biolistic transformation. Immature and mature pollen of segregating plants were harvested between 8 dba and anthesis and examined by epifluorescence microscopy. non-transgenic pollen (n-t); vacuole (v); vegetative nucleus (n); generative nucleus (g), septum (s); pollen apertures are indicated by arrows. (A) ZmPti1a:GFP expression in segregating pollen 6 dba. (B) Myr:GFP expression in segregating pollen 6 dba. (C) ΔZmPti1a:GFP expression in segregating pollen 6 dba. (D-F) ZmPti1a:GFP expresed in trinucleate pollen. GFP fluorescence is visible as an annulus-ring structure adjacent to or surrounding the pollen pore. (G, H) GFP fluorescence (top) and decolorized aniline blue staining (bottom) of ZmPti1a:GFP expressing trinucleate pollen. (I) Immature binucleate pollen expressing ΔZmPti1a:GFP. GFP expression is visible in the cytoplasm and the vegetative nucleus but not in the generative cell (left); bright field image of the same pollen (right). (J) Trinucleate pollen of wild type line H99 stained with decolorized aniline blue and showing callose deposition as annulus-ring structure adjacent to the pore. (K) Tube of in vitro germinated ZmPti1a:GFP pollen on PGM showing GFP epifluorescence bordering a callose plug (p); black arrow: direction of pollen tube growth; bottom: bright field image. (L) Decolorized aniline blue staining (left) and bright field image (right) of in vitro germinated A188 pollen with callose plugs (p). Scale bars in panels A – E, K, L = 50 μm; panels F – J = 20 μm
Figure 4Expression of . (A) Expression of ZmPti1 genes was analyzed in the sterile flavonol-deficient whp maize line and its corresponding wild type (WT) in developing staminate spikelets 9 dba (-9), 6 dba (-6), 3 dba (-3) and at anthesis (0) in mature pollen isolated from spikelets at anthesis (pollen mature), in pollen germinated in vitro for 10 min (pollen germ.), in silks, developing kernels 20 days after pollination (kernel dev. 20 dap), in kernels 7 days after germination (kernel germ.), in roots and leaves of 7-d-old seedlings and in mature leaves. Methylene blue stained ribosomal RNA is shown as loading control. (B) Expression of ZmPti1 genes in Fusarium graminearum infected maize cobs. Pathogen infected maize cobs of line A188 were harvested over a period of four weeks after infection and of a mock infected cob (3 weeks uninfected). RNA was isolated from kernels of cobs and divided into top (T) middle (M) and bottom (B). Corresponding cobs are shown at the top of the figure. 20 μg of total RNA of each probe were utilized for Northern blotting and subsequently hybridized to probes specific to ZmPti1b and ZmPti1c, respectively. Methylene blue stained ribosomal RNA served as loading control of the gel. Transcripts of a constitutively expressed Fusarium β-tubulin gene [60] were amplified by semi-quantitative RT-PCR from the same RNA probes, blotted and hybridized to a β-tubulin specific probe. The amount of amplified cDNAs served as an indicator of the severity of pathogen infection (β-tubulin RT-PCR).
Figure 5ZmPti1a protein expression and kinase activity. (A) Immunodetection of ZmPti1a protein in various tissues at different developmental stages of maize. Proteins from the sterile flavonol-deficient whp maize line and its corresponding wild type (WT) were size fractionated using PAGE (silks pollen, pollinated silks 6 h after pollination; see legend Fig. 3 for other tissues). Proteins were subjected to Western blot and detected using a polyclonal antibody raised against recombinant ZmPti1a. Ponceau stain of the blot is given as a control for loading of the gel. A strong band of the expected molecular size of the ZmPti1a protein of approximately 41 kDa is visible in extracts from mature pollen. Faint bands could be detected in protein of staminate spikelets at anthesis (0 dba) and pollinated silks after extended exposure times. (B) Autophosphorylation and cross-phosphorylation of ZmPti1a. Wild type ZmPti1a-His fusion protein, wild type MBP-SlPto, and the kinase-deficient mutants ZmPti1a-His(K100N) and GST-SlPti1(K96N) were over-expressed and purified in equal amounts from E. coli, using Ni-NTA magnetic beads, GST-Bind-Resin or amylose resin, respectively. Immobilized proteins were incubated alone or in pairs with [γ-32P]ATP in kinase buffer, separated by PAGE and exposed to X-ray film. Cross-phosphorylation of GST-SlPti1(K96N) by MBP-SlPto served as positive control. ZmPti1a is capable of autophosphorylation. The K100N mutation completely abolished autophosphorylation of ZmPti1a. ZmPti1a-His(K100N) is moderately phosphorylated by MBP-SlPto whereas ZmPti1a-His cannot phosphorylate GST-SlPti1. (C) Magnetocapture interaction kinase assay. Wild type ZmPti1a-His or mutant ZmPti1a-His(K100N) was immobilized on Ni-NTA magnetic beads and incubated with native protein extracts from pollen, silks or seedlings. ZmPti1 and bound proteins were collected by magnetic force, washed and subjected to kinase assays. Unloaded Ni-NTA magnetic beads were used as control. Proteins were separated by PAGE and exposed to X-ray film. Pollen and silk but not seedling extracts contained kinase activities capable of interaction with and cross-phosphorylating ZmPti1a-His(K100N).
Figure 7ZmPti1a:GFP localization during pollen mitosis I. Bright field, decolorized aniline blue staining and GFP epifluorescence of representative ZmPti1a:GFP transgenic pollen grains at four stages of pollen development. (I) Callose stage; (II) Compact callose stage; (III) Circular shaped prophase generative nucleus; (IV) Spindle shaped prophase generative nucleus. At this stage, the generative cell is still encased by callose and becomes spindle shaped. Later on, callose disappears and the generative cell immediately undergoes a second mitotic division resulting in trinucleate mature pollen. Stages I and III redrawn from [26]; stage II drawn according to [61]; stage IV redrawn from [62]; g = generative cell; n = vegetative nucleus; v = vacuole; A/B, G/H and J/K, show the same pollen grains, respectively.
Figure 8Genetic segregation analyses of transgenic . (A) T0 plants expressing a ZmPti1a directed RNAi construct were crossed reciprocally to wild type A188. Transmission of the RNAi transgene was scored in T1 siblings of each line as a percentage of 'transgenic PPT-resistant plants' to 'PPT-sensitive plants'. The progeny of wild type plants pollinated with pollen of transgenic plants (left) showed a significant difference from a 1:1 segregation ratio with a lower than expected marker transmission (Probability value based on χ2 test p < 0.001; n = number of individuals analyzed). (B) T1 transgenics were selfed and transmission of the transgene was scored in the T2 progeny as described. Plants showed a significant difference from the expected 3:1 segregation with a lower than expected marker transmission of only 53%. (C) Eight different heterozygous T2 transgenic plants were reciprocally crossed to wild type A188. Marker transmission was scored as described. Only the T3 progeny of wild type plants pollinated with pollen of transgenic plants showed a difference from a 1:1 segregation ratio. Marker transmission was significantly lowered to 33%.
Figure 9. (A) Northern and (B) Western analysis of ZmPti1a expression in pollen of wild type (H99, A188), T1 heterozygous transgenic (black bar), and PPT-resistant plants lacking the RNAi construct (#10 × WT; WT × #6). ZmPti1a mRNA and protein levels were quantified densitometrically and mRNA and protein levels in A188 were arbitrarily set to 1, respectively. All other values were calculated as multiples of that. Values of ZmPti1a-RNAi transgenic individuals are indicated in bold. Methylene blue staining of ribosomal RNA and Ponceau staining of proteins are given as a control for loading (C) Northern analysis of ZmPti1a expression in pollen of T2 descendants from selfed heterozygous T1 plants. Pollen of plants #2a and #5a contain no detectable levels of ZmPti1 mRNA. Expression of GAPDH was used as a loading control (D) Western analysis of ZmPTI1a protein expression in pollen of T3 siblings from descendants of plants #2a and #5a. ZmPTI1 protein was decreased to undetectable levels in all individuals analyzed. Numbers refer to transgenic lines; lower case letters indicate siblings of the same line.