WO2004101792A1 - Flowering inhibition - Google Patents
Flowering inhibition Download PDFInfo
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- WO2004101792A1 WO2004101792A1 PCT/AU2004/000634 AU2004000634W WO2004101792A1 WO 2004101792 A1 WO2004101792 A1 WO 2004101792A1 AU 2004000634 W AU2004000634 W AU 2004000634W WO 2004101792 A1 WO2004101792 A1 WO 2004101792A1
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- flowering
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- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07K—PEPTIDES
- C07K14/00—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof
- C07K14/415—Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from plants
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- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12N—MICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
- C12N15/00—Mutation or genetic engineering; DNA or RNA concerning genetic engineering, vectors, e.g. plasmids, or their isolation, preparation or purification; Use of hosts therefor
- C12N15/09—Recombinant DNA-technology
- C12N15/63—Introduction of foreign genetic material using vectors; Vectors; Use of hosts therefor; Regulation of expression
- C12N15/79—Vectors or expression systems specially adapted for eukaryotic hosts
- C12N15/82—Vectors or expression systems specially adapted for eukaryotic hosts for plant cells, e.g. plant artificial chromosomes (PACs)
- C12N15/8241—Phenotypically and genetically modified plants via recombinant DNA technology
- C12N15/8261—Phenotypically and genetically modified plants via recombinant DNA technology with agronomic (input) traits, e.g. crop yield
- C12N15/8262—Phenotypically and genetically modified plants via recombinant DNA technology with agronomic (input) traits, e.g. crop yield involving plant development
- C12N15/827—Flower development or morphology, e.g. flowering promoting factor [FPF]
Definitions
- the present invention relates to nucleic acid fragments encoding amino acid sequences for proteins involved in the control of flowering in plants, and the use thereof for the modification of flowering, particularly inhibiting flowering.
- FT FLOWERING LOCUS T
- the GIGANTEA (GI) gene has been shown to affect flowering dramatically, and it is positioned early in the interface of the circadian clock and the photoperiod perception mechanisms 17"20 .
- the gene is present as a single copy in arabidopsis and in rice, and its manipulation in rice has similar consequences as in arabidopsis, further supporting validity of the arabidopsis model for at least the photoperiodic control u , both in short day and in long day plants.
- nucleic acid sequences encoding some of the proteins involved in the control of flowering have been isolated for certain species of plants, there remains a need for materials useful in the modification of flowering in a wide range of plants, and for methods for their use.
- the present invention provides substantially purified or isolated nucleic acids encoding amino acid sequences of FLOWERING LOCUS T (FT) and TERMINAL FLOWER (TFL) proteins, and functionally active fragments and variants thereof, the presence of which inhibits flowering.
- FT FLOWERING LOCUS T
- TNL TERMINAL FLOWER
- the present invention also provides substantially purified or isolated nucleic acid fragments encoding amino acid sequences for a class of proteins, which are related to FT and TFL, the presence of which inhibits flowering.
- Such polypeptides are referred to herein as FT-like and TFL-like respectively.
- the genes which encode these polypeptides are expressed in a similar manner to FT and TFL, respectively.
- the invention also encompasses functionally active fragments and variants of nucleic acids encoding such polypeptides.
- FT-like relates to polypeptides that are produced in the plant in substantially the same organs and at substantially the same developmental stages as FT.
- TFL-like relates to polypeptides that are produced in the plant in substantially the same organs and at substantially the same developmental stages as TFL.
- the present invention provides substantially purified or isolated nucleic acids encoding amino acid sequences of GIGANTEA (GI) and SHORT VEGETATIVE PHASE (SVP) proteins, and functionally active fragments and variants thereof.
- GIGANTEA GIGANTEA
- SVP SHORT VEGETATIVE PHASE
- the present invention also provides substantially purified or isolated nucleic acid fragments encoding amino acid sequences for a class of proteins, which are related to GI and SVP, and functionally active fragments and variants thereof.
- Such polypeptides are referred to herein as Gl-like and SVP- like, respectively.
- the genes which encode these polypeptides are expressed in a similar manner to GI and SVP, respectively.
- the invention also encompasses functionally active fragments and variants of nucleic acids encoding such polypeptides.
- Gl-like relates to polypeptides that are produced in the plant in substantially the same organs and at substantially the same developmental stages as GI.
- SVP-like relates to polypeptides that are produced in the plant in substantially the same organs and at substantially the same developmental stages as SVP.
- the nucleic acid fragments are obtained from ryegrass (Lolium) or fescue (Festuca) species. These species may be of any suitable type, including
- the species is a ryegrass, more preferably perennial ryegrass (L. perenne).
- Nucleic acids according to the invention may be full-length genes or part thereof, and are also referred to as “nucleic acid fragments" and “nucleotide sequences" on this specification.
- the nucleic acid fragment may be of any suitable type and includes
- DNA such as cDNA or genomic DNA
- RNA such as mRNA
- isolated means that the material is removed from its original environment (eg. the natural environment if it is naturally occurring).
- a naturally occurring nucleic acid fragment or polypeptide present in a living plant is not isolated, but the same nucleic acid fragment or polypeptide separated from some or all of the coexisting materials in the natural system, is isolated.
- Such an isolated nucleic acid fragment could be part of a vector and/or such nucleic acid fragments could be part of a composition, and still be isolated in that such a vector or composition is not part of its natural environment.
- functionally active in respect of a nucleotide sequence is meant that the fragment or variant (such as an analogue, derivative or mutant) is capable of modifying flowering in a plant.
- Such variants include naturally occurring allelic variants and non-naturally occurring variants. Additions, deletions, substitutions and derivatizations of one or more of the nucleotides are contemplated so long as the modifications do not result in loss of functional activity of the fragment or variant.
- the functionally active fragment or variant has at least approximately 80% identity to the relevant part of the above mentioned sequence, more preferably at least approximately 90% identity, most preferably at least approximately 95% identity.
- Such functionally active variants and fragments include, for example, those having nucleic acid changes which result in conservative amino acid substitutions of one or more residues in the corresponding amino acid sequence.
- the fragment has a size of at least 30 nucleotides, more preferably at least 45 nucleotides, most preferably at least 60 nucleotides.
- the fragment or variant has one or more of the biological properties of the FT, FT- like, TFL, TFL-like, GI, Gl-like, SVP or SVP-like proteins. Additions, deletions, substitutions and derivatizations of one or more of the amino acids are contemplated so long as the modifications do not result in loss of functional activity of the fragment or variant.
- the functionally active fragment or variant has at least approximately 60% identity to the relevant part of the above mentioned sequence, more preferably at least approximately 80% identity, most preferably at least approximately 90% identity.
- Such functionally active variants and fragments include, for example, those having conservative amino acid substitutions of one or more residues in the corresponding arnino acid sequence.
- the fragment has a size of at least 10 amino acids, more preferably at least 15 amino acids, most preferably at least 20 amino acids.
- a regulatory element is capable of causing expression of said nucleic acid in a plant cell and said terminator is capable of terminating expression of said nucleic acid in a plant cell.
- said regulatory element is upstream of said nucleic acid and said terminator is downstream of said nucleic acid.
- an effective amount is meant an amount sufficient to result in an identifiable phenotypic trait in said plant, or a plant, plant seed or other plant part derived therefrom. Such amounts can be readily determined by an appropriately skilled person, taking into account the type of plant, the route of administration and other relevant factors. Such a person will readily be able to determine a suitable amount and method of administration. See, for example, Maniatis et al, Molecular Cloning: A Laboratory Manual, Cold Spring Harbor Laboratory, Cold Spring Harbor, the entire disclosure of which is incorporated herein by reference.
- the substantially purified or isolated nucleic acid fragment encoding a FT or TFL protein includes a nucleotide sequence selected from the group consisting of (a) sequences shown in Figure 1 hereto (Sequence ID Nos: 1-5); (b) complements of the sequences recited in (a); (c) sequences antisense to the sequences recited in (a) and (b); (d) functionally active fragments and variants of the sequences recited in (a), (b) and (c); and (e) RNA sequences corresponding to the sequences recited in (a), (b), (c) and (d).
- a nucleotide sequence selected from the group consisting of (a) sequences shown in Figure 1 hereto (Sequence ID Nos: 1-5); (b) complements of the sequences recited in (a); (c) sequences antisense to the sequences recited in (a) and (b); (d) functionally active fragments and variants of the sequences
- the substantially purified or isolated nucleic acid fragment encoding a GI or SVP protein includes a nucleotide sequence selected from the group consisting of (a) sequences shown in Figures 3 and 4 hereto (Sequence ID Nos. 6-12); (b) complements of the sequences recited in (a); (c) sequences antisense to the sequences recited in (a) and (b); (d) functionally active fragments and variants of the sequences recited in (a), (b) and (c); and (e) RNA sequences corresponding to the sequences recited in (a), (b), (c) and (d).
- a nucleotide sequence selected from the group consisting of (a) sequences shown in Figures 3 and 4 hereto (Sequence ID Nos. 6-12); (b) complements of the sequences recited in (a); (c) sequences antisense to the sequences recited in (a) and (b); (d) functionally active fragments and
- the nucleic acid fragments of the present invention may be used to isolate cDNAs and genes encoding homologous proteins from the same or other plant species.
- genes encoding other flowering control proteins may be isolated directly by using all or a portion of the nucleic acid fragments of the present invention as hybridisation probes to screen libraries from the desired plant employing the methodology known to those skilled in the art.
- Specific oligonucleotide probes based upon the nucleic acid sequences of the present invention can be designed and synthesized by methods known in the art.
- the entire sequences can be used directly to synthesize DNA probes by methods known to the skilled artisan such as random primer DNA labelling, nick translation, or end-labelling techniques, or RNA probes using available in vitro transcription systems.
- primers can be designed and used to amplify a part or all of the sequences of the present invention.
- the resulting amplification products can be labelled directly during amplification reactions or labelled after amplification reactions, and used as probes to isolate full length cDNA or genomic fragments under conditions of appropriate stringency.
- two short segments of the nucleic acid fragments of the present invention may be used in polymerase chain reaction protocols to amplify longer nucleic acid fragments encoding homologous genes from DNA or RNA.
- the polymerase chain reaction may also be performed on a library of cloned nucleic acid fragments wherein the sequence of one primer is derived from the nucleic acid fragments of the present invention, and the sequence of the other primer takes advantage of the presence of the polyadenylic acid tracts to the 3' end of the mRNA precursor encoding plant genes.
- the second primer sequence may be based upon sequences derived from the cloning vector.
- RACE protocol 30 (the entire disclosure of which is incorporated herein by reference) to generate cDNAs by using PCR to amplify copies of the region between a single point in the transcript and the 3' or 5' end.
- RACE protocols 30 the entire disclosure of which is incorporated herein by reference
- specific 3' or 5' cDNA fragments can be isolated 31,32 .
- Products generated by the 3' and 5' RACE procedures can be combined to generate full-length cDNAs.
- a substantially purified or isolated polypeptide from a ryegrass (Lolium) or fescue (Festuca) species selected from the group consisting of FT, FT-like, TFL and TFL-like proteins, and functionally active fragments and variants thereof.
- the ryegrass (Lolium) or fescue (Festuca) species may be of any suitable type, including Italian or annual ryegrass, perennial ryegrass, tall fescue, meadow fescue and red fescue.
- the species is a ryegrass, more preferably perennial ryegrass (L. perenne).
- a substantially purified or isolated FT, FT-like, TFL or TFL-like polypeptide including an amino acid sequence selected from the group of sequences translated from nucleotide sequences shown in Figure 1 hereto (Sequence ID Nos. 1-5); and functionally active fragments and variants thereof.
- polypeptide recombinantly produced from a nucleic acid according to the present invention.
- Techniques for recombinantly producing polypeptides are known to those skilled in the art.
- a substantially purified or isolated polypeptide from a ryegrass (Lolium) or fescue (Festuca) species selected from the group consisting of GI, Gl-like, SVP and SVP-like proteins, and functionally active fragments and variants thereof.
- a substantially purified or isolated GI, Gl-like, SVP and SVP-like polypeptide including an amino acid sequence selected from the group consisting of (a) sequences translated from nucleotide sequences shown in Figures 3 and 4 hereto (Sequence ID Nos. 8, 10 and 11); (b) sequences shown in Figures 3 and 4 hereto (Sequence ID Nos. 9 and 12); and (c) functionally active fragments and variants of (a) and (b).
- polypeptide recombinantly produced from a nucleic acid according to the present invention.
- Techniques for recombinantly producing polypeptides are known to those skilled in the art.
- nucleotide sequences of the present invention facilitates immunological screening of cDNA expression libraries.
- Synthetic peptides representing portions of the instant amino acid sequences may be synthesized. These peptides can be used to immunise animals to produce polyclonal or monoclonal antibodies with specificity for peptides and/or proteins comprising the amino acid sequences. These antibodies can be then used to screen cDNA expression libraries to isolate full-length cDNA clones of interest.
- a genotype is the genetic constitution of an individual or group.
- genotype is essential in commercial breeding programs, in determining parentage, in diagnostics and fingerprinting, and the like. Genotypes can be readily described in terms of genetic markers.
- a genetic marker identifies a specific region or locus in the genome. The more genetic markers, the finer defined is the genotype.
- a genetic marker becomes particularly useful when it is allelic between organisms because it then may serve to unambiguously identify an individual. Furthermore, a genetic marker becomes particularly useful when it is based on nucleic acid sequence information that can unambiguously establish a genotype of an individual and when the function encoded by such nucleic acid is known and is associated with a specific trait.
- nucleic acids and/or nucleotide sequence information including single nucleotide polymorphisms (SNPs), variations in single nucleotides between allelic forms of such nucleotide sequence, can be used as perfect markers or candidate genes for the given trait.
- SNPs single nucleotide polymorphisms
- a method of isolating a nucleic acid of the present invention including a single nucleotide polymorphism (SNP), said method including sequencing nucleic acid fragments from a nucleic acid library.
- SNP single nucleotide polymorphism
- the nucleic acid library may be of any suitable type and is preferably a cDNA library.
- the nucleic acid fragments may be isolated from recombinant plasmids or may be amplified, for example using polymerase chain reaction.
- the sequencing may be performed by techniques known to those skilled in the art.
- nucleic acids of the present invention including SNP's, and/or nucleotide sequence information thereof, as molecular genetic markers.
- nucleic acid according to the present invention and/or nucleotide sequence information thereof, as a molecular genetic marker.
- nucleic acids according to the present invention and/or nucleotide sequence information thereof may be used as a molecular genetic marker for quantitative trait loci (QTL) tagging, QTL mapping, DNA fingerprinting and in marker assisted selection, particularly in ryegrasses and fescues.
- QTL quantitative trait loci
- nucleic acids according to the present invention and/or nucleotide sequence information thereof may be used as molecular genetic markers in forage and turf grass improvement, e.g.
- sequence information revealing SNPs in allelic variants of the nucleic acids of the present invention and/or nucleotide sequence information thereof may be used as molecular genetic markers for QTL tagging and mapping and in marker assisted selection, particularly in ryegrasses and fescues.
- a construct including a nucleic acid according to the present invention may be a vector.
- the vector may include a regulatory element such as a promoter, a nucleic acid according to the present invention and a terminator; said regulatory element, nucleic acid and terminator being operatively linked.
- the vector may be of any suitable type and may be viral or non-viral.
- the vector may be an expression vector.
- Such vectors include chromosomal, non-chromosomal and synthetic nucleic acid sequences, eg. derivatives of plant viruses; bacterial plasmids; derivatives of the Ti plasmid from Agrobacterium tumefaciens, derivatives of the Ri plasmid from Agrobacterium rhizogenes; phage DNA; yeast artificial chromosomes; bacterial artificial chromosomes; binary bacterial artificial chromosomes; vectors derived from combinations of plasmids and phage DNA.
- any other vector may be used as long as it is replicable, or integrative or viable in the plant cell.
- the regulatory element and terminator may be of any suitable type and may be endogenous to the target plant cell or may be exogenous, provided that they are functional in the target plant cell.
- the construct or vector may include more than one nucleic acid.
- the nucleic acids within the same construct or vector may have identical or differing sequences.
- the construct or vector has at least two nucleic acids encoding proteins involved in the control of flowering.
- the construct or vector may include one or more FT or FT-like nucleic acids and one or more TFL or TFL-like nucleic acids according to the present invention, or functionally active fragments or variants thereof, in combination with other genes involved in the control of flowering timing.
- the genes involved in the control of flowering timing may be selected from a group consisting of GIGANTEA (GI), Gl-like, SVP and SVP-like, and fragments and variants thereof.
- one of the regulatory element is a promoter.
- promoters which may be employed in the vectors of the present invention are well known to those skilled in the art. Factors influencing the choice of promoter include the desired tissue specificity of the vector, and whether constitutive or inducible expression is desired and the nature of the plant cell to be transformed (eg. monocotyledon or dicotyledon).
- Particularly suitable constitutive promoters include the Cauliflower Mosaic Virus 35S (CaMV 35S) promoter, the maize Ubiquitin promoter, and the rice Actin promoter.
- terminators which may be employed in the vectors of the present invention are also well known to those skilled in the art. It may be from the same gene as the promoter sequence or a different gene. Particularly suitable terminators are polyadenylation signals, such as the CaMV 35S polyA and other terminators from the nopaline synthase (nos) and the octopine synthase (ocs) genes.
- the vector in addition to the regulatory element, the nucleic acid of the present invention and the terminator, may include further elements necessary for expression of the nucleic acid, in different combinations, for example vector backbone, origin of replication (ori), multiple cloning sites, spacer sequences, enhancers, introns (such as the maize Ubiquitin Ubi intron), antibiotic resistance genes and other selectable marker genes (such as the neomycin phosphotransferase (npt2) gene, the hygromycin phosphotransferase (hph) gene, the phosphinothricin acetyltransferase (bar or pat) gene), and reporter genes (such as beta-glucuronidase (GUS) gene (gusA).
- the vector may also contain a ribosome binding site for translation initiation.
- the vector may also include appropriate sequences for amplifying expression.
- the presence of the construct or vector in transformed cells may be determined by other techniques well known in the art, such as PCR (polymerase chain reaction), Southern blot hybridisation analysis, histochemical GUS assays, northern and Western blot hybridisation analyses.
- constructs and vectors of the present invention may be incorporated into a variety of plants, including monocotyledons (such as grasses from the genera Lolium, Festuca, Paspalum, Pennisetum, Panicum and other forage and turfgrasses, corn, rice, sugarcane, oat, wheat and barley, dicotyledons,
- constructs and vectors are used to transform monocotyledons, preferably grass species such as ryegrasses (Lolium species)
- fescues Festuca species
- a ryegrass most preferably perennial ryegrass, including forage- and turf-type cultivars.
- Such techniques 25 include Agrobacterium mediated introduction, electroporation to tissues, cells and protoplasts, protoplast fusion, injection into reproductive organs, injection into immature embryos and high velocity projectile introduction to cells, tissues, calli, immature and mature embryos.
- the choice of technique will depend largely on the type of plant to be transformed.
- Cells incorporating the constructs and vectors of the present invention may be selected, as described above, and then cultured in an appropriate medium to regenerate transformed plants, using techniques well known in the art.
- the culture conditions such as temperature, pH and the like, will be apparent to the person skilled in the art.
- the resulting plants may be reproduced, either sexually or asexually, using methods well known in the art, to produce successive generations of transformed plants.
- a plant cell, plant, plant seed or other plant part including, e.g. transformed with, a construct or vector of the present invention.
- the plant cell, plant, plant seed or other plant part may be from any suitable species, including monocotyledons, dicotyledons and gymnosperms.
- the plant cell, plant, plant seed or other plant part is from a monocotyledon, preferably a grass species, more preferably a ryegrass (Lolium species) or fescue (Festuca species), even more preferably a ryegrass, most preferably perennial ryegrass, including both forage- and turf-type cultivars.
- the present invention also provides a plant, plant seed or other plant part derived from a plant cell of the present invention.
- the present invention also provides a plant, plant seed or other plant part derived from a plant of the present invention.
- a method of modifying flowering in a plant including introducing into said plant an effective amount of a nucleic acid, construct and/or vector according to the present invention.
- the method includes inhibiting flowering in said plant.
- more than one regulatory gene is manipulated, to inactivate' multiple redundant and parallel genetic pathways that normally promote flowering in response to internal and external cues.
- the manipulated genes can be the FT/TFL family members, including both promoters and repressors; orthologs of the Gigantea (GI) gene, to disrupt the circadian clock, and therefore to interfere with the photoperiodic response; and the AGL24/SVP MADS box transcription factors, to interfere with response to autonomous and vernalization signals.
- RNA interference in transgenic plants can be used, or naturally or artificially induced hypomorphic alleles could be identified and bred into a production cultivar.
- flowering may be accelerated or delayed. It may be accelerated, for example, by incorporating additional copies of a sense nucleic acid of the present invention. It may be delayed, for example, by incorporating an antisense nucleic acid or dsRNA or small interfering RNA (siRNA) derived from the nucleotide sequences of the present invention.
- siRNA small interfering RNA
- the number of copies of genes encoding for different proteins involved in the timing of flowering may be simultaneously manipulated to modify flowering.
- a preparation for transforming a plant comprising at least one nucleic acid according to the present invention.
- the preparation may contain vectors or other constructs to facilitate administration to and/or transformation of the plant with the nucleic acid.
- the principle of elimination of flowering combined attenuation of expression of genes that control different genetic pathways that is described here can be applied to ryegrass to better control pasture production cycle, and to improve persistence by allowing a more controlled heading.
- the technology to eliminate flowering can be used in combination with system for accelerating or initiating flowering to achieve complete artificial control over vegetative to floral transition that will be independent of weather and growth conditions. Consequently, its application should not be limited to just forage grasses, and such system can be applied to any agricultural crop to facilitate more controlled production, and reduce dependence of yields on weather.
- Figure 1 shows the sequences of RgFTI (SEQ ID No. 2), RgFT2 (SEQ ID No. 1 ), RgMFT (SEQ ID No. 3), RgTFLI (SEQ ID No. 5) and RgTFL2 (SEQ ID No. 4).
- Figure 2 shows the alignment of translated protein sequences for RgFT2, RgFTI , RgTFLI and RgTFL2 in comparison to the sequences from other species.
- Figure 3 shows the sequence of the putative ryegrass ortholog of the GI gene (SEQ ID Nos. 6 and 7).
- Figure 4a shows the complete cDNA sequence of the RgSVP gene (SEQ ID No. 8).
- Figure 4b shows a translation of the RgSVP coding region (SEQ ID No. 9)-
- Figure 4c shows the gene structure of ryegrass SVP (SEQ ID Nos. 10- 12).
- Figure 5 shows the alignment of RgSVP predicted protein sequence with SVP proteins for other species.
- Figure 6 shows the RNA interference construct to inactivate the RgSVP gene.
- Figure 7 shows the alignment of protein translations of the ryegrass members of the FT TFC family with those from other plant species (SEQ ID Nos. 13-38).
- Figure 8 is a genetic linkage map of perennial ryegrass linkage group
- LG3 showing the position of the Gigantea gene in the ryegrass map of the linkage group 3.
- Marker locus names are indicated on the right side of the bar, with centimorgan (cM) distances on the left.
- the RgGI SNP marker is indicated in bold.
- the remaining loci, prefixed 'pps', are EST-SSR loci.
- Figure 9 shows heading dates for LpG/ RNAi transgenics.
- the line FN5001 flowered substantially later then the others.
- Figure 10 shows delayed flowering phenotypes of a GI-RNAi ryegrass transformant FN5001 (right).
- Circadian expression of the RgGI gene as measured by quantitative RT-PCR CL2 represents samples collected in long day conditions, CS2 samples were harvested in short days.
- RgFTI and 2 members of the TFL-like subfamily RgTFLI and 2 were isolated. These share significant sequence similarity with FT, but perform the opposite function of floral repression in arabidopsis 8 ' 9,33 rather than accelerating flowering.
- cDNAs for these genes were isolated using degenerate primers design to amplify conserved regions of the family. Complete cDNA sequences, where available, were obtained by 3' and 5'RACE. Sequences of these additional members of the ryegrass family are shown in Figure 1.
- RgFTI , 2 and 3 are inactivated via RNAi in transgenics, TILLING, or identification and selective breeding to fix hypomorphic natural alleles.
- RgTFLI , 2 and LpTFL are constitutively overexpressed, using appropriate transgenic constructs.
- Partial cDNA sequence of the putative ryegrass orthologue was identified in the cDNA library. Complete cDNA sequence was obtained using 5'-RACE.
- Sequence analysis shows that the cDNA sequence of the putative ryegrass GI gene has been isolated, based on comparison with Gl-like genes from other grasses.
- the sequence contains uninterrupted open reading frame representing the full-size ryegrass GI protein.
- the perennial ryegrass population used for the genetic mapping of the rgFT3 SNP (single nucleotide polymorphism) marker and SSR (simple sequence repeat) markers was an Ft progeny set derived from a pair cross between the heterozygous parental genotypes A8830/1030 (from the cultivar 'Grasslands Samson') and A10622/2 (from the cultivar 'Grasslands Impact').
- Genomic DNA was extracted by the 1 x CTAB method of Fulton et al. (1995).
- Genotypic data for 94 mapping population progeny was generated using
- EST-SSR PCR was conducted using the three primer protocol described by Schuelke (2000). An 8 ⁇ L reaction volume was used, containing 10 ng of genomic DNA, 2.5 mM magnesium chloride, 1x PCR buffer (Invitrogen, Carlsbad, California, USA), 0.05 mM of each dNTP, 0.0375 ⁇ M forward primer, 0.15 ⁇ M reverse primer, 0.15 ⁇ M of fluorescent-labelled M13 primer and 0.3 U of Platinum Taq DNA polymerase (Invitrogen). Fluorophores used were 6-FAMTM, NEDTM, VICTM and PETTM (Applied Biosystems, Foster City, California, USA).
- EST-SSR primers were synthesised and supplied by either Invitrogen or Integrated DNA Technologies (Coralville, Iowa, USA). PCR reactions were run in iCyclers (BioRad, Hercules, California, USA), employing the following profile: (1 ) 94°C for 4:00 minutes, (2) 30 cycles of: 94°C for 30 seconds, 55°C for 30 seconds and 72°C for 30 seconds, (3) 8 cycles of: 94°C for 30 seconds, 53°C for 30 seconds and 72°C for 30 seconds, (4) 72°C for 30 minutes.
- the A8830/1030 x A10622 population was analysed as a two-way pseudo-testcross (Grattapaglia and Sederoff 1994). Genetic linkage analysis was conducted using the CP module of JoinMap ® 3.0 software (www.kvazma.nl). Map distances in centimorgans (cM) were calculated using the Kosambi mapping function (Kosambi 1944). Genetic linkage maps were first established separately for A8830/1030 and A10622 using segregation data from EST-SSR and SNP markers that could be derived as dominant features.
- Polymorphic loci detected by the same EST-SSR primer pair at similar locations on the maps of both parents were used to identify and align homologous linkage groups in the two parental maps, and to check for consistency of recombination frequency between the parental genotypes.
- Parental datasets were then combined and a consensus genetic linkage map was constructed, using a maximum recombination frequency of 0.4 and minimum LOD threshold of 2.0.
- Ryegrass plants were grown outside and subjected to cold over the winter to achieve natural vernalization. They were then transferred to a glass house, and grown either in natural short day (SD) conditions ( ⁇ 11 hrs daylight), or with supplementary light to create artificial long day (LD) conditions (18 hr day). End of day in both conditions was at ⁇ 18:00. Plant samples were harvested as entire above-ground tillers 10 days after the long day treatment started, samples were taken every 2 hrs for 24 hours from both LD and SD treated plants. Total RNA was extracted from samples using the Trizol protocol as follows:
- Plant tissue pre-homogenisation treatment Remove relevant bags of plant tissue from -80°C freezer. Keep frozen in liquid N 2 or on dry ice until ready for treatment. Prechill coffee grinder by processing two dry ice pellets (7g pellets).
- Quantitative RT-PCR was performed in the BioRad iCycler instrument using standard protocols and SyberGreen as reporting dye
- Actin gene levels were assayed using oligonucleotides GTF037 5'GCTGTTTTCCCTAGCATTGTTGG3' (SEQ ID No. 45) and GTF038 5'ATAAGAGAATCCGTGAGATCCCG3'(SEQ ID No. 46), and served as standards to normalize measurements of other genes.
- RgGI mRNA levels were measured using oligonucleotides GIK16 and GIK17 described in the mapping example.
- Amplifications were performed in triplicates, error rates were estimated by adding the average variance between triplicate samples, and average error of the standard curve fit of the standards of both the gene of interest and of the actin standard.
- the mRNA levels of the RgGI gene change significantly over the 24-hour cycle.
- the periodicity of expression suggests that the ryegrass gene, like its arabidopsis orthologue, is under the control of the circadian clock.
- the expression levels do not change significantly in photo inductive conditions, however, there may be a phase shift in long days to earlier increase, coincident with light exposure.
- Such circadian regulation of expression, as well as phase shift in long days strongly support the role of the RgGI gene, in mediating and controlling the photoperiodic floral response of ryegrass, as postulated in the external coincidence hypothesis for arabidopsis
- the gene was identified in the EST collection, and the EST clone was completely sequenced. Diagram of the gene structure is shown in Figure 4.
- RNAi-type constructs described here for FT TFL and GI genes involved similar vector system and experimental approach.
- SNPs can be used for mapping of the gene, and for allele association studies and identification of hypomorphic alleles.
- This invention can be applied to ryegrass Lolium perenne, for which we have developed efficient stable transformation system as follows:
- Hygromycin stock solution 50 mg/ml in PDS, sterile
- Plasmids are co-transformed.
- One plasmid (pAcH1 ) contains the hygromycin phosphotransferase gene conferring resistance to the antibiotic hygromycin expressed from the rice actin promoter and the second plasmid contains the genetic construct of interest for transformation. Plasmids are mixed in a one to one ratio at 1 ⁇ g/ ⁇ Land simultaneously coated onto the microcarriers.
- Microcarriers (1.0 ⁇ m)
- Weights and volumes required of each individual ingredient are specified in Table 1. Adjust media pH to 5.8 with KOH. The addition of a solidifying agent is required. Use agarose (for LP3, LP5 and LP3-OS) and 0.8% (w/v) Agar for MSO and MSK prior to sterilising. Media LP3, LP5 and MSK are modified from Murashige and Skoog (1962).
- Hd1 a major photoperiod sensitivity quantitative trait locus in rice, is closely related to the Arabidopsis flowering time gene
- GIGANTEA a circadian clock-controlled gene that regulates photoperiodic flowering in Arabidopsis and encodes a protein with several possible membrane-spanning domains.
- Patent WO9949064
- GIGANTEA is a nuclear protein involved in phytochrome signaling in Arabidopsis. Proc Natl Acad Sci U S A 97 (17), 9789-9794.
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Priority Applications (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US10/557,031 US9120864B2 (en) | 2003-05-16 | 2004-05-14 | Flowering inhibition |
| AU2004238891A AU2004238891B2 (en) | 2003-05-16 | 2004-05-14 | Flowering inhibition |
| NZ543674A NZ543674A (en) | 2003-05-16 | 2004-05-14 | Nucleic acids encoding amino acids sequences of flowering locus T (FT) which is involved in the control of the flowering of plants |
| EP04732883A EP1627064A4 (en) | 2003-05-16 | 2004-05-14 | Flowering inhibition |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| AU2003902412A AU2003902412A0 (en) | 2003-05-16 | 2003-05-16 | Flowering inhibition |
| AU2003902412 | 2003-05-16 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2004101792A1 true WO2004101792A1 (en) | 2004-11-25 |
Family
ID=31501279
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/AU2004/000634 Ceased WO2004101792A1 (en) | 2003-05-16 | 2004-05-14 | Flowering inhibition |
Country Status (6)
| Country | Link |
|---|---|
| US (1) | US9120864B2 (en) |
| EP (2) | EP1627064A4 (en) |
| AU (3) | AU2003902412A0 (en) |
| DK (1) | DK2397554T3 (en) |
| NZ (3) | NZ566723A (en) |
| WO (1) | WO2004101792A1 (en) |
Cited By (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2010025888A3 (en) * | 2008-09-02 | 2011-04-07 | Syngenta Participations Ag | Engineering of bolting resistance in sugar beet by means of the transgenic expression of the beet homologue of flowering time control gene ft |
| US8237013B2 (en) | 2004-07-08 | 2012-08-07 | Dlf-Trifolium A/S | Means and methods for controlling flowering in plants |
| CN103694325A (en) * | 2013-08-22 | 2014-04-02 | 西南大学 | Herba epimedii EsSVP protein, gene coding same and application thereof |
Families Citing this family (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| GB201003702D0 (en) * | 2010-03-05 | 2010-04-21 | Univ Warwick | Molecular engineering of a floral inducer for crop improvement |
| MX2024010443A (en) * | 2022-02-25 | 2024-09-11 | Univ Florida | Compositions and methods for suppression of flowering in sugarcane and energycane. |
Citations (9)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO1999049064A2 (en) * | 1998-03-20 | 1999-09-30 | Plant Bioscience Limited | Plant control genes |
| WO2001026459A2 (en) * | 1999-10-12 | 2001-04-19 | Mendel Biotechnology, Inc. | Flowering time modification |
| US20010051335A1 (en) * | 1998-04-21 | 2001-12-13 | Raghunath V. Lalgudi | Polynucleotides and polypeptides derived from corn tassel |
| WO2002033091A1 (en) * | 2000-10-19 | 2002-04-25 | Agriculture Victoria Services Pty Ltd | Manipulation of flowering and plant architecture |
| WO2002044390A2 (en) * | 2000-11-28 | 2002-06-06 | E. I. Du Pont De Nemours And Company | Floral development genes |
| US6476212B1 (en) * | 1998-05-26 | 2002-11-05 | Incyte Genomics, Inc. | Polynucleotides and polypeptides derived from corn ear |
| WO2003000904A2 (en) * | 2001-06-22 | 2003-01-03 | Syngenta Participations Ag | Identification and characterization of plant genes |
| WO2003048319A2 (en) * | 2001-11-30 | 2003-06-12 | Syngenta Participations Ag | Nucleotide sequences encoding proteins conferring abiotic stress tolerance in plants |
| EP1342785A1 (en) * | 2000-11-24 | 2003-09-10 | National Institute of Agrobiological Sciences | Gene hd3a inducing flowering of plant and utilization thereof |
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|---|---|---|---|---|
| GB9518731D0 (en) | 1995-09-13 | 1995-11-15 | Innes John Centre | Flowering genes |
| US6225530B1 (en) | 1998-04-15 | 2001-05-01 | The Salk Institute For Biological Studies | Flowering locus T (FT) and genetically modified plants having modulated flower development |
| AU3380600A (en) | 1999-02-25 | 2000-09-14 | Wisconsin Alumni Research Foundation | Alteration of flowering time in plants |
| EP1055729A1 (en) | 1999-05-18 | 2000-11-29 | Max-Planck-Gesellschaft zur Förderung der Wissenschaften e.V. | Transgenic plants exhibiting an altered flowering time |
| US20050013996A1 (en) | 2002-03-08 | 2005-01-20 | Hatfield Stephen F. | Hot melt pressure sensitive adhesives for disposable articles |
| AU2003227061B2 (en) * | 2002-03-11 | 2008-06-05 | Dlf - Trifolium A/S | Method of repressing flowering in a plant |
| WO2004022755A2 (en) | 2002-09-05 | 2004-03-18 | Genesis Research And Development Corporation Limited | Polypeptides involved in the regulation of flowering in forage grasses |
-
2003
- 2003-05-16 AU AU2003902412A patent/AU2003902412A0/en not_active Abandoned
-
2004
- 2004-05-14 DK DK10184112.0T patent/DK2397554T3/en active
- 2004-05-14 NZ NZ566723A patent/NZ566723A/en not_active IP Right Cessation
- 2004-05-14 WO PCT/AU2004/000634 patent/WO2004101792A1/en not_active Ceased
- 2004-05-14 NZ NZ579787A patent/NZ579787A/en not_active IP Right Cessation
- 2004-05-14 AU AU2004238891A patent/AU2004238891B2/en not_active Ceased
- 2004-05-14 EP EP04732883A patent/EP1627064A4/en not_active Withdrawn
- 2004-05-14 US US10/557,031 patent/US9120864B2/en not_active Expired - Fee Related
- 2004-05-14 NZ NZ543674A patent/NZ543674A/en not_active IP Right Cessation
- 2004-05-14 EP EP10184112.0A patent/EP2397554B1/en not_active Expired - Lifetime
-
2009
- 2009-08-20 AU AU2009210389A patent/AU2009210389B2/en not_active Ceased
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| WO1999049064A2 (en) * | 1998-03-20 | 1999-09-30 | Plant Bioscience Limited | Plant control genes |
| US20010051335A1 (en) * | 1998-04-21 | 2001-12-13 | Raghunath V. Lalgudi | Polynucleotides and polypeptides derived from corn tassel |
| US6476212B1 (en) * | 1998-05-26 | 2002-11-05 | Incyte Genomics, Inc. | Polynucleotides and polypeptides derived from corn ear |
| WO2001026459A2 (en) * | 1999-10-12 | 2001-04-19 | Mendel Biotechnology, Inc. | Flowering time modification |
| WO2002033091A1 (en) * | 2000-10-19 | 2002-04-25 | Agriculture Victoria Services Pty Ltd | Manipulation of flowering and plant architecture |
| EP1342785A1 (en) * | 2000-11-24 | 2003-09-10 | National Institute of Agrobiological Sciences | Gene hd3a inducing flowering of plant and utilization thereof |
| WO2002044390A2 (en) * | 2000-11-28 | 2002-06-06 | E. I. Du Pont De Nemours And Company | Floral development genes |
| WO2003000904A2 (en) * | 2001-06-22 | 2003-01-03 | Syngenta Participations Ag | Identification and characterization of plant genes |
| WO2003048319A2 (en) * | 2001-11-30 | 2003-06-12 | Syngenta Participations Ag | Nucleotide sequences encoding proteins conferring abiotic stress tolerance in plants |
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| Title |
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| DATABASE GENBANK [online] 1999, CONG B. ET AL.: "Cen-like protein FDR2 (oryza sativa)", XP003003495, Database accession no. (AAD42896) * |
| DATABASE GENBANK [online] 1999, FOWLER S. ET AL.: "GIGANTEA: a circadian clock-controlled gene that regulates photoperiodic flowering in Arabidopsis and encodes a protein with several possible membrane-spanning domains", XP003003498, Database accession no. (AJ133787) * |
| DATABASE GENBANK [online] 1999, PARK D.H. ET AL.: "GIGANTEA (Arabidopsis thaliana)", XP003003499, Database accession no. (AAF00023) * |
| DATABASE GENBANK [online] 2000, TAYLOR C. ET AL.: "Lolium perenne clone LpV532", XP003003493, Database accession no. (AF290457) * |
| DATABASE GENBANK [online] 2001, JENSEN C.S. ET AL.: "A TERMINAL FLOWER1-like gene from perennial ryegrass involved in floral transition and axilliary meristem identity", XP003003494, Database accession no. (AF316419) * |
| DATABASE GENBANK [online] 2002, BOSS P.K., THOMAS M.R.: "Terminal flower-like protein 1 (Vitis vinifera)", XP003003496, Database accession no. (AAM46142) * |
| DATABASE GENBANK [online] 2002, DUNFORD R.P., LAURIE D.A.: "Hordeum vulgare gigantea-like protein", XP003003497, Database accession no. (AF411229), (AAL08497) * |
| DATABASE GENBANK [online] 2002, MUENSTER T. ET AL.: "Maize MADS-box genes galore", XP003003500, Database accession no. (CAD23439) * |
| DATABASE GENBANK [online] 2002, SHINOZUKA Y. ET AL.: "MADS box-like protein (Oryza sativa(japonica cultivar-group))", XP003005701, Database accession no. (BAA81880) * |
| DATABASE PROTEIN Database accession no. AAG31808 * |
| DATABASE PROTEIN Database accession no. CAB56058 * |
| DATABASE PROTEIN Database accession no. CAD23409 * |
| See also references of EP1627064A4 * |
Cited By (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US8237013B2 (en) | 2004-07-08 | 2012-08-07 | Dlf-Trifolium A/S | Means and methods for controlling flowering in plants |
| WO2010025888A3 (en) * | 2008-09-02 | 2011-04-07 | Syngenta Participations Ag | Engineering of bolting resistance in sugar beet by means of the transgenic expression of the beet homologue of flowering time control gene ft |
| US8637737B2 (en) | 2008-09-02 | 2014-01-28 | Syngenta Participations Ag | Engineering of bolting resistance in sugar beet by means of the transgenic expression of the beet homologue of flowering time control gene FT |
| EA024958B1 (en) * | 2008-09-02 | 2016-11-30 | Зингента Партисипейшнс Аг | Engineering of bolting resistance in sugar beet by means of the transgenic expression of the beet homologue of flowering time control gene ft |
| CN103694325A (en) * | 2013-08-22 | 2014-04-02 | 西南大学 | Herba epimedii EsSVP protein, gene coding same and application thereof |
Also Published As
| Publication number | Publication date |
|---|---|
| AU2009210389B2 (en) | 2012-07-12 |
| NZ543674A (en) | 2008-06-30 |
| NZ566723A (en) | 2009-10-30 |
| US20070192904A1 (en) | 2007-08-16 |
| EP2397554A1 (en) | 2011-12-21 |
| EP2397554B1 (en) | 2017-08-02 |
| US9120864B2 (en) | 2015-09-01 |
| AU2004238891B2 (en) | 2009-05-21 |
| EP1627064A1 (en) | 2006-02-22 |
| AU2004238891A1 (en) | 2004-11-25 |
| NZ579787A (en) | 2011-06-30 |
| AU2009210389A1 (en) | 2009-09-17 |
| AU2003902412A0 (en) | 2003-06-05 |
| DK2397554T3 (en) | 2017-10-23 |
| EP1627064A4 (en) | 2006-11-22 |
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