WO2012074532A1 - Development of very early flowering and normal fruiting plum with fertile seeds - Google Patents
Development of very early flowering and normal fruiting plum with fertile seeds Download PDFInfo
- Publication number
- WO2012074532A1 WO2012074532A1 PCT/US2010/058916 US2010058916W WO2012074532A1 WO 2012074532 A1 WO2012074532 A1 WO 2012074532A1 US 2010058916 W US2010058916 W US 2010058916W WO 2012074532 A1 WO2012074532 A1 WO 2012074532A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- plant
- prunus
- ptftl
- flowering
- transgenic
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Ceased
Links
Classifications
-
- 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
-
- 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
- This invention relates to the development of transgenic plum genotypes which flower very early and continually and produce normal fruits and fertile seeds within six to twelve months and the seeds and plants obtained from such transgenic plants.
- the invention also relates to a method of transforming plum plant cells and plum plants utilizing a recombinant vector containing the construct comprising the gene for early flowering, PtFTl.
- Prunus is the horticulturally valuable genus in the family Rosaceae.
- Members of the family Rosaceae are cultivated for their fruits (peaches, plums, apricots, nectarines, cherries), nuts (almond) or for their ornamental flowers (flowering cherries).
- Prunus fruits are a rich source of antioxidants which are widely reported to reduce cancer risks in humans.
- Conventional breeding and the application of molecular genetic technology such as structural and functional genomics and genetic engineering can be used to improve Prunus species.
- Fruit tree breeding is a slow, arduous process that has changed little over the centuries.
- the long juvenile (pre-flowering) period of three to eight years is a severe impediment to the genetic improvement of both conventionally bred and transgenic Prunus fruit trees.
- Several generations of backcrossing and selection are required to develop improved Prunus cultivars; this process normally takes more than 20 years (Scorza, R. 2001. HortScience 36: 855-858).
- Limitations also include large land areas with significant field costs, and yearly limitations on flowering and fruiting related to chill and heat requirements. Shortening the 3-8 year juvenile period oiPrunus fruit trees to a year or less by inducing early flowering in fruit trees could dramatically reduce the time, space and cost required for genetic improvement of fruit trees and result in the production of better quality fruits.
- Tree fruits are temperate crops which are cultivated in orchard systems and require a period of chilling for continued growth and fruit production. They produce a single crop of fruit/nuts per year, the timing of which depends on the species and variety but is typically between the months of June and September.
- the amount of chill needed for each variety and the timing of flowering and fruit set impose significant barriers to where individual species and cultivars can be productively grown. This situation results in product surplus during summer months and a lack of product in the winter months but often filled by foreign imports.
- the ability to alter these crops such that they are no longer limited by time of chilling and/or extend the production season through continued flowering and fruit set would provide substantial improvements to crop productivity and market delivery.
- Other genes associated with flower induction include: FLOWERING LOCUS D (FD), and CAULIFLOWER (CAL). Overexpression of these genes individually or collectively and the silencing of TERMINAL FLOWER I (TFLI), can induce early flowering in Arabidopsis and other plants; for review, see Parcy, F. (2005. Int. J. Dev. Biol. 49: 585-593).
- LFY and API determine flower meristems (Parcy, supra); API, LFY, FT and FUL have been used to shorten the juvenility period in trees resulting in early flowering.
- FT protein produced in companion cells of phloem in small veins of leaves is translocated to shoot apical meristems where it activates the shoot apical meristem-specific transcription factor FD which in turn recruits the meristem-identity gene LFY and its homologs API and CAL to induce flowering in plants (Abe et al. 2005. Science 309: 1052-1056; Parcy, supra; Wigge et al. 2005.
- It is another object of the invention to provide a method of producing an early flowering plant comprising: constructing a recombinant vector comprising the PtFTl gene, transforming Prunus plant cells with the recombinant vector, and regenerating a plant from the obtained transformant.
- It is another object of the invention to provide a method of improving Prunus breeding to obtain new improved cultivars comprising: using a strategy for accelerating the Prunus breeding cycle by transforming Prunus plant cells with the recombinant vector comprising the PtFTl transgene, obtaining transformants which flower early and continually and produce ripe fruits with fertile seeds, regenerating early and continually flowering PtFTl Prunus plants from the obtained transformants, breeding the PtFTl Prunus transformants to non-transformed Prunus plants to obtain improved varieties of plants, and selecting the plants that do not carry the PtFTl transgene for use in conventional breeding.
- Figures 1A-1F depict branching and canopy architecture of the transgenic phenotype.
- Figure 1A shows the highly branched and profuse flowering upright transgenic phenotype.
- Figure IB shows a one year old control 'BlueByrd' seedling showing few small lateral branches.
- Figure 1C shows the canopy of an upright grown transgenic line.
- Figure ID shows the canopy of a partially upright phenotype.
- Figure IE shows the bushy phenotype.
- Figure IF shows the canopy architecture of the bushy phenotype. Leaves were removed from Figures IB, 1C, and ID to show the canopy architecture.
- Figures 2A-2L depict flowering in the transgenic plants.
- Figure 2 A depicts flower bud formation from leaf axils of an in vitro produced plantlet.
- Figure 2B depicts an in vitro- regenerated shoot showing a cluster of flower buds.
- Figure 2C depicts flowering from in vzYro-produced transgenic plantlets.
- Figure 2D depicts multiple flowers produced from a plantlet.
- Figure 2E shows an anther from an in vzYro-produced flower showing pollen grains.
- Figure 2F depicts the double pistils from an in vzYro-produced flower.
- Figure 2G shows leafy sepals in flowers produced in some greenhouse-grown transgenic line.
- Figure 2H shows flowering in a rooted plantlet grown in a growth chamber.
- Figure 21 depicts early flowering from lateral shoots of a transgenic line one month after planting in the greenhouse.
- Figure 2J depicts development of flowers from old buds on the trunk of a transgenic plant in the greenhouse.
- Figure 2K shows four kinds of flowering habits of the early flowering plum phenotype.
- Figure 2L depicts a lateral shoot showing a single flower and terminal and axillary panicle of flowers.
- Figures 3A-3F depict the development of ripe plum fruits.
- Figure 3 A shows the development of ripe plum fruits from a pot-grown transgenic plant 6 months after planting in the greenhouse.
- Figure 3B shows multiple fruits from a flower.
- Figure 3C shows control 'BlueByrd' plums from the orchard.
- Figure 3D shows ripe plums developed from an early- flowered transgenic plant in the greenhouse.
- Figure 3E depicts a longitudinally cut control plum.
- Figure 3F depicts a longitudinally cut transgenic plum showing flesh and seed development. The insert shows the size of the control seed (upper) and the transgenic plum stone.
- Figure 4 depicts an early continually flowering plum plant in the greenhouse.
- Fig. 4A shows a mature crop on a 1-year old fruiting plant.
- Fig. 4B shows a close-up view of fruit of the plant of Fig. 4A.
- Fig. 4C depicts flowers and two fruits at different stages of development on this same plant, illustrating the continuous production of flowers and fruit on plants containing the PtFTl gene construct.
- Figure 5 depicts quantitative PCR analyses of RNA extracted from leaves sampled from flowering and non- flowering transgenic plants grown in the greenhouse.
- the histogram shows relative amounts of PtFTl and NPTII transcripts in leaves as compared to transgenic line 126 anchored as 100%.
- Profusely flowering transgenic lines 3, 103, 158, 174, and 175 showed more transcripts as compared to non-flowering and intermittently flowering plants.
- Figures 6A and 6B depict three year old, greenhouse grown plum plants.
- Figure 6A depicts a three year old FT plum plant with flowers and fruit that has never undergone vernalization.
- Figure 6B depicts a similar aged standard plum tree that has nearly ceased growing after only one year in the greenhouse without vernalization.
- Figure 7 is an image showing flower panicles formed in FT plums.
- Figures 8A-C show the effects of three weeks of growth at 21°C or 29°C for control plums (first two bars) and an FT plum line (2 nd two bars) on flowering (Figure 8A), on bud development ( Figure 8B) and on bud break (Figure 8C).
- Figures 9A and 9B show the effect of temperature on fruit retention.
- Figure 9A shows fruit retention in plants shifted to 21°C after 6 weeks of growth at 29°C (left) vs. 21 °C (right). The plant on the left carries nearly 30 fruit while the plant on the right has none.
- Figure 9B shows clones of the same FT plum line grown under 29°C (left) vs. 21°C (right) prior to vernalization.
- Figure 10 illustrates a breeding scheme depicting the introgression of a single dominant disease resistance trait (R) from wild type germplasm with poor fruit quality to a high quality variety.
- Figure 1 1 illustrates the short day insensitivity of FT plums.
- Figure 12 illustrates the lack of chill requirement of FT plums. DETAILED DESCRIPTION OF THE INVENTION
- Temperate tree fruit crops require a period of dormancy to induce flower formation and bear fruit. This attribute limits their cultivation to temperate zones with sufficient chilling hours. Production is absent in the winter months and can be over-abundant during the growing season exceeding the demand of the local market and making export of fresh product difficult, particularly for fruit with poor storage qualities. Recent climate models predict that by mid-century major temperature crop production regions will no longer experience sufficient chilling to support many fruit crops and new, adaptable systems for temperate tree fruit production will be needed.
- Plums usually initiate flowers in lateral buds of both the current season shoots as well as in the new growth of older spurs. Each bud contains 1-3 flowers and no leaves. All terminal buds are vegetative.
- PtFTl -expressing early flowering plum plants produced 1-3 axillary flower buds from leaf axils of current shoots. Terminal panicles of 4 to 8 flowers could be observed in the lateral shoots of PtFTl -expressing plants; this was not observed in control plum trees.
- the overexpression of the PtFTl gene altered the natural flowering habit of plums by producing terminal and axillary panicles of flowers and multiple axillary flowers.
- Transformation refers to the transfer of a nucleic acid fragment into the genome of a host organism, resulting in genetically stable inheritance. Host organisms containing the transformed nucleic acid fragments are referred to as "transgenic" organisms. Examples of methods of plant transformation include Agrobacterium-mQdiatQd transformation (De Blaere et al. 1987. Meth. Enzymol. 143 :277) and particle-accelerated or "gene gun” transformation technology (Klein et al. 1987. Nature (London) 327:70-73; U.S. Pat. No. 4,945,050, incorporated herein by reference). Additional transformation methods are disclosed below.
- isolated polynucleotides of the present invention can be incorporated into recombinant constructs, typically DNA constructs, capable of introduction into and replication in a host cell.
- a construct can be a vector that includes a replication system and sequences that are capable of transcription and translation of a polypeptide-encoding sequence in a given host cell.
- a number of vectors suitable for stable transfection of plant cells or for the establishment of transgenic plants have been described in, e.g., Pouwels et al. 1985. Supp. 1987. Cloning Vectors: A Laboratory Manual; Weissbach and Weissbach. 1989. Methods for Plant Molecular Biology, Academic Press, New York; and Flevin et al. 1990. Plant
- plant expression vectors include, for example, one or more cloned plant genes under the transcriptional control of 5' and 3' regulatory sequences and a dominant selectable marker.
- plant expression vectors also can contain a promoter regulatory region (e.g., a regulatory region controlling inducible or constitutive, environmentally- or developmentally- regulated, or cell- or tissue-specific expression), a transcription initiation start site, a ribosome binding site, an RNA processing signal, a transcription termination site, and/or a polyadenylation signal.
- nucleic acid molecule As used herein, the terms “nucleic acid molecule”, “nucleic acid sequence”, “polynucleotide”, “polynucleotide sequence”, “nucleic acid fragment”, “isolated nucleic acid fragment” are used interchangeably herein. These terms encompass nucleotide sequences and the like.
- isolated polynucleotide refers to a polynucleotide that is substantially free from other nucleic acid sequences, such as other chromosomal and extrachromosomal DNA and RNA, that normally accompany or interact with it as found in its naturally occurring environment.
- isolated polynucleotides may contain polynucleotide sequences which may have originally existed as extrachromosomal DNA but exist as a nucleotide insertion within the isolated polynucleotide.
- Isolated polynucleotides may be purified from a host cell in which they naturally occur. Conventional nucleic acid purification methods known to skilled artisans may be used to obtain isolated polynucleotides.
- the term also embraces recombinant polynucleotides and chemically synthesized polynucleotides.
- recombinant refers to a nucleic acid molecule which has been obtained by manipulation of genetic material using restriction enzymes, ligases, and similar genetic engineering techniques as described by, for example, Sambrook et al. 1989.
- a "construct” or “chimeric gene construct” refers to a nucleic acid sequence encoding a protein, here the PtFTl protein, operably linked to a promoter and/or other regulatory sequences.
- altered levels or “altered expression” refers to the production of gene product(s) in transgenic organisms in amounts or proportions that differ from that of normal or non- transformed organisms.
- nucleic acid comprises the requisite information to guide translation of the nucleotide sequence into a specified protein.
- the information by which a protein is encoded is specified by the use of codons.
- a nucleic acid encoding a protein may comprise non-translated sequences (e.g., introns) within translated regions of the nucleic acid or may lack such intervening non-translated sequences (e.g., as in cDNA).
- operably linked refers to the association of two or more nucleic acid fragments on a single nucleic acid fragment so that the function of one is affected by the other.
- a promoter is operably linked with a coding sequence when it is capable of affecting the expression of that coding sequence (i.e., that the coding sequence is under the transcriptional control of the promoter).
- Coding sequences can be operably linked to regulatory sequences in sense or antisense orientation.
- Regulatory sequences refer to nucleotide sequences located upstream (5' non- coding sequences), within, or downstream (3' non-coding sequences) of a coding sequence, and which influence the transcription, RNA processing or stability, or translation of the associated coding sequence. Regulatory sequences may include promoters, translation leader sequences, introns, and polyadenylation recognition sequences.
- Promoter refers to a nucleotide sequence capable of controlling the expression of a coding sequence or functional RNA.
- a coding sequence is located 3' to a promoter sequence.
- the promoter sequence consists of proximal and more distal upstream elements, the latter elements often referred to as enhancers.
- an “enhancer” is a nucleotide sequence that can stimulate promoter activity and may be an innate element of the promoter or a heterologous element inserted to enhance the level or tissue-specificity of a promoter. Promoters may be derived in their entirety from a native gene, or be composed of different elements derived from different promoters found in nature, or even comprise synthetic nucleotide segments.
- tissue-specificity of a promoter is exemplified by the promoter sequence (described above) which specifically induces gene expression in root tips. Promoters that cause a nucleic acid fragment to be expressed in most cell types at most times are commonly referred to as "constitutive promoters". New promoters of various types useful in plant cells are constantly being discovered; numerous examples may be found in the compilation by Okamuro and Goldberg. 1989. Biochemistry of Plants 15: 1-82. It is further recognized that since in most cases the exact boundaries of regulatory sequences have not been completely defined, nucleic acid fragments of different lengths may have identical promoter activity.
- RNA transcript refers to the product resulting from RNA polymerase-catalyzed transcription of a DNA sequence.
- the primary transcript When the RNA transcript is a perfect complementary copy of the DNA sequence, it is referred to as the primary transcript or it may be an RNA sequence derived from posttranscriptional processing of the primary transcript and is referred to as the mature RNA.
- Messenger RNA (mRNA) refers to the RNA that is without introns and that can be translated into polypeptides by the cell.
- cDNA refers to a DNA that is
- RNA refers to an RNA transcript that includes the mRNA and so can be translated into a polypeptide by the cell.
- Antisense when used in the context of a particular nucleotide sequence, refers to the complementary strand of the reference transcription product.
- Antisense RNA refers to an RNA transcript that is complementary to all or part of a target primary transcript or mRNA and that blocks the expression of a target gene.
- the complementarity of an antisense RNA may be with any part of the specific nucleotide sequence, i.e., at the 5' non-coding sequence, 3' non-coding sequence, introns, or the coding sequence.
- “Functional RNA” refers to sense RNA, antisense RNA, ribozyme RNA, or other RNA that may not be translated but yet has an effect on cellular processes.
- a “protein” or “polypeptide” is a chain of amino acids arranged in a specific order determined by the coding sequence in a polynucleotide encoding the polypeptide. Each protein or polypeptide has a unique function.
- transgenic includes any cell, cell line, callus, tissue, plant part, or plant the genotype of which has been altered by the presence of a heterologous nucleic acid including those transgenics initially so altered as well as those created by sexual crosses or asexual propagation from the initial transgenic.
- the term “transgenic” as used herein does not encompass the alteration of the genome
- chromosomal or extra-chromosomal by conventional plant breeding methods or by naturally occurring events such as random cross-fertilization, non-recombinant viral infection, non-recombinant bacterial transformation, non-recombinant transposition, or spontaneous mutation.
- the term "plant” includes reference to whole plants, plant organs (e.g., leaves, stems, roots, etc.), seeds, plant cells, and progeny of same.
- Parts of transgenic plants are to be understood within the scope of the invention to comprise, for example, plant cells, protoplasts, tissues, callus, embryos as well as flowers, stems, fruits, leaves, roots originating in transgenic plants or their progeny previously transformed with a DNA molecule of the invention and therefore consisting at least in part of transgenic cells, are also an object of the present invention.
- plant cell includes, without limitation, seeds suspension cultures, embryos, meristematic regions, callus tissue, leaves, roots, shoots, gametophytes, sporophytes, pollen, and microspores.
- the class of plants that can be used in the methods of the invention is generally as broad as the class of higher plants amenable to transformation techniques, including both monocotyledonous and dicotyledonous plants.
- the plasmid pK2GW7 containing the Cauliflower Mosaic Virus 35S (CaMV 35S) promoter, and nptll and PtFTl genes (Nilsson et al., supra) were transformed into the Agrobacterium tumefaciens strain GV3101. Hypocotyl sections excised from surface- sterilized mature seed embryos of plum cultivar 'BlueByrd' were transformed with A.
- 35S::PtFTl gene in plum was determined by PCR analyses of DNA extracted from leaves using the published primers (Bohlenius et al., supra). A total of 196 transgenic plum plants representing 56 transgenic clones were regenerated. Flowering was scored in vitro, in the growth chamber, and in the greenhouse. Since 'BlueByrd' plum is self incompatible, pollen from compatible plum cultivars 'Stanley' or Cacanska Lepotica' was used to pollinate the transgenic plum flowers in the greenhouse. Fully ripe plum fruits were evaluated for size, color, brix, and stone and seed development. Viability of transgenic seed embryos was determined by culturing embryo shoot tips and hypocotyls sections following the tissue culture methods of Petri et al. (supra) without the use of antibiotic selection.
- the FT plum shrub habit appeared to be the result of three characteristics: 1) Loss of apical dominance that was sometimes, but not always, due to the production of a terminal inflorescence, 2) lateral branches tended to have weaker attachment sites and repeatedly cracked and re-healed eventually resulting in downward branch angles, and 3) the trunk and lateral branches did not grow straight and instead curved. Second, FT plum lines grew continuously and did not consistently set terminal buds unlike non-transformed control trees that undergo growth cessation as day lengths become shorter. Some FT plum lines continued to grow, flower, and produce fruit even after 3 years at 65-85°C in a temperature controlled greenhouse.
- a total of 32 plum fruits were produced in the greenhouse by hand pollinating the flowers in the profusely flowering transgenic lines. Pollination of multiple pistils produced up to 3 ripe fruits per flower (Fig. 3 B). Plum fruits in the greenhouse-grown transgenic plants developed normally and ripened 5 months after fruit set. Ripe fruits displayed red purple skin color (Fig. 3D; Table 2) and greenish-yellow flesh color (Fig. 3F). Fruits were smaller than the fruits produced from plum trees grown in the orchard (Figs. 3 C and 3D). The size of fruits varied from 10 to 37 mm in length and 5 to 34 mm in diameter (Table 2a, b). Early continually flowering 1 -year old fruiting plants produce mature fruit crops in the greenhouse. Flowers and fruits at different stages of development are found on the same plant (Fig. 4C). Brix of fruit juice varied from 8 to 1 1°.
- Table 2a Characteristics of fruits, stones, and seeds harvested from an orchard-grown control plum tree and from the pot-grown PtFTl -expressing transgenic plum plants in the greenhouse.
- Table 2b Characteristics of fruits, stones, and seeds harvested from an orchard-grown control plum tree and from the pot-grown PtFTl -expressing transgenic plum plants in the greenhouse.
- seeds were extracted from the stony endocarp by cracking open the endocarp. Seeds were then soaked in a 1.2% solution of Sodium hypochlorite for 20 min to 2 hrs then soaked in a solution of 500 ppm benzyladenine and 500 ppm gibberelllic acid for 8- 16 hrs. The seed coat may then be stripped off, but it is not necessary to strip off the seed coat. Seeds germinate within days of this treatment, thus avoiding a lengthy stratification requirement (200 - 1500 hrs at 4 °C) that Prunus seed normally need for germination. This procedure also avoids the need for in vitro culture of embryos.
- FT plum lines were clonally propagated and placed in environmental growth chambers with non-transgenic controls at either 21°C or 29°C for 8 weeks. Growth rate, node number, bud development or formation, bud break, and flower number were measured at 2 week intervals (Fig. 8). Data showed that growth rate, node number, and rates of bud break were similar in both temperatures but both node number and bud break were higher for FT lines relative to controls. In contrast, flowering was more prolific in FT plums at 21°C while higher numbers of floral buds were set at 29°C. To confirm the temperature effect, after 8 weeks five plants were swapped from each chamber. Again flowering increased in plants shifted to 21°C and was repressed at 29°C.
- FT plums grown in the greenhouse were insensitive to short days during the winter months and did not undergo growth cessation.
- a controlled experiment was performed for FT plums in the growth chamber under short (8 hr) and long (16hr) day lengths. After six weeks growth rate, bud set, bud break, and flower number were measured and showed no significant difference between the two light regimes unlike control plums which showed decreased growth rate under short days (Figure 11).
- Dormancy is a complex state and occurs as a consequence of diverse signaling pathways.
- a key characteristic of dormant temperate trees is the requirement for a sufficient number of chilling hours (defined as hours exposed to 0 - 7 °C) before efficient vernalization can occur. Chilling time varies among species and cultivars but for P. domestica a minimum of 800-1,000 chilling hours is typically required.
- Lysis/Binding Solution 100 ⁇ of Lysis/Binding Solution was added to the sample along with 1 ⁇ 4 amount of Lysing Matrix D (BIO 101 Systems, Thermo Scientific, Waltham, MA) and processed in a FastPrep (FP120, BIO 101, Thermo Scientific) bead beater for 27 sec at a 5 speed setting.
- the beaded material was spun first, and then the supernatant was placed in a clean microcentrifuge and processed as described in the manufacturer's protocol except that two washes were performed at each step. Three ⁇ of the RNA was evaluated on a gel.
- qRT PCR Quantitative Real-time PCR
- RNAse Inhibitior Applied Biosystems
- MuLv Reverse Transcriptase Applied Biosystems
- SYBRGreen PCR Master Mix Applied Biosystems
- all the RNAs were run as a single reaction with either primers for chlorophyll A/B binding protein or the PFT transgene, with and without the RT, in order to verify the lack of significant DNA contamination.
- the RNAs were diluted (0.33 ⁇ /reaction), and run in triplicate in 10 ⁇ reactions on an ABI7900 (ABI).
- RNAs were also run with 26S primers at an additional 1000 fold dilution to determine the relative amount of each RNA in the reactions.
- a standard curve was run in triplicate with each primer set to determine the relative amounts. The results of the triplicate reactions were averaged and normalized by the relative amount of 26S RNA. To keep all the numbers on the same scale, the level of expression of line 126, the low flowering line, was set at 100% and all the other lines were compared to that line.
- FT plums represent an important milestone in temperate tree fruit biotechnology and pave the way for future advances to address the challenges facing temperate tree crop agriculture.
Landscapes
- Health & Medical Sciences (AREA)
- Genetics & Genomics (AREA)
- Life Sciences & Earth Sciences (AREA)
- Chemical & Material Sciences (AREA)
- Organic Chemistry (AREA)
- Engineering & Computer Science (AREA)
- Molecular Biology (AREA)
- Biophysics (AREA)
- General Health & Medical Sciences (AREA)
- Zoology (AREA)
- Biochemistry (AREA)
- Wood Science & Technology (AREA)
- Bioinformatics & Cheminformatics (AREA)
- General Engineering & Computer Science (AREA)
- Biotechnology (AREA)
- Biomedical Technology (AREA)
- Botany (AREA)
- Physics & Mathematics (AREA)
- Cell Biology (AREA)
- Physiology (AREA)
- Plant Pathology (AREA)
- Gastroenterology & Hepatology (AREA)
- Microbiology (AREA)
- Proteomics, Peptides & Aminoacids (AREA)
- Medicinal Chemistry (AREA)
- Breeding Of Plants And Reproduction By Means Of Culturing (AREA)
Abstract
Description
Claims
Priority Applications (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| AU2010364973A AU2010364973B2 (en) | 2010-12-03 | 2010-12-03 | Development of very early flowering and normal fruiting plum with fertile seeds |
| PCT/US2010/058916 WO2012074532A1 (en) | 2010-12-03 | 2010-12-03 | Development of very early flowering and normal fruiting plum with fertile seeds |
| NZ612262A NZ612262A (en) | 2010-12-03 | 2010-12-03 | Development of very early flowering and normal fruiting plum with fertile seeds |
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| PCT/US2010/058916 WO2012074532A1 (en) | 2010-12-03 | 2010-12-03 | Development of very early flowering and normal fruiting plum with fertile seeds |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2012074532A1 true WO2012074532A1 (en) | 2012-06-07 |
Family
ID=46172202
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2010/058916 Ceased WO2012074532A1 (en) | 2010-12-03 | 2010-12-03 | Development of very early flowering and normal fruiting plum with fertile seeds |
Country Status (3)
| Country | Link |
|---|---|
| AU (1) | AU2010364973B2 (en) |
| NZ (1) | NZ612262A (en) |
| WO (1) | WO2012074532A1 (en) |
Family Cites Families (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| GB0420874D0 (en) * | 2004-09-20 | 2004-10-20 | Swetree Technologies Ab | Modulation of flowering time and growth cessation in perennial plants |
-
2010
- 2010-12-03 WO PCT/US2010/058916 patent/WO2012074532A1/en not_active Ceased
- 2010-12-03 AU AU2010364973A patent/AU2010364973B2/en not_active Ceased
- 2010-12-03 NZ NZ612262A patent/NZ612262A/en not_active IP Right Cessation
Non-Patent Citations (6)
| Title |
|---|
| DATABASE GENBANK 8 June 2004 (2004-06-08), Database accession no. BAD01576 * |
| HEREDITY, vol. 101, 2008, pages 351 - 358 * |
| INT. J. BIOMETEOROL, vol. 53, 2009, pages 287 - 298 * |
| PLANT PHYSIOLOGY AND BIOCHEMISTRY, vol. 47, 2009, pages 690 - 700 * |
| PLANT PHYSIOLOGY, vol. 135, May 2004 (2004-05-01), pages 201 - 211 * |
| TREE PHYSIOLOGY, vol. 28, 2008, pages 1873 - 1882 * |
Also Published As
| Publication number | Publication date |
|---|---|
| AU2010364973B2 (en) | 2016-07-07 |
| AU2010364973A1 (en) | 2013-07-11 |
| NZ612262A (en) | 2015-02-27 |
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| JP7241683B2 (en) | Compositions and methods for altering flowering and architectures for improving productivity | |
| Flachowsky et al. | Overexpression of BpMADS4 from silver birch (Betula pendula Roth.) induces early‐flowering in apple (Malus× domestica Borkh.) | |
| US9062323B2 (en) | Identification and use of KRP mutants in wheat | |
| ES2863223T3 (en) | Compositions and procedures to alter flowering and plant architecture to improve yield potential | |
| CN107254478B (en) | Tomato SLLCD gene and its application | |
| US10982225B2 (en) | Flowering time-regulating genes and related constructs and applications thereof | |
| JP5259717B2 (en) | Promoter sequences and gene constructs for increasing tomato yield | |
| CA3038869A1 (en) | Growing strawberry plug plants at low elevation without the need for conditioning | |
| WO2024102277A9 (en) | Genes altering soy plant flowering time and/or maturation and uses thereof | |
| US8633354B2 (en) | Development of very early flowering and normal fruiting plum with fertile seeds | |
| CN102399272A (en) | Tomato SLMBP21 Gene and Its Application | |
| WO2008013450A1 (en) | A two-component system for seedless fruit development | |
| CN114990137B (en) | Arabidopsis Calcium Binding Protein Gene AtCAREF and Its Application | |
| AU2010364973B2 (en) | Development of very early flowering and normal fruiting plum with fertile seeds | |
| KR100588713B1 (en) | Genes for Control of Fruit and Seed Development | |
| CN109628468A (en) | A kind of Chunlan CgWRKY53 gene and its application | |
| CN117624318A (en) | TIE protein, a transcriptional repressor that controls plant parthenocarpy, and its application | |
| KR100647793B1 (en) | How to control the flowering time of plants using ECL1 gene | |
| Fister et al. | Application of gene editing technologies in Rubus to introduce beneficial consumer and agronomic traits | |
| CN118324888B (en) | Orchid blooming regulating gene CsAP1-2 and its coding sequence and application | |
| Haines et al. | Abnormalities in growth, development and physiological responses to biotic and abiotic stress in potato (Solanum tuberosum) transformed with Arabidopsis ETR1 | |
| Song GuoQing | Vaccinium spp. blueberry and cranberry. | |
| CN118879759B (en) | Application of potato StrbohA gene in regulating tuber dormancy period | |
| Abbott | The isolation of flowering time genes from lettuce to enable the manipulation of bolting time | |
| WO2025259554A1 (en) | Engineering remontant flowering in rosaceae |
Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| 121 | Ep: the epo has been informed by wipo that ep was designated in this application |
Ref document number: 10860347 Country of ref document: EP Kind code of ref document: A1 |
|
| NENP | Non-entry into the national phase |
Ref country code: DE |
|
| WWE | Wipo information: entry into national phase |
Ref document number: 2013001580 Country of ref document: CL |
|
| ENP | Entry into the national phase |
Ref document number: 2010364973 Country of ref document: AU Date of ref document: 20101203 Kind code of ref document: A |
|
| 122 | Ep: pct application non-entry in european phase |
Ref document number: 10860347 Country of ref document: EP Kind code of ref document: A1 |
