WO2005063002A1 - A tissue culture process for producing cotton plants - Google Patents
A tissue culture process for producing cotton plants Download PDFInfo
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- WO2005063002A1 WO2005063002A1 PCT/IN2003/000450 IN0300450W WO2005063002A1 WO 2005063002 A1 WO2005063002 A1 WO 2005063002A1 IN 0300450 W IN0300450 W IN 0300450W WO 2005063002 A1 WO2005063002 A1 WO 2005063002A1
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- Prior art keywords
- medium
- inositol
- cotton
- callus
- embryos
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- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01H—NEW PLANTS OR NON-TRANSGENIC PROCESSES FOR OBTAINING THEM; PLANT REPRODUCTION BY TISSUE CULTURE TECHNIQUES
- A01H4/00—Plant reproduction by tissue culture techniques ; Tissue culture techniques therefor
- A01H4/008—Methods for regeneration to complete plants
-
- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01H—NEW PLANTS OR NON-TRANSGENIC PROCESSES FOR OBTAINING THEM; PLANT REPRODUCTION BY TISSUE CULTURE TECHNIQUES
- A01H4/00—Plant reproduction by tissue culture techniques ; Tissue culture techniques therefor
- A01H4/005—Methods for micropropagation; Vegetative plant propagation using cell or tissue culture techniques
Definitions
- the present invention relates to a tissue culture process for producing a large number of viable cotton plants in vitro from a specified tissue of the plant.
- the invention provides a method for synchronized somatic embryogenesis and opens up new possibilities for obtaining agronomically improved uniform population of cotton plants by modern methods of agrobio techno logy and genetic engineering.
- the protocol provides an important step in the success of cotton improvement programme utilizing tissue culture technology.
- Cotton is a globally important crop, grown primarily for fiber. Seeds provide an important source of food for livestock. Cotton has influenced the economic development of many nations throughout the world. Therefore, cotton improvement programmes by modern methods of agrobiotechnology are of interest worldwide. This has increased the importance of developing tissue culture methods to facilitate the application of modern techniques of genetic engineering to cotton plant. In spite of the much-talked economic value of cotton, the improvement of cotton through genetic engineering has taken place at a relatively slow rate because of the absence of reproducible, less time consuming and efficient methods to regenerate organized tissues and plants of cotton at high frequency.
- tissue culture techniques Plant regeneration by tissue culture techniques is well established. Although the totipotency of a plant cell is a well known phenomenon, each plant or plant part requires specialized studies to invent the conditions that allow such regeneration at high efficiency and frequency. There seems to be a consensus that success in inducing differentiation depends upon the type of explant, physiological condition of the explant and physical and chemical milieu of the explant during culture. Thus, the science of tissue culture has been directed to optimize the physiological condition of source plant, the type of explant, the culture conditions and the plant growth regulators or other media addenda used to initiate the tissue response. A wide variety of plant species has been successfully regenerated in in vitro organogenesis or via somatic embryogenesis.
- the mode of regeneration selected is often based on the relative case, efficiency and applicability of the method for genetic transformation of a plant species.
- a non meristem based method i.e. somatic embryogenesis is always a preferred mode, as it eliminates the possibility of getting false positive or chimaeric transformants.
- the regeneration via somatic embryogenesis from an explant may involve several growth stages. Most often, an explant from a mature plant part or organ or from germinated seedling ' is given a chemically defined nutrient medium under sterile conditions. Upon incubation, the excised plant part under artificially controlled conditions of light, temperature and photoperiod gives rise to a dedifferentiated mass of cells, referred to as a callus.
- Somatic embryos are embryos developed out of somatic cells. Each somatic embryo is an organized mass of tissue capable of developing into a complete plant. Somatic embryos are very similar to zygotic embryos developed in seed, except that they develop without involvement of reduction cell division (meiosis) and they are often bigger in size.
- Changes in the concentration of one or more medium constituents may lead to changes in the in-vitro development and differentiation of plant tissue.
- Signaling pathways mediated by phosphoinositols have been reported to influence development and embryogenesis in plants. Starving the tissues at a particular stage for inositol for a definite period of time may produce synchronization of development of tissues without deteriorating their viability.
- involvement of inositol in achieving synchronisation of plant or embryo development in vitro has not been reported earlier and is the most critical aspect of this invention.
- Kumar et al.,1998 reported somatic embryogenesis in FI hybrids of Coker 310 with Indian varieties of cotton utilizing modified Trolinder and Goodin protocol.
- Zhang et al., 2000 in Plant Cell Tiss.Organ Cult. 60:89-94 described somatic embryogenesis from abnormal somatic embryo derived explants.
- Several of these protocols or modifications thereof have been used in Agrobacterium mediated transformation of cotton (Umbeck et al, 1987 Bio/Technology 5: 263-266 ; Firoozabady et al., 1987 Plant Mol. Biol. 10 : 105-116) or particle bombardment mediated transformation of cotton (Finer and McMullen, 1990 Plant Cell Rep. 8:586-589).
- Table 1 Review of prior art on regeneration in cotton with an aim to induce somatic emryogenesis.
- Somatic embryos were formed four to on, six month after placing tissue on callus initiation Immatur medium. Varieties identified embryogenic in e vitro are SJ2, SJ14, SJ5, SJ2C, GC510, B1644, embryo B2710, Siokra and FC 2017.
- the report 4 of Table 1 claims the development of plants that were sterile while the present process described in this application gives healthy plants, which are fertile.
- the present method gives a high frequency of somatic embryogenesis over randomly selected pool of seedling explants collected from field grown plants. This is an important improvement over the earlier reports where explants were taken from samples already selected for somatic embryogenesis (reports 11 and 12 of table 1).
- the success of the present invention depends upon the concentration and combination of plant growth regulators utilized to induce calli over the explants and the manner in which these calli were cultured by the method of the present invention involving a short term inositol deprivation phase.
- the process does not need any exogenous plant growth regulator or other medium additives (For example, extra KNO 3 in reports 4 and 6 and activated charcoal in reports 11 and 12) in any subsequent steps.
- the somatic embryos germinated and rooted in a simplified liquid germination medium on a non-gelling agent based in expensive and simple support (example, vermiculite).
- the present invention describes a simple and less expensive protocol, suitable for commercialisation.
- the present invention for the first time describes that inositol influences the development and differentiation of in-vitro grown plant cells.
- the method details the use of inositol deprivation of cultures at and for a particular time for the synchronized development of somatic embryos.
- the process described in the present invention is very simple to adopt commercially; fast, reproducible and convenient for applications in plant genetic engineering. Unlike state of the art technologies, this process does not lead to the formation of plants with morphological and cytogenetic abnormalities unlike in case of Stelly et al., 1989 and does not produce false positive transformants in transformation experiments unlike, in case of Sunilkumar and Rathore, 2001. OBJECTS OF THE INVENTION
- the present invention provides for the first time an efficient method for plant regeneration in cotton via developmentally synchronized somatic embryogenesis.
- the process of this invention is simple, fast, reproducible and convenient for applications in plant genetic engineering.
- the most critical novel aspect is the achievement of synchronised somatic embryogenesis by a step of inositol starvation. This critical aspect is not mentioned or even suggested in any prior art known to the applicants.
- the process of the present invention employs a growth regulator combination
- the process of the present invention achieves the production of callus mediated somatic embryogenesis that takes shorter time and gives a larger number of normal and fertile plants.
- a method for regenerating a large number of viable and fertile cotton plants via synchronized somatic embryogenesis from a hypocotyl segment or mesocotyl segment or a cotyledon piece comprising- (i) treating seeds of cotton plant with a sterilant to remove any unwanted contaminant, (ii) culturing the treated seeds from step (i) for germination in a first medium consisting of:
- step (iii) culturing explants from the seedlings obtained in step (ii).
- step (iv) culturing the explanst obtained from step (iii) for the purpose of callus induction in a second, solid medium consisting of (a) salts of any conventional medium, (b) vitamins of any conventional medium,
- step (vii) screening the cell suspension through metal sieves of different mesh sizes and selecting the cells / clumps collected over mesh size 40 and further subculturing the selected clumps to liquid basal medium as in step (vi).
- step (viii) subculturing embryogenic cells / clumps for a short period (8-12 days) to liquid basal medium of step (vi) but with no inositol, ie. fourth medium, (ix) further subculturing the embryogenic cells / clumps to liquid basal medium of step (vi) at a regular interval of 8- 12 days.
- the expression explants refer to cotyledon pieces or hypocotyl or mesocotyl segments.
- said first to fifth medium comprise salts of MS medium, vitamins of Gamborg B5 medium and a carbon source.
- the first and fifth medium comprise salts of MS medium and vitamins of
- Gamborg B5 medium at half of its standard concentration, while second third and fourth medium comprise them in their standard concentration.
- the most preferred salts of MS medium and its standard concentration comprise the following as shown in Table 2: TABLE 2
- the preferred vitamins of Gamborg B5 medium comprise the following as shown in Table 3: TABLE 3 Component Cone. (mg/L)
- the preferred carbon source in the first medium is selected from a group consisting of sucrose and glucose and such carbon source employed is at a range of 1- 3% wtJvol.
- the preferred carbon source in the second, third and fourth medium is essentially glucose and such carbon source employed is at a range of 1.5-45.% wt./vol.
- the preferred carbon course in the fifth medium is essentially sucrose and such carbon employed is at a range of 1-3% wt./vol.
- the preferred gelling agent in second medium is selected from a group consisting of agar (employed at a range of 0.6-0.8% wtJvol.) and phytagel (employed at a range of 0.15-0.29% wt./vol.).
- the preferred organics in first, second and third and fifth medium is essentially myo inositol, employed at 100 mg/L in first to third medium and at 25 mg/L in fifth medium.
- the plant growth regulators employed in the second medium is selected from a group consisting of combinations of 2, 4D as auxin and BA as cvtoMnin.
- fee method of the present invention comprises: -
- fungus by conventional methods (ii) culturing the sterilized seeds for germination in a medium shown in Table 4 (iii) excising the explants from the seedlings obtained in step (ii) (iv) culturing the explant obtained in step (iii) in a medium as shown in Table 5 at a pH in the range of 5.4 to 6.2 and sterilizing the medium by autoclaving (v) culturing the explants at the temperature of 23-33 degree c, light of at least 90 ⁇ mol/m 2 /s under 16 h photoperiod for a period of 3-5 weeks till sufficient calli form (vi) transferring the calli to embryogenesis induction medium shown in Table 6 with the following composition at a pH in the range of 5.2-6.0 and sterilizing the medium by autoclaving (vii) containing the culturing at the temperature of 23-33°C, light intensity in the range of 20-40 ⁇ mol/m 2 /s under 16 h photoperiod for a period
- Seed germination medium - a.
- the basal embryogenic mass can be subjected to further rounds of inositol starvation and subsequent synchronized embryogenesis and regeneration of plans.
- seeds are surface sterilized before use in in vitro culture to make them free of bacterial/fungal contaminant.
- Surface sterilization involves treating the seeds with a solution containing any one of sterilizing agent such as sodium hypochlorite, calcium hypochlorite, mercuric chloride alcohol cetrimide etc.
- the surface sterilization of seeds can be performed by treating the seeds with 0.05- 0.5%) w/v solution of mercuric chloride in water for 3-11 minutes with continuous swirling and then washing thoroughly with sterile distilled water (4-8 times) followed by dipping the seeds in rectified spirit (50-100% v/v) for 10-20 sec and then scorching it in the flame of a spirit burner for 5- 10 sec.
- seed germination medium containing Murashige and Skoog salts at half of its concentration, Gamborg B5 medium at half of its concentration, 100 mg L inositol and any carbon source like glucose or sucrose 1 to 3% wtJvol.. adjusting the pH of the medium to 5.2-6.0 and sterilized as a result of autoclaving at 121 degree c. 16 psi for 16 min.
- seeds may be incubated at temperature 23-33°C in light (in 30- 60 ⁇ mol/m /s intensity) or in darkness till seed germinates and form a mature seedling.
- the explants (cotyledon pieces, hypocotyl segments or mesocotyl segments) can preferably be obtained from 6-12 d old seedling after germination by cutting with a sha ⁇ sterile scalpel and blade in an aseptic environment i.e. laminar flow, known in the art.
- the excised explants can be placed in the medium containing salts of Murashige and Skoog at concentrations as given in table 2, vitamins of Gamborg B5 at concentrations as given in table 3, 100 mg/L inositol, a carbon source preferably glucose 1.5-4.5% wt./vol., a gelling agent preferably agar 0.6 to 0.8% wt./vol. or phytagel 0.15-0.29% wtJvol. and plant growth regulators 2, 4D 0.44 to 4.44 ⁇ M and BA 0.22 to 2.22 ⁇ M.
- the medium pH is adjusted to 5.4-6.2 prior to autoclaving at 121°C, 16 psi for 16 min.
- composition of the medium provided for callus induction is presented in Table 5 Cultures were incubated at temperature in the range of 23-33°C in white fluorescent light of at least 90 ⁇ mol/m 2 /s intensity under 16 h photoperiod for a period of 3-5 weeks. By this time, sufficient calli form over the cut edges of the explants. The calli can be yellowish to brownish in appearance and friable in texture. The calli, developed over the cut edges of the explant, can be transferred to a liquid basal medium, the composition of which is given in table 6 at a packing density of 600 to 1000 mg of callus per 50 ml of media in a 250 ml Ehrleneyer flask.
- the medium does not contain any growth regulator or gelling agent and its pH is adjusted to 5.2-6.0 prior to autoclaving at 121°C, 16 psi for 16 min.
- the cells of the calli can be agitated in this medium at 110-130 strokes per minute on a gyratory shaker set at 23-
- the cells can be cultured in this medium and incubation conditions for a period of 12-32 days, till embryogenic clumps form in the cell suspension culture.
- the cell suspension developed in agitating liquid basal medium can be screened to select embryogenic clumps/group of cells developed in the culture. It can be passed through a combination of metal sieves of mesh sizes 10, 40 and 100.
- the mesh size 10 collects bigger tissue clumps and mesh size 100 collects fine suspension of cells.
- the fraction of cells containing smaller clumps, which may turn embryogenic can be collected over sieve with mesh size 40.
- the selected fraction of cells can be transferred to the fresh liquid basal medium and regularly subcultured at an interval of 8-12 days or can be transferred to the inositol deprivation medium which is liquid basal medium minus inositol, the composition given in Table 7, for a period of 8-12 days followed by replacing inositol in fresh liquid basal medium and then regularly subcultured at an interval of 8-12 days.
- inositol deprivation medium which is liquid basal medium minus inositol, the composition given in Table 7, for a period of 8-12 days followed by replacing inositol in fresh liquid basal medium and then regularly subcultured at an interval of 8-12 days.
- somatic embryos develop but with different developmental fate. While in the former, embryos of all developmental stages can be obtained in each subculturing cycle of 8-12 days with similar frequency, in the latter, embryos development gets synchronized and almost all embryos remain at same developmental stage.
- the strategy in the present method is to select second approach to culture the embryo
- the basal embryogenic mass can be subjected for further cycles of inositol depletion, developmental synchronization and subsequent harvest of mature embryos for germination.
- the embryogenic clumps, and synchronized embryos can be cultured in agitating medium on a gyratory shaker at 110-130 strokes per minute and at 23-33°C temperature, 20-40 ⁇ mol/m 2 /s light under 16 hrs. photoperiod.
- the mature bipolar somatic embryos can be taken out of liquid medium and transferred to a solid support, preferably vermiculite saturated with embryo germination medium composition of which is given in table 8.
- the medium pH is adjusted to 5.2- 6.0 prior to autoclaving at 121°C, 16 psi for 16 minutes.
- the cultures can be incubated at 23-33°C temperature in light intensity of at least 60 ⁇ mol/m 2 /s and a photoperiod of 16 hr.
- the fresh liquid medium can be added to the germinating embryos on weekly basis.
- the embryos were grown in embryo germination medium for a period of time sufficient to form 4-5 leaf stage plantlet with well-developed roots. At this stage, plantlets can be taken out and may be transferred to potting mix which is a sterile mixture of garden soil: sand: vermiculite: peatmoss in 2:1:1:1 ratio.
- Good humid conditions can be given to the newly developed plantlets by covering the plants with transparent polythene bags the inner surface of which is drizzled with water. After culturing the plantlets under these conditions and at temperature of 23-33 degree c and fluorescent light of at least 90 ⁇ mol/m 2 /s under a 16 h photoperiod for a period of time sufficient for acclimatization, the plants, if desired, can be transferred to the field.
- EXAMPLE 1 Media dependent response of explants to induction of somatic embryogenesis Seeds of cotton (G.hirsutum L.Coker 312) plants were treated with 0.1%) w/v mercuric chloride for 7 minutes, washed with sterile distilled water 6 times, followed by dipping the seeds in rectified spirit for 10 seconds and flamed.
- the sterile seeds were placed for germination on filter paper boats moistened with seed germination medium containing Murashige and Skoog salts at half of its concentration, Gamborg B5 vitamins at half of its concentration, 100 mg/1 inositol and 2% w/v sucrose (pH of the medium was adjusted to 5.6 before autoclaving).
- seed germination medium containing Murashige and Skoog salts at half of its concentration, Gamborg B5 vitamins at half of its concentration, 100 mg/1 inositol and 2% w/v sucrose (pH of the medium was adjusted to 5.6 before autoclaving).
- seeds were incubated at 28 ⁇ 2° C temperature in white fluorescent light (30 ⁇ mol/m 2 /s) under 16 h photoperiod. The culture was continued till seeds germinate to give radicle and plumule with well-expanded cotyledons.
- Nine-day-old seedlings were used to provide the hypocotyl segments and cotyledon pieces as
- Explants were excised with the help of a sharp, sterile scalpel.
- the explants were placed on the callus induction medium, CIM1 containing Murashige and Skoog salts, Gamborg B5 vitamins, 100 mg/1 inositol, 3%w/v glucose, 750 mg/1 MgCi 2 and 0.22%>w/v phytagel, supplemented with 2.2 ⁇ M 2,4-D and 0.88 ⁇ M BA (pH of the medium was adjusted to 5.8 before autoclaving).
- the explants were incubated on this medium at 28 ⁇ 2°C temperature in 90 ⁇ mol/m 2 /s light intensity under 16 h photoperiod for 3-4 weeks.
- the calli developed over the cut edges of the explants were excised and inoculated in a liquid basal medium containing Murashige and Skoog salts, Gamborg B5 vitamins, 100 mg/1 inositol. 3% w/v glucose, pH 5.6 at a packing density of 800 mg callus per 50 ml medium in 250 ml Ehrlenmeyer flasks.
- the medium was sterilized by autoclaving at 121°C, 16 psi for 16 minutes.
- the cultures were agitated on a gyratory shaker at 120 m and at 28 ⁇ 2° C temperature, 30 ⁇ mol/m /s light intensity under 16 h photoperiod.
- Culturing of the explants for callus induction was also done on media CIM2, CIM3 and CIM4 containing Murashige and Skoog salts, Gamborg B5 vitamins, 100 mg/1 inositol, 3%w/v glucose, 750 mg/1 MgCL, and 0.22%w/v phytagel supplied with different growth regulator combinations, like 0.45 ⁇ M 2,4-D plus 2.32 ⁇ M Kin. (in CIM2); 10.7 ⁇ M NAA plus 4.64 ⁇ M Kin. (in CIM3); 2.68 ⁇ M NAA plus 2.4 ⁇ M 2iP (in CIM4). Cultures were incubated in trie same temperature and light conditions. The calli were transferred to the liquid basal medium and cultured in a similar way.
- Example 1 The procedure of Example 1 was repeated except that the seeds were germinated and grown for 9 days until radicle and plumule develop with well expanded cotyledons under dark. Essentially the same results were obtained.
- Example 1 The procedure of Example 1 was repeated except that the seed germination medium contained 2%w/v glucose as the carbon source. The same results were obtained.
- Example 4 The procedure of Example 2 was repeated except that the seed germination medium contained 2% glucose in place of sucrose. The similar results were obtained.
- EXAMPLE 5 The procedure of Example 1 was repeated except that the seed germination medium contained 2%w/v glucose as the carbon source. The same results were obtained.
- EXAMPLE 4 The procedure of Example 2 was repeated except that the seed germination medium contained 2% glucose in place of sucrose. The similar results were obtained.
- Example 1 The procedure of Example 1 was repeated to the extent of obtaining embryogenic clumps in suspension derived from callus generated on a combination of
- BM devoid of inositol.
- the embryogenic clumps subcultured to liquid basal medium containing inositol was used as control.
- the clumps were inoculated at a packing density of approximately 800 mg of cells per 50 ml medium and incubated on a gyratory shaker at the same light, temperature and photoperiod conditions as in Example 1.
- After 1 to 2 subculturing of 10 days in medium devoid of inositol the cultures were returned to inositol containing basal liquid medium.
- the frequency and the number of embryos in different developmental stages per unit mass were scored in both conditions.
- the data obtained is presented in Table 10 TABLE 10
- Seeds of cotton (G. hirsutum L.Coker 312) plants were sterilized and germinated as in Example 1.
- the explants were dipped in Agrobacterium suspension for 10-15 minutes, blot dried and inoculated on a co-cultivation medium comprising Murashige and Skoog salts, Gamborg B5 vitamins, 100 mg/1 inositol, 3%w/v glucose, 750 mg/1 MgCl 2 and 0.22%w/v phytagel, supplemented with 2.2 ⁇ M 2,4-D and 0.88 ⁇ M BA ( H of the medium was adjusted to 5.8 before autoclaving).
- the cultures were incubated at 28 ⁇ 2°C temperature in 90 ⁇ mol/m 2 /s light intensity under 16 h photoperiod for 3 days. After 3 days explants were washed with sterile water, blot dried again and inoculated on the medium having a composition similar to co-cultivation medium except that it was further supplemented with 250mg/l augmentin and 50 mg/1 kanamycin. The explants were further cultured as according to Example 1 and Example 6. Similar results were obtained with respect to somatic embryogenesis and regeneration of transformed plants.
- the Agrobacterium strain utilized in this experiment was a common laboratory strain LBA 4404 harboring derivative of a binary vector pIG which had nptll as selection marker and gusA with an intron as a reporter gene.
- Example 7 The procedure of Example 7 was repeated except that explants were co- cultivated under dark. Essentially similar results were obtained.
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Priority Applications (6)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| JP2005512749A JP2007528197A (en) | 2003-12-31 | 2003-12-31 | Tissue culture method for producing cotton plants |
| PCT/IN2003/000450 WO2005063002A1 (en) | 2003-12-31 | 2003-12-31 | A tissue culture process for producing cotton plants |
| BRPI0318669-5A BR0318669A (en) | 2003-12-31 | 2003-12-31 | method for the regeneration of cotton by somatic embryogenesis |
| AU2003300707A AU2003300707B2 (en) | 2003-12-31 | 2003-12-31 | A tissue culture process for producing cotton plants |
| EP03819202A EP1701610A1 (en) | 2003-12-31 | 2003-12-31 | A tissue culture process for producing cotton plants |
| CNA2003801109571A CN1886041A (en) | 2003-12-31 | 2003-12-31 | A tissue culture process for producing cotton plants |
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| PCT/IN2003/000450 WO2005063002A1 (en) | 2003-12-31 | 2003-12-31 | A tissue culture process for producing cotton plants |
Publications (1)
| Publication Number | Publication Date |
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| WO2005063002A1 true WO2005063002A1 (en) | 2005-07-14 |
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| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/IN2003/000450 Ceased WO2005063002A1 (en) | 2003-12-31 | 2003-12-31 | A tissue culture process for producing cotton plants |
Country Status (6)
| Country | Link |
|---|---|
| EP (1) | EP1701610A1 (en) |
| JP (1) | JP2007528197A (en) |
| CN (1) | CN1886041A (en) |
| AU (1) | AU2003300707B2 (en) |
| BR (1) | BR0318669A (en) |
| WO (1) | WO2005063002A1 (en) |
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|---|---|---|---|---|
| AT503565B1 (en) * | 2006-06-16 | 2007-11-15 | Jhs Privatstiftung | PROCESS FOR THE PRODUCTION OF ORGANICALLY BOUND VITAMIN B |
| CN102577979A (en) * | 2012-03-16 | 2012-07-18 | 甘肃省农业科学院生物技术研究所 | Method for inducing and culturing brown cotton embryo callus |
| CN102577978A (en) * | 2012-03-16 | 2012-07-18 | 甘肃省农业科学院生物技术研究所 | Induction culture method for embryogenic callus of green cotton |
| CN102577977A (en) * | 2012-03-16 | 2012-07-18 | 甘肃省农业科学院生物技术研究所 | Method for culturing aseptic seedlings of colored cotton |
| CN102577980A (en) * | 2012-03-16 | 2012-07-18 | 甘肃省农业科学院生物技术研究所 | Germination and seedling method for somatic embryos of colored cotton |
| CN103120127A (en) * | 2013-02-26 | 2013-05-29 | 河南大学 | Method for quickly inducing and breeding cotton embryogenic callus |
| CN103468633A (en) * | 2013-09-24 | 2013-12-25 | 薛刚 | Inducing method for improving cell synchronization of tendril-leaved fritillary bulbs |
| WO2020237223A1 (en) * | 2019-05-23 | 2020-11-26 | Galy Co. | Compositions and methods for plant cell culture |
| CN113455394A (en) * | 2021-07-23 | 2021-10-01 | 中国热带农业科学院橡胶研究所 | Standardized production method for large-scale breeding of rubber tree somatic embryo seedlings |
| CN115777538A (en) * | 2022-12-07 | 2023-03-14 | 河北省农林科学院棉花研究所(河北省农林科学院特种经济作物研究所) | Short-period cultivation method for cotton |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN102405835A (en) * | 2011-08-23 | 2012-04-11 | 中国农业大学 | Method for effectively inducing cotton somatic embryo and regenerating plants and culture medium thereof |
| CN107094622B (en) * | 2017-04-18 | 2019-04-26 | 天津农学院 | A method for inducing raspberry callus to form spherical embryo |
| IT201900004119A1 (en) * | 2019-03-21 | 2020-09-21 | Demethra Biotech S R L | Phytocomplex and extract of meristematic cell line selected from Echinacea purpurea |
| CN114503915B (en) * | 2022-02-24 | 2023-01-20 | 新疆农业大学 | Construction method of upland cotton genetic transformation system |
| JPWO2024185717A1 (en) * | 2023-03-03 | 2024-09-12 |
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2003
- 2003-12-31 WO PCT/IN2003/000450 patent/WO2005063002A1/en not_active Ceased
- 2003-12-31 BR BRPI0318669-5A patent/BR0318669A/en not_active IP Right Cessation
- 2003-12-31 JP JP2005512749A patent/JP2007528197A/en active Pending
- 2003-12-31 AU AU2003300707A patent/AU2003300707B2/en not_active Ceased
- 2003-12-31 CN CNA2003801109571A patent/CN1886041A/en active Pending
- 2003-12-31 EP EP03819202A patent/EP1701610A1/en not_active Withdrawn
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| US4684612A (en) * | 1984-07-27 | 1987-08-04 | Sungene Technologies Corporation | Process for regenerating soybeans |
| US6117678A (en) * | 1997-04-21 | 2000-09-12 | Weyerhaeuser Company | Method for determining maturity of conifer somatic embryos |
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| AU2003300707A1 (en) | 2005-07-21 |
| BR0318669A (en) | 2006-11-28 |
| AU2003300707B2 (en) | 2008-01-10 |
| EP1701610A1 (en) | 2006-09-20 |
| CN1886041A (en) | 2006-12-27 |
| JP2007528197A (en) | 2007-10-11 |
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