WO2006021972A1 - A novel cytoplasmic male sterility system for brassica species and its use for hybrid seed production in indian oilseed mustard brassica juncea - Google Patents
A novel cytoplasmic male sterility system for brassica species and its use for hybrid seed production in indian oilseed mustard brassica juncea Download PDFInfo
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- WO2006021972A1 WO2006021972A1 PCT/IN2005/000278 IN2005000278W WO2006021972A1 WO 2006021972 A1 WO2006021972 A1 WO 2006021972A1 IN 2005000278 W IN2005000278 W IN 2005000278W WO 2006021972 A1 WO2006021972 A1 WO 2006021972A1
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- 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
- C12N15/8287—Phenotypically and genetically modified plants via recombinant DNA technology with agronomic (input) traits, e.g. crop yield for fertility modification, e.g. apomixis
- C12N15/8289—Male sterility
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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
- A01H1/00—Processes for modifying genotypes ; Plants characterised by associated natural traits
- A01H1/02—Methods or apparatus for hybridisation; Artificial pollination ; Fertility
- A01H1/022—Genic fertility modification, e.g. apomixis
- A01H1/023—Male sterility
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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
- A01H5/00—Angiosperms, i.e. flowering plants, characterised by their plant parts; Angiosperms characterised otherwise than by their botanic taxonomy
- A01H5/10—Seeds
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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
- A01H6/00—Angiosperms, i.e. flowering plants, characterised by their botanic taxonomy
- A01H6/20—Brassicaceae, e.g. canola, broccoli or rucola
- A01H6/201—Brassica juncea
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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
Definitions
- This invention relates to a novel cytoplasmic male sterility (CMS) system in oilseed Brassica species and a method for obtaining male sterile Brassica lines using the said male sterile cytoplasm.
- CMS cytoplasmic male sterility
- the invention also relates, in particular, to a method for using the said male sterility system for the production of hybrid seeds in Brassica juncea.
- Cross pollination is essential for the production of hybrids and hence, it is imperative to render one of the parents male sterile to ensure cross pollination to facilitate the production of hybrid seeds in a commercially viable manner.
- CMS cytoplasmic male sterility
- CMS provides a useful mechanism for pollination control and commercial hybrid seed production. In crop plants, where seeds are the product of economic value, restoration of fertility in the Fl hybrids is essential. CMS— restorer systems have been used for the production of hybrid seeds in a large number of crops like maize, rice, sorghum, sunflower etc.
- CMS may be either alloplasmic or spontaneous in origin.
- Spontaneous CMS systems arise in breeding lines without intentional intervention. Examples include: the maize T- cytoplasm [Duvick DN: Cytoplasmic pollen sterility in corn. In: Caspari EW, Thoday JM (eds) Advances in Genetics. VoI 13, pp 1-56. Academic Press, New York (1965)]; the pol cytoplasm of B. napus (which arose in cultivar Polima, Fu, 1981, Eucarpia Cruciferae Newsl. 6:6-7) and the male sterile cytoplasm of Phaseolus (first reported by Basset and Shuh, 1982, J. Am. Soc. Hort. Sci. 107:791-793).
- an alien cytoplasm present in the nuclear background of a cultivated crop variety leads to nuclear - cytoplasmic incompatibility inducing male sterility.
- Several alloplasmic CMS systems reported in various Brassica species have been generated using wild relatives as the cytoplasmic donors.
- B. oxyrrhina cytoplasm has been shown to induce male sterility in B. juncea (Prakash and Chopra, 1990, Theor.
- B. tourmfortii cytoplasm in B. juncea and B. napus (Pradhan et. al.,1991, Plant Breeding 106:204-208; Steiwe and Robellen, 1994, Plant Breeding 113: 294-304; Arumugam et. al., 1996, Theor. Appl. Genet. 92:762-768), Diplotaxis siifolia cytoplasm in B. juncea (Rao et.
- restorer genes from wild relatives is often hampered by its linkage to undesirable traits viz. reduced female fertility as observed in 'Ogu' CMS in B. napus (Delourme and Renard, 1988, Genome 30:234-238). This undesirable linkage was subsequently broken in order to develop restorer lines with good female fertility
- Another alloplasmic CMS system in B. juncea derived from Erucastrum canariense cytoplasm developed by Prakash et. al. (2001, Plant Breeding 120:479-482), also lacked proper restoration. The restored plant showed 90% pollen viability but was also associated with reduced female fertility.
- the main object of the invention is to provide a novel cytoplasmic male sterility (CMS) system in oilseed Brassica, the said CMS being designated as ' 126-1 CMS' .
- CMS cytoplasmic male sterility
- Another object of this invention is to provide methods for developing male sterile Brassica lines using the said novel 126-1 male sterile cytoplasm and a method for producing hybrid plants and seeds in Brassica juncea using the said CMS system.
- the invention provides a novel cytoplasmic male sterility (CMS) system, designated as 126-1 CMS.
- CMS cytoplasmic male sterility
- the said CMS system is hereinafter referred to as '126-1 CMS'.
- the said CMS system was first developed and obtained in a microspore derived doubled haploid population of an Indian Brassica variety i.e. Brassica napus var ISN 706.
- the said male sterile plant exhibits normal phenotypic and morphological characteristics as any other plant of genus Brassica, species napus; except that it does not produce viable pollen grains and is hence, male sterile.
- This CMS can be transferred to any B.
- genotype is used to include all the varieties, lines and cultivars of a given or specific Brassica species unless otherwise mentioned.
- the 126-1 CMS trait is characterized by generation of mitochondrial DNA specific fingerprints in CMS lines of B. napus and B. juncea.
- the genetic determinants of cytoplasmic male sterility (CMS) in plants are located in mitochondria.
- the DNAs of the said 126-1 CMS lines are extracted and restriction enzyme patterns analyzed by RFLP method using certain mitochondrial DNA specific probes. The analysis revealed distinct banding patterns as described below. Similar or identical patterns are observed when the above 126-1 CMS trait is transferred from B. napus to B. juncea by inter-specific crossing followed by repeated back-crossing to B. juncea.
- RFLP is a technique wherein the DNA of a plant / organism is digested with a restriction enzyme (i.e. enzymes that cleave DNA molecules at specific nucleotide sequences depending on the enzyme used). The digestion produces DNA fragments of varying lengths which are separated and analyzed by gel electrophoresis. The pattern so generated is unique to the organism / plant and hence, the technique is used to differentiate organisms / plants from each other on this basis.
- a restriction enzyme i.e. enzymes that cleave DNA molecules at specific nucleotide sequences depending on the enzyme used.
- the digestion produces DNA fragments of varying lengths which are separated and analyzed by gel electrophoresis.
- the pattern so generated is unique to the organism / plant and hence, the technique is used to differentiate organisms / plants from each other on this basis.
- DNAs of different B. napus and B. juncea genotypes carrying 126-1 CMS were extracted, subjected to digestion by restriction enzymes and the restriction enzyme patterns were analyzed using mitochondrial specific DNA as probes.
- the RFLP patterns so generated are depicted in Figs 2-7
- the DNAs from the 126-1 CMS genotypes in both B. napus and B. juncea were digested with EcdBI restriction enzyme and hybridized to cosmid clones, pCos 13 , pCos 17 , and pCos 42 containing B. oxyrrhina mitochondrial DNA as probes.
- the said three cosmid clones from heterologous system (B. oxyrrhina) have been used to cover different regions of the entire mitochondrial DNA genome to reveal any changes in the mitochondrial DNA, which is responsible for male sterility trait and is a determinant of male sterility trait in the present CMS system and the plants to which it is transferred.
- the said clones have been deposited at the Microbial Type Culture Collection (MTCC), Chandigarh at Accession Nos. 5242 (for pCos 13 ), 5243 (for pCos 17 ) and 5244 (for pCos 42 ).
- MTCC Microbial Type Culture Collection
- 5242 for pCos 13
- 5243 for pCos 17
- 5244 for pCos 42
- the following RFLP patterns are obtained with these three cosmid clones:
- RFLP restriction fragment length polymorphism
- RFLP restriction fragment length polymorphism
- RFLP first restriction fragment length polymorphism
- RFLP restriction fragment length polymorphism
- a first restriction fragment length polymorphism (RFLP) band of about 4.5kb length which is present in CMS genotypes but absent in parent genotypes (i) a first restriction fragment length polymorphism (RFLP) band of about 4.5kb length which is present in CMS genotypes but absent in parent genotypes; (ii) a second restriction fragment length polymorphism (RFLP) band of about 3.0kb length which is present in CMS genotypes but absent in parent genotypes; (iii) a third restriction fragment length polymorphism(RFLP) band of about 2.8kb length which is present in CMS genotypes but absent in parent genotypes.
- RFLP restriction fragment length polymorphism
- the invention also provides a cell of a plant of genus Brassica comprising in its cytoplasm the mitochondrial DNA as described above.
- the plant cell is part of the plant selected from Brassica juncea, Brassica napus, Brassica carinata, Brassica oleracea, Brassica nigra and Brassica campestris.
- the male sterile Brassica juncea plant which comprises in its mitochondrial genome a 126-1 CMS specific fingerprint i.e. the RFLP pattern above and shown in any of figures 2, 3, 4, 5, 6, 7.
- the band sizes are calculated on the basis of a standard DNA size markers, based on logarithmic relationship between size of DNA and distance migrated.
- the marker used in the present study is Lambda DNA digested with restriction enzyme Hind III. Based on the above calculations, the band sizes are usually approximate, hence the band sizes mentioned in the present invention represent an approximate value.
- the invention provides a novel CMS system which could be used for the development of hybrid seeds.
- the seeds of the said novel 126-1 CMS system have been deposited at the International depository at NCIMB on June 29, 2005 at accession no. NCIMB 41331.
- the said 126-1 CMS system when crossed with another plant of genus Brassica produces male sterile plants. No floral or other phenotypic abnormalities (such as chlorosis) were observed in any of the plants resulting from the cross. In fact, even varying temperature conditions do not have any effect on this male-sterility system.
- Such progeny plants that receive or inherit the 126-1 CMS cytoplasm together with the 126-1 CMS specific fingerprint are referred to as 126-1 CMS recipient/transferee plants hereafter for sake of convenience.
- the said 126-1 CMS exhibits various distinctive characteristics (Fig 10) which may be discerned at the histological level, some of which are as under: a) the microspores undergo progressive and rapid degeneration of cell contents after their release from the tetrads; b) degeneration of microspores precedes the degeneration of tapetal layers surrounding the microspores; c) leakage of lipid material occurs from the tapetum into the outer periphery of the tapetal layer instead of on the microspores; d) endothecial layer of the anther comprising flattened cells are marked by the absence of secondary wall thickenings; e) indehiscent anthers are marked by the absence of stomium and functional endothecial layer; f) presence of intact interlocular septum.
- the invention provides a method for developing a male sterile plant comprising the steps of: a) crossing a Brassica plant possessing in its cytoplasm a 126-1 CMS specific fingerprint with a genotype selected from B. napus or B. juncea lacking the said fingerprint , b) allowing the plants of step (a) to set seeds, and c) developing the progeny to a male sterile plant comprising in its cytoplasm the
- step (c) performing repeated backcrosses to the progeny plant of step (c) with the plant of step (a) lacking the 126-1 specific fingerprint.
- a number of male sterile plants may be generated by crossing a Brassica plant comprising in its cytoplasm mitochondrial DNA with 126-1 CMS specific fingerprint, with a plant of B. napus or B. juncea lacking the said fingerprint.. The plants are allowed to set seed and male sterile progeny is obtained.
- this cytoplasmic male sterility is transferred to other B. napus varieties through inter- varietal crosses, the Fl generation is completely male sterile and the sterility is stably maintained in subsequent backcrosses.
- 126-1 CMS is transferred to B. juncea through inter specific crosses, the interspecific Fl plants between B. napus carrying 126-1 CMS specific fingerprint and normal B. juncea (lacking the specific fingerprint) show partial fertility.
- the male sterility character of the 126-1 CMS may be efficiently transferred from a genotype possessing the 126-1 CMS specific fingerprint to any Brassica genotype lacking the said fingerprint.
- the 126-1 CMS may be easily transferred to any plant within genus Brassica by simply crossing the 126-1 CMS with the desired Brassica plant.
- Brassica napus var. 126-1 x Brassica juncea var. Pusa Bold would result in a male sterile progeny.
- the invention provides a method for production of hybrid plants comprising the steps of: a) crossing a Brassica juncea genotype carrying in its cytoplasm the 126-1 CMS specific fingerprint, with another B. juncea genotype lacking the said fingerprint, b) allowing the plants of step (a) to set seeds and harvesting the same, c) collecting and germinating the seeds to obtain fully fertile hybrid plants.
- juncea wherein the same genotype can be used as the restorer of male fertility in Fl generation for the production of fertile Fl hybrid as well as maintainer of male sterility after a certain number of backcrosses, which is in contrast to all the other CMS-restorer systems reported till date in B. juncea or any other Brassica species.
- the genotypes of Brassica genus exhibit no phenotypic, morphological or other defects upon receiving the 126-1 CMS specific fingerprint from a donor plant.
- a special feature of this invention provides the restoration of male fertility in B. juncea by crossing any male sterile variety of B.
- Fig. 1 is a photograph depicting morphological details of male sterile and male fertile flowers; a, male sterile flower of 126-1 CMS in B. juncea var. Pusa Bold showing normal flower opening and fully expanded petal formation; b, male sterile flower (petals removed) showing short filaments and shriveled anthers; c, restored male fertile flower showing expanded petal formation and normal flower opening; d, restored male fertile flower (petals removed) showing long filaments and dehiscing anthers.
- Fig. 2 is a photograph depicting Southern hybridization pattern of total DNA digested with Ec ⁇ RI from normal B. napus genotype var. ISN 706 (lane 1), 126-1 CMS line of B. napus var. ISN 706 (lane 2), 126-1 CMS genotypes of B. juncea in the nuclear background of BNF-5 (lane 3), D-205 (lane 4), D-247 (lane 5), DYJ-III (lane 6), Pusa Agrani (lane 7), TM-4 (lane 8), TM- 18 (lane 9), Varuna (lane 10), Pusa Bold (lane 11), EH-2 (lane 12), parent B.
- Lanes 2 to 12 have mitochondrial DNA specific CMS bands of about 4.0kb, 2.5kb and 0.7kb (RFLP signature bands).
- the parent specific band of about 3.4kb present in ISN 706 (lane 1), EH-2 (lane 13) and Pusa bold (lane 14) is missing from 126-1 CMS lines (lanes 2 to 12).
- the numbers along the left margin of the figure represent a non-linear scale, in kilobase pairs (kb), of DNA fragment sizes.
- Fig. 3 is a photograph depicting Southern hybridization pattern of total DNA digested with EcoRI from normal B. napus var. ISN 706 (lane 1) and 126-1 CMS lines in the nuclear background of ISN 706 (lane 2), GSL-I (lane 3) and NU-98 (lane 4) of B. napus hybridized to cosmid clone pCos 13 containing B. oxyrrhina mitochondrial DNA inserts.
- Lanes 2 to 4 have mitochondrial DNA specific CMS bands of about 4.0kb, 2.5kb and 0.7kb (RFLP signature bands).
- Parent ISN 706 specific band of about 3.4kb (lane 1) is missing from 126-1 CMS lines (lanes 2 to 4).
- the numbers along the left margin of the figure represent a non-linear scale, in kilobase pairs (kb), of DNA fragment sizes.
- Fig. 4 is a photograph depicting Southern hybridization pattern of total DNA digested with EcoRI from normal B. napus var. ISN 706 (lane 1), 126-1 CMS line of B. napus var. ISN 706 (lane 2), 126-1 CMS genotypes of B. juncea in the nuclear background of BNF- 5 (lane 3), D-205 (lane 4), D-247 (lane 5), DYJ-III (lane 6), Pusa Agrani (lane 7), TM-4 (lane 8), TM-18 (lane 9), Varuna (lane 10), Pusa Bold (lane 11), EH-2 (lane 12), parent B.
- Fig. 5 is a photograph depicting Southern hybridization pattern of total DNA digested with Ec ⁇ RI from normal B. napus var. ISN 706 (lane 1) and 126-1 CMS lines in the nuclear background of ISN 706 (lane 2), GSL-I (lane 3) and NU-98 (lane 4) of B. napus were hybridized to cosmid clone pCos 11 containing B. oxyrrhina mitochondrial DNA inserts.
- Parental genotype ISN 706 (lane 1) was marked by the presence of about 3.5kb band.
- 126-1 CMS lines (Lanes 2 to 4) showed presence of CMS specific band of about 1.7kb (RFLP signature bands).
- the numbers along the left margin of the figure represent a non-linear scale, in kilobase pairs (kb), of DNA fragment sizes.
- Fig. 6 is a photograph depicting Southern hybridization pattern of total DNA digested with EcoBl from normal B. napus var. ISN 706 (lane 1), 126-1 CMS line of B. napus var. ISN 706 (lane 2), 126-1 CMS genotypes of B. juncea in the nuclear background of BNF- 5 (lane 3), D-205 (lane 4), D-247 (lane 5), DYJ-III (lane 6), Pusa Agrani (lane 7), TM-4 (lane 8), TM-18 (lane 9), Varuna (lane 10), Pusa Bold (lane 11), EH-2 (lane 12), parent B.
- Lanes 2 to 12 have mitochondrial DNA specific CMS bands about of 4.5 kb, 3.0 kb, and 2.8 kb (RFLP signature bands). CMS specific bands are missing from lanes 1, 13 and 14 representing parental genotypes ISN 706 (lane 1), EH-2 (lane 13) and Pusa bold (lane 14), respectively .
- the numbers along the left margin of the figure represent a non-linear scale, in kilobase pairs (kb), of DNA fragment sizes.
- Fig. 7 is a photograph depicting Southern hybridization pattern of total DNA digested with EcoRl from normal B. napus var. ISN 706 (lane 1) and 126-1 CMS lines in the nuclear background of ISN 706 (lane 2), GSL-I (lane 3) and NU-98 (lane 4) of B. napus hybridized to cosmid clone pCos 42 containing B. oxyrrhina mitochondrial DNA inserts.
- Lanes 2 to 4 have mitochondrial DNA specific CMS bands of about 4.5 kb, 3.0 kb, and 2.8 kb (RFLP signature bands). CMS specific bands are missing from parental line ISN 706 (lane 1).
- the numbers along the left margin of the figure represent a non-linear scale, in kilobase pairs (kb), of DNA fragment sizes.
- Fig. 8 is a photograph depicting Southern hybridization pattern of total DNA digested with EcoEl from various CMS lines available in B. juncea backround. 126-1 CMS line of B. napus genotype ISN 706 (lane 1), 126-1 CMS line of B.
- Fig. 9 is a photograph depicting light micrographs of microspores stained with
- Fig. 10 is a photograph depicting light micrographs of thin sections of anthers from male fertile (a, c, e) and male sterile buds (b, d, f).
- a toluidine stained anther locule of male fertile flower containing well developed microspores (arrow head) surrounded by well differentiated tapetum and outer wall layers (x20)
- b toluidine stained anther locule of male sterile flower showing degenerated microspores comprising plasmolyzed cytoplasm and irregular exines.
- Tapetal cells are vacuolated (x20)
- c section showing autofluorescence of lipids in normal male fertile flowers. Microspores appear bright yellow.
- Endothecial layer is well, differentiated showing secondary wall thickenings (arrow head) (x20), d: section of male sterile anther showing sporopollenin (L) leaking from the tapetal cells (T) into the outer periphery.
- Anther locule is filled with degenerated microspores (x20), e: section showing dehisced anther in normal male fertile flowers with prominent stomium (*) and anther locule filled with well developed microspores (x20), f: section of mature male sterile flower showing indehiscent anther with collapsed locule containing empty sporoderms. Stomium is absent and interlocular septum (>) is intact (xlO).
- genotypes used in the present invention along with their characteristics and utility are summarized in Table 1. All the genotypes used are obtained from various repositories open and accessible to the public such as National Bureau of Plant Genetic Resources, Delhi, India. Even otherwise, the germplasm used in the present invention may be easily obtained from other public source depositories. All the germplasm used was either grown under short-day (duration of photoperiod is of 10 hrs) conditions during the normal mustard growing season (October-March) in village Jaunti, Delhi, India or under long-day (duration of photoperiod is of 14 hrs) conditions at Leh, Jammu & Jerusalem, India during summer (May - September).
- the seeds of B. napus var. ISN 706 were sown and plants were established in a plant growth chamber at a day/night temperature of 20°C/15°C under a 1Oh photoperiod for about 40 days till the emergence of inflorescence axis. Thereafter the plants were shifted to a day/night temperature of 1O 0 C to 5 0 C under a 14h photoperiod for at least 15 days before harvesting buds for microspore isolation.
- Pflazenphysiol 105:427- 434 The microspore suspension was transferred to sterile screw capped tubes and spun at 1000 rpm for 5 minutes. Then the microspores were washed once in fresh WM. The microspores were resuspended in 2-1OmI NLN (Lichter, 1982, Z. Pflazenphysiol 105:427-434) with 13% sucrose (13NLN) and the yield was estimated using a haemocytometer.
- the Lichter medium comprises the following salts:
- the suspension volume was adjusted to 4ml with a microspore density of 8 x 10 4 /ml and ImI of 25mg/50ml colchicine in 13NLN (final colchicine concentration is 0.01%) was added.
- microspore suspension was incubated in 5ml 13NLN with colchicine at 28.O 0 C for 24 h in dark. Colchicine was washed off with 13NLN.
- Microspores were plated at a density of 4 x 10 4 microspores / ml in petridishes containing 1% activated charcoal prepared in 13NLN and incubated at 28.O 0 C for 7 - 10 days.
- the plates with floating embryos were shifted on to a shaker at 80 rpm, 16h light and 22 0 C for 21 days.
- the 21- days old embryos were transferred to 13NLN containing 0.015mM (3.96mg/l) ABA and incubated in an environmental shaker at 80 rpm, 15 0 C and 1Oh photoperiod for 14 days.
- Embryos were transferred to semisolid Schenk medium (Schenk and Robbelen, 1982, Z. Dezuchtg 89:278-288) with lmg/1 GA 3 for germination.
- the shoot tips from the seedlings were subcultured (after 1-2 weeks) on MS medium with 2mg/l IBA for multiplication.
- the shoots rooted on this medium within 7-10 days and were maintained on the same medium till transfer to the field.
- the regenerated plants were analysed for ploidy level using flow cytometer (Facscan) following Arumuganathan and Earle (1991, Plant MoI. Bio. Rep. 9:229-241). Nuclei from young (3 rd or 4 th leaves from the apex) leaves were isolated and stained with propidium iodide prior to analyzing these in the facscan machine.
- Example 2 Analysis of the male sterility status of 126-1 CMS:
- Plants obtained in example 1 were monitored for male sterility by bagging each plant with a pollination bag to study the seed set on self pollination. Two to three inflorescences bearing 10 - 15 unopened buds were selfed in each plant. Absence of seed set was taken as a confirmation of male sterility.
- Example 3 Estimation of pollen viability of 126-1 CMS:
- FDA flourescein diacetate
- FDA solution was prepared by dissolving 10 mg of FDA in 20ml of acetone solvent. Two or three drops of FDA solution were added to 2ml of 18 % sucrose solution to prepare the stock solution. All the 6 anthers of a flower were squeezed in a drop of FDA solution on a glass slide to release the pollen grains. The pollen grains were observed under fluorescent light. Viable pollens fluoresce green and the viability was scored by counting the number of fluorescing pollen grains as against the total number of microspores in a microscopic field.
- This cytoplasmic male sterility was transferred through inter-varietal crosses to other genotypes of B. napus e.g. GSL-I and NU 98 which were found to be completely sterile in Fl generation and the sterility was stably maintained in subsequent backcrosses.
- the 126-1 CMS was also transferred to other Brassica species through inter specific crosses followed by recurrent back-crossings.
- B. campestris this CMS was transferred to both brown seeded and yellow seeded genotypes of Indian and exotic origin.
- the Fl progeny resulting from cross between B. napus carrying the 126-1 CMS and B. campestris was found to be completely male sterile. No other floral or phenotypic abnormalities were observed in any of these crosses.
- the sterility was found to be stably inherited in successive back-cross generations.
- B. oleracea the 126-1 CMS was transferred to both early and late flowering genotypes.
- the Fl plants turned out to be completely male sterile.
- the Fl plants showed intermediate phenotype and typical curd formation was not observed.
- the male sterility was stably inherited in successive back- crosses.
- the curd formation showed improvement with progressive back-crossings.
- Bjuncea genotypes BNF-5, D-205, D-247, TM-4, TM- 18 were completely male sterile after BC4 generation.
- Table 2 Status of pollen viability of various B. juncea varieties and genotypes with 126-1 CMS.
- DNA was also extracted from the leaves of various other CMS systems like 'Ogura', 'oxy', 'Diplotaxis', 'Tour' and 'Moricandia in the background of B. juncea var. Pusa bold.
- One gram of leaf tissue was finely powdered in liquid nitrogen and homogenized in 5ml extraction buffer containing 100 niM Tris-HCl, pH 8; 20 mM EDTA, pH 8; 1.4 M NaCl, 1% PVP40 and 2% CTAB. The above material was incubated at 65 0 C for 10 min with occasional shaking followed by extraction with an equal volume of chloroform : isoamylalcohol (24:1).
- Genomic DNA was precipitated from the above supernatant by addition of 3 volumes of precipitation buffer (50 mM Tris-HCl pH 8.0, 1 OmM Sodium EDTA and 1% CTAB) followed by incubation at room temperature for 30 minutes.
- the pellet obtained was dissolved in 500 ⁇ l of buffer containing 10 mM Tris-HCl pH 8.0, ImM Sodium EDTA and 1 M Sodium Chloride. Undissolved impurities were removed from above samples by centrifugation followed by precipitation of dissolved DNA using 100% ethanol. The DNA pellet was washed with 70% ethanol and finally dissolved in an appropriate amount of sterile distilled water.
- Southern hybridization was done by treating the membrane for 6h at 42 0 C in prehybridization buffer containing 50% formamide, 0.1% Denhardt's solution, 5x SSC, 5% Dextran sulphate, 1% SDS and 200ng of Salmon sperm DNA. Labelled probes were prepared using Amersham multiprime labelling kit following manufacturer's instructions. Following prehybridization, the labelled probe was denatured and added to the membrane. The membrane was then hybridized for 16h at 42 0 C. After hybridization, the membranes were washed twice in 2x SSC for 15 min. at room temperature and once at 3O 0 C in 0.2x SSC, 0.1% SDS at 65 0 C. Subsequently the membranes were exposed overnight to X-ray film (Kodak, X-Omat). The banding patterns were resolved by developing these X-ray films. c) Analysis of mitochondrial DNA composition:
- 126-1 CMS recipient lines of both B. juncea and B. napus show the presence of CMS specific bands of about 4.0 kb, 2.5 kb and 0.7 kb (Fig.2 lanes 2 to 12, Fig.3 lanes 2 to 4) whereas these bands are completely missing from the parental lines of B. napus and B. juncea (lanes 1, 13 & 14 of Fig. 2 and lane 1 of Fig. 3) indicating that these bands are specific to 126-1 CMS and serve as RFLP signature for identification of 126-1 CMS.
- a parent specific band of about 3.4 kb (lanes 1, 13 and 14 of Fig. 2 and lane 1 of Fig. 3) is absent from the 126-1 CMS lines of B.
- 126-1 CMS line of NU-98 (Fig. 3 lane 4) showed the presence* of about 3.4kb band as well as an additional band of about 4.6kb indicating that mitochondrial rearrangements or stoichiometric changes in mitochondrial DNA might have taken place during the transfer of 126-1 CMS recipient from B. napus ISN706 to B. napus NU98.
- Cosmid clone pCos 17 on hybridization with Ec ⁇ Bl digested DNAs of B. juncea and B. napus showed the presence of a parent specific band of about 3.5kb, which is absent from the 126-1 CMS lines (lanes 2 to 12 of Fig. 4 and lanes 2 to 4 of Fig. 5) and a CMS specific band of about 1.7 kb which is absent from the parental lines of B. juncea and B. napus (Fig. 4 lanes 1, 13 & 14 and Fig. 5 lane 1).
- Alexander's stain Microspore development was studied by Alexander's stain (Alexander, 1969, Stain Technol. 44:117-122). Using this procedure visual distinction can be made between the viable and aborted microspores. Alexander's stain was prepared by mixing 2 ml of glacial acetic acid, 25 ml of glycerol and 50 ml of distilled water. To the above solution, 5g crystals of Phenol and Chloral hydrate were added. Further, 1 ml of Malachite green (1% in 95% ethanol), 5 ml of acid Fuschin (1% in water) and 0.5 ml of Orange G (1% in water) were added to the above solution.
- Karnovsky's fixative was prepared by dissolving 2g of paraformaldehyde in 25 ml of distilled water at 60 - 70 0 C. One to two drops of IN NaOH were added to clear the solution. To this solution 5ml of glutaraldehyde was added and volume was made up to 50 ml with 0.1 M Cacodylate buffer. To 50 ml of this solution, 125 mg of CaCl 2 was added.
- pH of the Karnovsky's fixative stock solution was set at 7 - 7.2 by using IN NaOH.
- Semi-thin sections (3-4 ⁇ m) were cut on a rotary microtome. Slides were stained in Toluidine blue O (O'Brien & McCully 1981 Termarcarphi Pty. Ltd. Melbourne Australia). Autofluorescence of sporopollenin and lignified tissue was visualized under UV light microscope (Olympus).
- Senescing tapetum in Brassicaceae is characterized by high lipid content which can be visualized by its autofluorescence under UV light.
- Cross section of male fertile anthers (6 -7 mm in size) revealed that the lipid material from the degenerating tapetum was deposited around the microspores which fluoresce very brightly (Fig. 10c).
- the lipid material leaked into the outer periphery of the tapetal layer (Fig. 1Od) and the anther locule was filled with empty exines.
- the endothecial layer was observed to be well developed with secondary wall thickenings in the normal male fertile anthers (Fig.
- the dehisced anther was characterized by the presence of stomium and the absence of interlocular septum (Fig. 1Oe).
- the endothecial layer was made up of only flattened cells and lacked secondary wall thickenings (Fig. 1Od).
- the indehiscent anthers were also characterized by the absence of stomium and functional endothecial layer and the interlocular septum did not rupture (Fig. 1Of).
- Anther development in 126-1 CMS differs significantly from another well described alloplasmic CMS system 'Ogu', in B. napus (Gourret et. al., 1992, Theor. Appl. Genet. 83:549-556).
- the present invention provides a novel cytoplasmic male sterility (126-1 CMS) system in B. napus and B. juncea with a mitochondrial DNA specific RFLP signature.
- 126-1 CMS is a unique cytoplasmic male sterile system in B. juncea wherein any B. juncea genotype can be used as a restorer for obtaining fertile Fl hybrid and also as a maintainer of male sterility after a specified number of backcrosses.
- This 126-1 CMS is free from any other phenotypic or floral abnormalities. Restoration of fertility is complete and does not suffer from any abnormalities usually associated with restorers derived from alloplasmic CMS systems.
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AU2005276075A AU2005276075B2 (en) | 2004-08-26 | 2005-08-22 | A novel cytoplasmic male sterility system for Brassica species and its use for hybrid seed production in Indian oilseed mustard Brassica juncea |
US11/660,510 US8030548B2 (en) | 2004-08-26 | 2005-08-22 | Cytoplasmic male sterility system for Brassica species and its use for hybrid seed production in indian oilseed mustard Brassica juncea |
CA2578187A CA2578187C (en) | 2004-08-26 | 2005-08-22 | A novel cytoplasmic male sterility system for brassica species and its use for hybrid seed production in indian oilseed mustard brassica juncea |
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US8030548B2 (en) | 2011-10-04 |
AU2005276075B2 (en) | 2010-08-26 |
CA2578187C (en) | 2015-08-04 |
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US20080148429A1 (en) | 2008-06-19 |
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