Selon l'invention, un evenement combine de selection de l'evenement de soja 9582.814.19.1 et de l'evenement de soja pDAB4468.04.16.1 a conduit au nouvel evenement de soja pDAB9582.814.19.1 :: pDAB4468.04.16.1. L'evenement de soja pDAB9582.814.19.1 :: pDAB4468.04.16.1 comporte des genes codant pour AAD-12, Cry1F, Cry1Ac (synpro) et PAT, fournissant une resistance aux insectes et une tolerance aux herbicides a des cultures de soja contenant l'evenement, et permettant des procedes de protection des cultures et des produits stockes.
Maize brown midrib1 (bm1) mutant plants have reduced lignin content and offer significant advantages when used in silage and biofuel applications. Cinnamyl alcohol dehydrogenase (CAD) catalyzes the conversion of hydroxycinnamyl aldehydes to monolignols, a key step in lignin biosynthesis. Maize CAD2 has been implicated as the underlying gene for bm1 phenotypes since bm1 plants have reduced CAD activity and lower CAD2 transcript level. Here, we describe a Dow AgroSciences maize bm1 mutant (bm1-das1) that contains a 3,444-bp transposon insertion in the first intron of CAD2 gene. As a result of chimeric RNA splicing, cad2 mRNA from bm1-das1 contains a 409-bp insert between its 1st and 2nd exons. This insertion creates a premature stop codon and is predicted to result in a truncated protein of 48 amino acids (AA), compared to 367 AA for the wild type (WT) CAD2. We have also sequenced cad2 from the reference allele bm1-ref in 515D bm1 stock and showed that it contains a two-nucleotide (AC) insertion in the 3rd exon, which is predicted to result in a truncated protein of 147 AA. The levels of cad2 mRNA in the midribs of bm1-das1 and bm1-ref are reduced by 91 and 86 % respectively, leading to reductions in total lignin contents by 24 and 30 %. Taken together, our data show that mutations in maize CAD2 are responsible for maize bm1 phenotypes. Based on specific changes in bm1-das1 and bm1-ref, high throughput TaqMan and KBioscience's allele specific PCR assays capable of differentiating mutant and WT alleles have been developed to accelerate bm1 molecular breeding.
An accurate determination of gene copy number is critical to the success of a molecular breeding program involving both transgenic and non-transgenic plants. In this paper, we have described the application of a non-PCR-based technology, Invader®*, for determination of gene copy number and zygosity in plants. A biplex assay format detected both a target gene and an endogenous reference gene simultaneously from the genomic DNA. The ratio between the signals of the two genes in relation to known copy number standards of the same target gene allowed copy number determination. The linear range of the Invader assay was 1–4 copies per genome, but it can be accurate over a larger copy number range depending on the assay conditions. This technique was utilized for screening plants carrying low transgene copy numbers from a large number of events generated by plant transformation, and shown to produce results comparable to that of Southern blots. We have also utilized this technique to screen thousands of field-grown plants for zygosity determinations and obtained data that was over 98% accurate, thus proving that this assay can be used to improve the efficiency of a breeding program. Overall, the Invader assays proved to be reproducible, specific, applicable to any gene sequence and amenable to high-throughput screening.