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Updated: Jan 22, 2026

DNA-based Fish Species Identification Protocol
Published on: April 28, 2010
Rapid identification of apple (Malus×domestica Borkh.) S alleles using sequencing-based DNA marker APPLid
Ichiro Kasajima1, Teppei Kikuchi1, Nobuyuki Yoshikawa1
1Faculty of Agriculture, Iwate University, Ueda 3-18-8, Morioka, Iwate 020-8550, Japan.
Abstract:
All apple cultivars harbor the trait called self-incompatibility. Self-incompatibility represents that the pistils of the flowers are not successfully fertilized with own, the same cultivar's pollens. Compatibility or incompatibility of apple flowers are determined by S alleles. For example, the most popular apple cultivar 'Fuji' possesses the S and S alleles (S ). Thus, 'Fuji' is incompatible with S cultivars, but is compatible with the cultivars possessing different combinations of S alleles such as S and S . Apple S alleles have been identified by performing a series of allele-specific PCR amplifications, to detect more than ten different S alleles separately. Here, we developed a new type of sequencing-based DNA marker of the apple S-RNase gene, which identifies S alleles. This DNA marker was named APPLid (apple S-allele identifier). A 53-base region in the first coding sequence of S-RNase is the target of APPLid sequencing. Variation in nucleotide sequences in this APPLid sequence enables allele identifications. This region is amplified from apple genomic DNA by using a pair of degenerate primers. The forward primer is attached with 'DS5 adaptor.' After PCR amplification, electrophoresis and gel extraction of 177-bp DNA fragments, APPLid sequence is determined by direct sequencing with a sequencing primer. The APPLid sequences of 20 apple cultivars completely matched their S alleles, which include triploid cultivars. In conclusion, APPLid identifies apple S alleles (S , S , S , S , S , S , S , S , S , S , S , S , S and S , so far) just by a single sequencing analysis.
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