Fine mapping of the peach pollen sterility gene (Ps/ps) and detection of markers for marker-assisted selection

被引:0
作者
I Eduardo
C de Tomás
KG Alexiou
D Giovannini
M Pietrella
S Carpenedo
MC Bassols Raseira
I Batlle
CM Cantín
MJ Aranzana
P Arús
机构
[1] IRTA,Council for Agricultural Research and Economics, Research Centre for Olive, Fruit and Citrus Crops
[2] Institut de Recerca i Tecnologia Agroalimentàries,Centre Mas de Bover
[3] Centre for Research in Agricultural Genomics (CRAG) CSIC-IRTA-UAB-UB,undefined
[4] CREA,undefined
[5] Embrapa Clima Temperado,undefined
[6] IRTA,undefined
[7] IRTA. FruitCentre. Parc Cientific i Tecnològic Agroalimentari de Lleida (PCiTAL),undefined
[8] ITA-ARAID. Agrifood Research and Technology Centre of Aragón,undefined
来源
Molecular Breeding | 2020年 / 40卷
关键词
Male sterility; Marker-assisted breeding; Breeding program;
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中图分类号
学科分类号
摘要
In peach, pollen sterility, expressed as absence of pollen in the anthers, segregates as an undesired trait in breeding programs. Pollen fertility screening in progenies is not a common practice mainly because it does not affect fruit set since cross-pollination is frequent. It is also a time-consuming activity that coincides with the busy pollination season. Segregation for this trait could be avoided by using molecular markers to identify appropriate parents or male sterile plants for early culling in progenies expected to segregate, thus increasing breeding efficiency. In peach, pollen sterility is determined by a recessive allele in homozygosis of the major gene, Ps/ps, located on chromosome 6. In this work, using a conventional mapping approach combined with bulked segregant analysis using resequencing data, we fine mapped Ps to a region of almost 160 kb and developed molecular markers for marker-assisted breeding. These markers were validated in plant materials from three peach breeding programs, including progenies, advanced selections, and cultivars, allowing us to determine that the frequency of the ps allele is high (0.23) and also to infer the genotypes of a large collection of cultivars and advanced breeding lines.
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