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High density linkage map construction and QTL mapping for runner production in allo-octoploid strawberry Fragaria × ananassa based on ddRAD-seq derived SNPs

机译:基于ddRAD-seq衍生SNP的高密度连锁图谱构建和QTL作图用于异八倍体草莓草莓×草莓的转基因生产。

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摘要

Recent advances in high-throughput genome sequencing technologies are now making the genetic dissection of the complex genome of cultivated strawberry easier. We sequenced Maehyang (short-day cultivar) × Albion (day-neutral cultivar) crossing populations using double digest restriction-associated DNA (ddRAD) sequencing technique that yielded 978,968 reads, 80.2% of which were aligned to strawberry genome allowing the identification of 13,181 high quality single nucleotide polymorphisms (SNPs). Total 3051 SNPs showed Mendelian segregation in F1, of which 1268 were successfully mapped to 46 linkage groups (LG) spanning a total of 2581.57 cM with an average interval genetic distance of 2.22 cM. The LGs were assigned to the 28 chromosomes of Fragaria × ananassa as determined by positioning the sequence tags on F. vesca genome. In addition, seven QTLs namely, qRU-5D, qRU-3D1, qRU-1D2, qRU-4D, qRU-4C, qRU-5C and qRU-2D2 were identified for runner production with LOD value ranging from 3.5–7.24 that explained 22–38% of phenotypic variation. The key candidate genes having putative roles in meristem differentiation for runnering and flowering within these QTL regions were identified. These will enhance our understanding of the vegetative vs sexual reproductive behavior in strawberry and will aid in setting breeding targets for developing perpetual flowering and profuse runnering cultivar.
机译:高通量基因组测序技术的最新进展现在使栽培草莓的复杂基因组的遗传解剖更加容易。我们使用双酶切限制性相关DNA(ddRAD)测序技术对Maehyang(短日栽培品种)××Albion(日中性栽培品种)杂交种群进行了测序,产生了978,968个读数,其中80.2%与草莓基因组比对,可鉴定13,181个高质量的单核苷酸多态性(SNP)。共有3051个SNPs在F1中表现出孟德尔分离,其中1268个已成功定位到46个连锁组(LG),跨度总计2581.57 cM,平均间隔遗传距离为2.22 cM。通过将序列标签定位在vesca基因组上,确定了LGs属于草莓属×ananassa的28条染色体。此外,还确定了七个QTL,即qRU-5D,qRU-3D1,qRU-1D2,qRU-4D,qRU-4C,qRU-5C和qRU-2D2,它们的LOD值在3.5-7.24之间,这解释了22。 –38%的表型变异。在这些QTL区域内,确定了在分生组织分化过程中对于奔跑和开花具有关键作用的关键候选基因。这些将增进我们对草莓营养生长与性生殖行为的了解,并有助于设定育种目标,以发展永生开花和大量繁殖的栽培品种。

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