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Nuclear and cytoplasmic genetic diversity in weed beet and sugar beet accessions compared to wild relatives: new insights into the genetic relationships within the Beta vulgaris complex species

机译:与野生亲缘植物相比,杂草甜菜和甜菜种质的核和细胞质遗传多样性:对寻常型β复杂种内遗传关系的新见解

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摘要

Hybridization between cultivated species and their wild relatives is now widely considered to be common. In the Beta vulgaris complex, the sugar beet seed multiplication areas have been the scene of inadvertent pollination of sugar beet seed bearers by wild ruderal pollen donors, generating a weedy form of beet which infests sugar beet fields in European countries. Up to now, investigations of evolutionary dynamics of genetic diversity within the B. vulgaris complex were addressed using few genetical markers and few accessions. In this study, we tackled this issue using a panel of complementary markers: five nuclear microsatellite loci, four mitochondrial minisatellite loci and one chloroplastic PCR-RFLP marker. We sampled 1,640 individuals that illustrate the actual distribution of inland ruderal beets of South Western France, weed beets and wild sea beets of northern France as well as the diversity of 35 contemporary European diploid cultivars. Nuclear genetic diversity in weed beets appeared to be as high as those of ruderal beets and sea beets, whereas the narrowness of cultivar accessions was confirmed. This genetic bottleneck in cultivars is even more important in the cytoplasmic genome as only one haplotype was found among all sugar beet cultivars. The large majority of weed beet populations also presented this unique cytoplasmic haplotype, as expected owing to their maternal cultivated origin. Nonetheless, various cytoplasmic haplotypes were found within three populations of weed beets, implying wild-to-weed seed flows. Finally, our findings gave new insights into the genetical relationships between the components of the B. vulgaris complex: (1) we found a very strong genetic divergence between wild sea beet and other relatives, which was unexpected given the recent evolutionary history and the full cross-compatibility of all taxa and (2) we definitely confirmed that the classification into cultivated, wild, ruderal and weed forms according to their geographical location, phenotype or their domesticated status is clearly in accordance with genetic clustering despite the very recent domestication process of sugar beet.
机译:现在,人们普遍认为栽培种与其野生近缘种之间的杂交很普遍。在寻常的Beta复杂区中,甜菜种子繁殖区一直是野生的菜花粉供体无意间对甜菜种子载体授粉的场景,产生了一种甜菜形式的甜菜,感染了欧洲国家的甜菜田。迄今为止,仅用很少的遗传标记和少量的材料就寻常型芽孢杆菌复合体内遗传多样性的进化动力学进行了研究。在这项研究中,我们使用一组互补标记解决了这个问题:五个核微卫星基因座,四个线粒体微卫星基因座和一个叶绿体PCR-RFLP标记。我们对1,640个样本进行了采样,这些样本说明了法国西南部的内陆eral甜菜,法国北部的杂草甜菜和野生海用甜菜的实际分布,以及35个当代欧洲二倍体品种的多样性。杂草甜菜的核遗传多样性似乎与野菜甜菜和海用甜菜的核遗传多样性一样高,而栽培品种的狭窄性得到了证实。品种中的这种遗传瓶颈在细胞质基因组中更为重要,因为在所有甜菜品种中仅发现一种单倍型。正如预期的那样,由于杂种甜菜种群中的母本是人工栽培的,因此它们也呈现出独特的细胞质单倍型。尽管如此,在三个杂草甜菜种群中发现了多种胞质单倍型,这意味着野生杂草种子流向。最后,我们的发现为寻常型B. Bul复合体之间的遗传关系提供了新的见解:(1)我们发现野生海用甜菜与其他亲缘种之间存在非常强的遗传差异,鉴于最近的进化历史和充分的遗传,这是出乎意料的(2)我们可以肯定地证实,尽管最近的驯化过程已经按照遗传聚类,但根据其地理位置,表型或它们的驯化状态,已将其分类为耕种,野生,野蛮和杂草形式显然与遗传聚类一致。甜菜。

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