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Genetic Diversity of European and Chinese Oilseed Brassica rapa Cultivars from Different Breeding Periods 被引量:2

Genetic Diversity of European and Chinese Oilseed Brassica rapa Cultivars from Different Breeding Periods
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摘要 The Brassica oilseed crops went through two major breeding bottlenecks during the introgression of genes for zero erucic acid and low glucosinolate content, respectively, which may lead to reduced genetic biodiversity of the crop. This study investigates the impact of these bottlenecks on the genetic diversity within and across European and Chinese winter B. rapa cultivars. We compared eight cultivars from Europe and China, representing three different seed qualities from three different breeding periods: (1) high erucic acid, high glucosinolates (++); (2) zero erucic acid, high glucosinolates(0+); (3) zero erucic acid, low glucosonolates (00, canola quality). Diversity was estimated on 32 plants per cultivar, with 16 simple sequence repeat (SSR) markers covering each of the B. rapa linkage groups. The analysis of molecular variance (AMOVA) showed that genetic variations within cultivars, across cultivars and across regions (Europe and China) were significant, with about 60% of the total variation within cultivars. There was a slight, but non-significant loss in genetic diversity within cultivars when comparing the three breeding periods as indicated by effective number of alleles (2.39, 2.23, and 1.99 for breeding periods 1, 2, and 3, respectively), Shannon information index (0.93, 0.90, 0.75), and expected heterozygosity (0.51, 0.49, 0.42). By cluster analysis (UPGMA dendrogram) and principal coordinate analysis, Chinese and European cultivars were clearly divided into two distinct groups. In conclusion, quality improvement did not significantly reduce the genetic diversity of European and Chinese B. rapa cultivars. The Brassica oilseed crops went through two major breeding bottlenecks during the introgression of genes for zero erucic acid and low glucosinolate content, respectively, which may lead to reduced genetic biodiversity of the crop. This study investigates the impact of these bottlenecks on the genetic diversity within and across European and Chinese winter B. rapa cultivars. We compared eight cultivars from Europe and China, representing three different seed qualities from three different breeding periods: (1) high erucic acid, high glucosinolates (++); (2) zero erucic acid, high glucosinolates(0+); (3) zero erucic acid, low glucosonolates (00, canola quality). Diversity was estimated on 32 plants per cultivar, with 16 simple sequence repeat (SSR) markers covering each of the B. rapa linkage groups. The analysis of molecular variance (AMOVA) showed that genetic variations within cultivars, across cultivars and across regions (Europe and China) were significant, with about 60% of the total variation within cultivars. There was a slight, but non-significant loss in genetic diversity within cultivars when comparing the three breeding periods as indicated by effective number of alleles (2.39, 2.23, and 1.99 for breeding periods 1, 2, and 3, respectively), Shannon information index (0.93, 0.90, 0.75), and expected heterozygosity (0.51, 0.49, 0.42). By cluster analysis (UPGMA dendrogram) and principal coordinate analysis, Chinese and European cultivars were clearly divided into two distinct groups. In conclusion, quality improvement did not significantly reduce the genetic diversity of European and Chinese B. rapa cultivars.
出处 《Agricultural Sciences in China》 CAS CSCD 2009年第8期931-938,共8页 中国农业科学(英文版)
基金 supported by the Ministry of Education of P.R.China and the German Academic Exchange Services
关键词 Brassica rapa genetic diversity breeding period simple sequence repeat Brassica rapa, genetic diversity, breeding period, simple sequence repeat
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  • 1M. Hasan,F. Seyis,A. G. Badani,J. Pons-Kühnemann,W. Friedt,W. Lühs,R. J. Snowdon.Analysis of Genetic Diversity in the Brassica napus L. Gene Pool Using SSR Markers[J].Genetic Resources and Crop Evolution.2006(4)
  • 2J. Piquemal,E. Cinquin,F. Couton,C. Rondeau,E. Seignoret,I. doucet,D. Perret,M.-J. Villeger,P. Vincourt,P. Blanchard.Construction of an oilseed rape (Brassica napus L.) genetic map with SSR markers[J].Theoretical and Applied Genetics.2005(8)
  • 3Jianjun Zhao,Xiaowu Wang,Bo Deng,Ping Lou,Jian Wu,Rifei Sun,Zeyong Xu,Jaap Vromans,Maarten Koornneef,Guusje Bonnema.Genetic relationships within Brassica rapa as inferred from AFLP fingerprints[J].Theoretical and Applied Genetics.2005(7)
  • 4Yong-Bi Fu,Gregory W. Peterson,Ken W. Richards,Daryl Somers,Ron M. DePauw,John M. Clarke.Allelic reduction and genetic shift in the Canadian hard red spring wheat germplasm released from 1845 to 2004[J].Theoretical and Applied Genetics.2005(8)
  • 5E. K. Khlestkina,X. Q. Huang,F. J.-B. Quenum,S. Chebotar,M. S. R?der,A. B?rner.Genetic diversity in cultivated plants—loss or stability?[J].Theoretical and Applied Genetics.2004(8)
  • 6V. Roussel,J. Koenig,M. Beckert,F. Balfourier.Molecular diversity in French bread wheat accessions related to temporal trends and breeding programmes[J].Theoretical and Applied Genetics.2004(5)
  • 7G. Q. Zhang,G. X. Tang,W. J. Song,W. J. Zhou.Resynthesizing Brassica napus from interspecific hybridization between Brassica rapa and B. oleracea through ovary culture[J].Euphytica.2004(3)
  • 8X. Huang,A. B?rner,M. R?der,M. Ganal.Assessing genetic diversity of wheat (Triticum aestivum L.) germplasm using microsatellite markers[J].Theoretical and Applied Genetics.2002(5)
  • 9K. Suwabe,H. Iketani,T. Nunome,T. Kage,M. Hirai.Isolation and characterization of microsatellites in Brassica rapa L.[J].Theoretical and Applied Genetics (-).2002(6-7)
  • 10P.K. Gupta,R.K. Varshney.The development and use of microsatellite markers for genetic analysis and plant breeding with emphasis on bread wheat[J].Euphytica.2000(3)

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