您好,欢迎访问江苏省农业科学院 机构知识库!

Diversity, population structure, and evolution of local peach cultivars in China identified by simple sequence repeats

文献类型: 外文期刊

作者: Shen, Z. J. 1 ; Ma, R. J. 2 ; Cai, Z. X. 2 ; Yu, M. L. 2 ; Zhang, Z. 1 ;

作者机构: 1.Nanjing Agr Univ, Coll Hort, Nanjing, Jiangsu, Peoples R China

2.Jiangsu Acad Agr Sci, Inst Hort, Nanjing, Jiangsu, Peoples R China

关键词: Peach;Simple sequence repeat (SSR);Local cultivar;Genetic relationship;Population structure;Evolution

期刊名称:GENETICS AND MOLECULAR RESEARCH ( 影响因子:0.764; 五年影响因子:0.912 )

ISSN: 1676-5680

年卷期: 2015 年 14 卷 1 期

页码:

收录情况: SCI

摘要: The fruit peach originated in China and has a history of domestication of more than 4000 years. Numerous local cultivars were selected during the long course of cultivation, and a great morphological diversity exists. To study the diversity and genetic background of local peach cultivars in China, a set of 158 accessions from different ecological regions, together with 27 modern varieties and 10 wild accessions, were evaluated using 49 simple sequence repeats (SSRs) covering the peach genome. Broad diversity was also observed in local cultivars at the SSR level. A total of 648 alleles were amplified with an average of 13.22 observed alleles per locus. The number of genotypes detected ranged from 9 (UDP96015) to 58 (BPPCT008) with an average of 27.00 genotypes per marker. Eight subpopulations divided by STRUCTURE basically coincided with the dendrogram of genetic relationships and could be explained by the traditional groups. The 8 subpopulations were juicy honey peach, southwestern peach I, wild peach, Buddha peach + southwestern peach II, northern peach, southern crisp peach, ornamental peach, and Prunus davidiana + P. kansuensis. Most modern varieties carried the genetic backgrounds of juicy honey peach and southwestern peach I, while others carried diverse genetic backgrounds, indicating that local cultivars were partly used in modern breeding programs. Based on the traditional evolution pathway, a modified pathway for the development of local peach cultivars in China was proposed using the genetic background of subpopulations that were identified by SSRs. Current status and prospects of utilization of Chinese local peach cultivars were also discussed according to the SSR information.

  • 相关文献

[1]叶面喷施不同浓度ABA对美香桃果实品质的影晌. 许建兰,马瑞娟,张斌斌,倪林箭. 2012

[2]Detection of Fusarium head blight resistance QTL in a wheat population using bulked segregant analysis. Shen, X,Zhou, M,Lu, W,Ohm, H. 2003

[3]Structure, expression profile, and evolution of the sucrose synthase gene family in peach (Prunus persica). Zhang, Chunhua,Yu, Mingliang,Ma, Ruijuan,Shen, Zhijun,Zhang, Binbin,Korir, Nicholas Kibet.

[4]KT/HAK/KUP potassium transporter genes differentially expressed during fruit development, ripening, and postharvest shelf-life of 'Xiahui6' peaches. Song, Zhizhong,Guo, Shaolei,Zhang, Chunhua,Zhang, Binbin,Ma, Ruijuan,Yu, Mingliang,Song, Zhizhong,Guo, Shaolei,Zhang, Chunhua,Zhang, Binbin,Ma, Ruijuan,Yu, Mingliang,Korir, Nicholas Kibet.

[5]Development of Ty1-copia retrotransposon-based SSAP molecular markers for the study of genetic diversity in peach. Jiao, Yun,Ma, Rui-juan,Shen, Zhi-jun,Yu, Ming-liang.

[6]Genome-Wide Identification and Analysis of the Type-B Authentic Response Regulator Gene Family in Peach (Prunus persica). Zeng, Jingjue,Zhu, Xudong,Haider, Muhammad S.,Zhang, Cheng,Wang, Chen,Wang, Xicheng.

[7]Physiological and transcriptional responses in the iron-sulphur cluster assembly pathway under abiotic stress in peach (Prunus persica L.) seedlings. Song, Zhizhong,Yang, Yong,Xu, Jianlan,Ma, Ruijuan,Yu, Mingliang.

[8]Genome-wide identification and expression analysis of the lipoxygenase gene family during peach fruit ripening under different postharvest treatments. Guo, Shaolei,Song, Zhizhong,Ma, Ruijuan,Yang, Yong,Yu, Mingliang,Guo, Shaolei,Yang, Yong,Guo, Shaolei,Song, Zhizhong,Ma, Ruijuan,Yang, Yong,Yu, Mingliang.

[9]Cloning and expression of genes related to the sucrose-metabolizing enzymes and carbohydrate changes in peach. Zhang, Chunhua,Shen, Zhijun,Ma, Ruijuan,Yu, Mingliang,Zhang, Yanping,Han, Jian,Korir, Nicholas Kibet.

[10]Isolation, cloning, and expression of five genes related to nitrogen metabolism in peach (Prunus persica L. Batsch). Zhang, C. H.,Zhang, B. B.,Yu, M. L.,Ma, R. J.,Song, Z. Z.,Korir, N. K..

[11]Genome-wide analysis of the homeodomain-leucine zipper (HD-ZIP) gene family in peach (Prunus persica). Zhang, C. H.,Ma, R. J.,Shen, Z. J.,Yu, M. L.,Sun, X.,Korir, N. K.. 2014

[12]Genome-wide identification and expression analysis of beta-galactosidase family members during fruit softening of peach [Prunus persica (L.) Batsch]. Guo, Shaolei,Song, Juan,Zhang, Binbin,Jiang, Hang,Ma, Ruijuan,Yu, Mingliang,Guo, Shaolei,Jiang, Hang,Guo, Shaolei,Song, Juan,Zhang, Binbin,Jiang, Hang,Ma, Ruijuan,Yu, Mingliang. 2018

[13]Effects of exogenous salicylic acid on physiological traits and CBF gene expression in peach floral organs under freezing stress. Zhang, Binbin,Ma, Ruijuan,Guo, Lei,Song, Zhizhong,Yu, Mingliang. 2017

[14]Genome-wide analysis of the AP2/ERF superfamily in peach (Prunus persica). Zhang, C. H.,Ma, R. J.,Guo, L.,Yu, M. L.,Shangguan, L. F.,Sun, X.,Tao, R.,Korir, N. K.. 2012

[15]Molecular markers linked to specific characteristics of Prunus persica (L.) batsch. Yu Mingliang,Ma Ruijuan,Shen Zhijun,Zhang Zhen. 2007

[16]Isolation and expression analysis of four HD-ZIP III family genes targeted by microRNA166 in peach. Zhang, C. H.,Zhang, B. B.,Ma, R. J.,Yu, M. L.,Guo, S. L.,Guo, L.. 2015

[17]Potassium contributes to zinc stress tolerance in peach (Prunus persica) seedlings by enhancing photosynthesis and the antioxidant defense system. Song, Z. Z.,Guo, S. L.,Yang, Y.,Ma, R. J.,Yu, M. L.,Song, Z. Z.,Guo, S. L.,Yang, Y.,Ma, R. J.,Yu, M. L.,Duan, C. L.,Feng, Y. F.. 2015

[18]An improved strategy based on RAPD markers efficiently identified 95 peach cultivars. Yu, M. L.,Ma, R. J.,Shen, Z. J.,Wang, W. Y.,Fang, G.,Wang, W. Y.,Fang, G.. 2012

[19]Genetic Diversity and Structure of Lolium Species Surveyed on Nuclear Simple Sequence Repeat and Cytoplasmic Markers. Cai, Hongwei,Guan, Xuanli,Cai, Hongwei,Guan, Xuanli,Cai, Hongwei,Yuyama, Nana,Cai, Hongwei,Stewart, Alan,Ding, Chenglong,Xu, Nengxiang,Kiyoshi, Takako. 2017

[20]Development of novel InDel markers and genetic diversity in Chenopodium quinoa through whole-genome re-sequencing. Zhang, Tifu,Lv, Yuanda,Zhou, Ling,Lu, Haiyan,Liang, Shuaiqiang,Bao, Huabin,Zhao, Han,Gu, Minfeng,Liu, Yuhe. 2017

作者其他论文 更多>>