An Extended Intervarietal Microsatellite Linkage Map of Cucumber, Cucumis sativus L.

被引:49
作者
Weng, Yiqun [1 ,2 ]
Johnson, Shanna [2 ]
Staub, Jack E. [1 ]
Huang, Sanwen [3 ]
机构
[1] Univ Wisconsin, USDA ARS, Vegetable Crops Res Unit, Madison, WI 53706 USA
[2] Univ Wisconsin, Dept Hort, Madison, WI 53706 USA
[3] Chinese Acad Agr Sci, Inst Vegetables & Flowers, Beijing 10081, Peoples R China
关键词
SSR; genetic mapping; little leaf; determinate growth habit; MARKER-ASSISTED SELECTION; QTL ANALYSIS; PHENOTYPIC SELECTION; HORTICULTURAL TRAITS; GENETIC DIVERSITY; CONSTRUCTION; RESISTANCE; NARROW; GENOME; FRUIT;
D O I
10.21273/HORTSCI.45.6.882
中图分类号
S6 [园艺];
学科分类号
0902 ;
摘要
A recombinant inbred line (RIL) population derived from two cultivated cucumber (Cucumis sativus var. sativus L., 2n = 2x = 14) lines, Gy7 (synonym G421) and H-19, was previously used to map yield and fruit quality components. However, the map consisted mainly of dominant markers (i.e., random amplified polymorphic DNAs or amplified fragment length polymorphisms) limiting its use in plant improvement and map-based gene cloning. We report here a moderately saturated genetic map derived from this RIL population that incorporates codominant microsatellite [simple sequence repeat (SSR)] markers and two architectural traits, little leaf (ll) and determinate (de), growth habit. Of 821 cucumber genomic SSR primer pairs evaluated for map construction, 140 (17.0%) were polymorphic between the mapping parents. In combination with 42 previously mapped sequence characterized amplified region (SCAR) and SSR makers, these polymorphic markers were used to construct a linkage map with 46 RILs and 176 mapped loci spanning approximate to 400 cM across seven linkage groups (LG). The numbers of loci mapped on LG 1 through 7 were 11, 6, 35, 18, 46, 45, and 15, respectively. The ll locus was flanked by SSR02355 and SSR03940 (4.2 and 3.6 cM from ll, respectively), and de was flanked by CSWCTT14b and SSR13251 (1.4 and 4.2 cM from the de, respectively). The SSR markers linked with the de and ll genes were mapped to Chromosome 6. No recombination suppression was detected among the mapped loci examined. This Gy7 x H-19 RIL-based genetic map shared 94 marker loci with a previously reported Rh-based linkage map derived from a wide cross between C. sativus var. swims line Gy14 and C. sativus var. hardwickii Alef. R. PI 183967. Comparative mapping supported previous findings that genomic differences (likely chromosomal rearrangements) exist between Gy14 and PI 183967.
引用
收藏
页码:882 / 886
页数:5
相关论文
共 30 条
[1]   Towards an expanded and integrated linkage map of cucumber (Cucumis sativus L.) [J].
Bradeen, JM ;
Staub, JE ;
Wye, C ;
Antonise, R ;
Peleman, J .
GENOME, 2001, 44 (01) :111-119
[2]   Marker-assisted selection: an approach for precision plant breeding in the twenty-first century [J].
Collard, Bertrand C. Y. ;
Mackill, David J. .
PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY B-BIOLOGICAL SCIENCES, 2008, 363 (1491) :557-572
[3]  
Dijkhuizen A, 1996, EUPHYTICA, V90, P79
[4]   Population development by phenotypic selection with subsequent marker-assisted selection for line extraction in cucumber (Cucumis sativus L.) [J].
Fan, ZC ;
Robbins, MD ;
Staub, JE .
THEORETICAL AND APPLIED GENETICS, 2006, 112 (05) :843-855
[5]   Genetic mapping and QTL analysis of horticultural traits in cucumber (Cucumis sativus L.) using recombinant inbred lines [J].
Fazio, G ;
Staub, JE ;
Stevens, MR .
THEORETICAL AND APPLIED GENETICS, 2003, 107 (05) :864-874
[6]   Comparative analysis of response to phenotypic and marker-assisted selection for multiple lateral branching in cucumber (Cucumis sativus L.) [J].
Fazio, G ;
Chung, SM ;
Staub, JE .
THEORETICAL AND APPLIED GENETICS, 2003, 107 (05) :875-883
[7]   Fifty-five years of yield improvement for cucumber, melon, and watermelon in the United States [J].
Gusmini, Gabriele ;
Wehner, Todd C. .
HORTTECHNOLOGY, 2008, 18 (01) :9-12
[8]   Effects of genotyping errors, missing values and segregation distortion in molecular marker data on the construction of linkage maps [J].
Hackett, CA ;
Broadfoot, LB .
HEREDITY, 2003, 90 (01) :33-38
[9]   Genetic variation in cucumber (Cucumis sativus L.) as assessed by random amplified polymorphic DNA [J].
Horejsi, T ;
Staub, JE .
GENETIC RESOURCES AND CROP EVOLUTION, 1999, 46 (04) :337-350
[10]   The genome of the cucumber, Cucumis sativus L. [J].
Huang, Sanwen ;
Li, Ruiqiang ;
Zhang, Zhonghua ;
Li, Li ;
Gu, Xingfang ;
Fan, Wei ;
Lucas, William J. ;
Wang, Xiaowu ;
Xie, Bingyan ;
Ni, Peixiang ;
Ren, Yuanyuan ;
Zhu, Hongmei ;
Li, Jun ;
Lin, Kui ;
Jin, Weiwei ;
Fei, Zhangjun ;
Li, Guangcun ;
Staub, Jack ;
Kilian, Andrzej ;
van der Vossen, Edwin A. G. ;
Wu, Yang ;
Guo, Jie ;
He, Jun ;
Jia, Zhiqi ;
Ren, Yi ;
Tian, Geng ;
Lu, Yao ;
Ruan, Jue ;
Qian, Wubin ;
Wang, Mingwei ;
Huang, Quanfei ;
Li, Bo ;
Xuan, Zhaoling ;
Cao, Jianjun ;
Asan ;
Wu, Zhigang ;
Zhang, Juanbin ;
Cai, Qingle ;
Bai, Yinqi ;
Zhao, Bowen ;
Han, Yonghua ;
Li, Ying ;
Li, Xuefeng ;
Wang, Shenhao ;
Shi, Qiuxiang ;
Liu, Shiqiang ;
Cho, Won Kyong ;
Kim, Jae-Yean ;
Xu, Yong ;
Heller-Uszynska, Katarzyna .
NATURE GENETICS, 2009, 41 (12) :1275-U29