Inheritance of beta-carotene-associated flesh color in cucumber (Cucumis sativus L.) fruit

被引:27
|
作者
Cuevas, H. E.
Song, H. [2 ]
Staub, J. E. [1 ]
Simon, P. W. [1 ]
机构
[1] Univ Wisconsin, USDA, ARS,Dept Hort, Vegetable Crops Unit,Plant Breeding & Plant Genet, Madison, WI 53706 USA
[2] Nanjing Agr Univ, Nanjing 210095, Peoples R China
关键词
Carotenoid; Beta-carotene; Exotic germplasm; Vitamin A; Nutraceutical; HORTICULTURAL TRAITS; GENOMIC REGIONS; LINKAGE MAPS; QTL ANALYSIS; DISEASE; GENES;
D O I
10.1007/s10681-009-0017-2
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
The nutritional value of cucumber (Cucumis sativus L.) can be improved by the introgression of beta-carotene (i.e., provitamin A and/or orange flesh) genes from "Xishuangbanna gourd" (XIS; Cucumis sativus var. xishuangbannanesis Qi et Yuan) into US pickling cucumber. However, the genetics of beta-carotene content has not been clearly defined in this US market type. Thus, three previous populations derived from a US pickling cucumber ('Addis') x XIS mating were evaluated for beta-carotene content, from which the high beta-carotene inbred line (S-4), 'EOM 402-10', was developed. A cross was then made between the US pickling cucumber inbred line 'Gy7' [gynoecious, no beta-carotene, white flesh; P-1] and 'EOM 402-10' [monoecious, possessing beta-carotene, orange flesh; P-2] to determine the inheritance of beta-carotene in fruit mesocarp and endocarp tissue. Parents and derived cross-progenies (F-1, F-2, BC1P1, and BC1P2) were evaluated for beta-carotene content in a greenhouse in Madison, Wisconsin. While F-1 and BC1P1 progeny produced mature fruits possessing white, light-green, and green (0.01-0.02 mu g g(-1) beta-carotene) mesocarp, the F-2 and BC1P2 progeny mesocarp segregated in various hues of white, green, yellow (0.01-0.34 mu g g(-1) beta-carotene), and orange (1.90-2.72 mu g g(-1) beta-carotene). Mesocarp and endocarp F-2 segregation adequately fit a 15:1 [low-beta-carotene (0.01-0.34 mu g g(-1)): high-beta-carotene (1.90-2.72 mu g g(-1))] and 3:1 (low-beta-carotene: high-beta-carotene) ratio, respectively. Likewise, segregation of carotene concentration in mesocarp and endocarp tissues in BC1P2 progeny adequately fit a 3:1 (low-beta-carotene: high-beta-carotene) and 1:1 (low-beta-carotene: high-beta-carotene) ratio, respectively. Progeny segregations indicate that two recessive genes control the beta-carotene content in the mesocarp, while one recessive gene controls beta-carotene content in the endocarp. Single marker analysis of F-2 progeny using the carotenoid biosynthesis gene Phytoene synthase determined that there was no association between this gene and the observed beta-carotene variation in either fruit mesocarp or endocarp.
引用
收藏
页码:301 / 311
页数:11
相关论文
共 50 条
  • [1] Inheritance of beta-carotene-associated flesh color in cucumber (Cucumis sativus L.) fruit
    H. E. Cuevas
    H. Song
    J. E. Staub
    P. W. Simon
    Euphytica, 2010, 171
  • [2] Inheritance of beta-carotene-associated mesocarp color and fruit maturity of melon (Cucumis melo L.)
    Cuevas, H. E.
    Staub, J. E.
    Simon, P. W.
    EUPHYTICA, 2010, 173 (01) : 129 - 140
  • [3] Inheritance of beta-carotene-associated mesocarp color and fruit maturity of melon (Cucumis melo L.)
    H. E. Cuevas
    J. E. Staub
    P. W. Simon
    Euphytica, 2010, 173 : 129 - 140
  • [4] A consensus linkage map identifies genomic regions controlling fruit maturity and beta-carotene-associated flesh color in melon (Cucumis melo L.)
    Cuevas, H. E.
    Staub, J. E.
    Simon, P. W.
    Zalapa, J. E.
    THEORETICAL AND APPLIED GENETICS, 2009, 119 (04) : 741 - 756
  • [5] Inheritance and mapping of the ore gene controlling the quantity of β-carotene in cucumber (Cucumis sativus L.) endocarp
    Bo, Kailiang
    Song, Hui
    Shen, Jia
    Qian, Chuntao
    Staub, J. E.
    Simon, P. W.
    Lou, Qunfeng
    Chen, Jinfeng
    MOLECULAR BREEDING, 2012, 30 (01) : 335 - 344
  • [6] Inheritance and mapping of the ore gene controlling the quantity of β-carotene in cucumber (Cucumis sativus L.) endocarp
    Kailiang Bo
    Hui Song
    Jia Shen
    Chuntao Qian
    J. E. Staub
    P. W. Simon
    Qunfeng Lou
    Jinfeng Chen
    Molecular Breeding, 2012, 30 : 335 - 344
  • [7] Identification and functional characterization of APRR2 controlling green immature fruit color in cucumber (Cucumis sativus L.)
    Jianqing Jiao
    Hanqiang Liu
    Jia Liu
    Mingming Cui
    Jing Xu
    Huanwen Meng
    Yuhong Li
    Shuxia Chen
    Zhihui Cheng
    Plant Growth Regulation, 2017, 83 : 233 - 243
  • [8] Developmentally dependent responses of detached cucumber (Cucumis sativus L.) fruit to exogenous ethylene
    Hurr, Brandon M.
    Huber, Donald J.
    Vallejos, C. Eduardo
    Talcott, Stephen T.
    POSTHARVEST BIOLOGY AND TECHNOLOGY, 2009, 52 (02) : 207 - 215
  • [9] An Extended Intervarietal Microsatellite Linkage Map of Cucumber, Cucumis sativus L.
    Weng, Yiqun
    Johnson, Shanna
    Staub, Jack E.
    Huang, Sanwen
    HORTSCIENCE, 2010, 45 (06) : 882 - 886
  • [10] The Formation of Hollow Trait in Cucumber (Cucumis sativus L.) Fruit Is Controlled by CsALMT2
    Zhou, Geng
    Chen, Chen
    Liu, Xiaohong
    Yang, Kankan
    Wang, Chong
    Lu, Xiangyang
    Tian, Yun
    Chen, Huiming
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2022, 23 (11)