Functional molecular markers (EST-SSR) in the full-sib reciprocal recurrent selection program of maize (Zea mays L.)

被引:5
|
作者
Galvao, K. S. C. [1 ]
Ramos, H. C. C. [1 ]
Santos, P. H. A. D. [1 ]
Entringer, G. C. [1 ]
Vettorazzi, J. C. F. [1 ]
Pereira, M. G. [1 ]
机构
[1] Univ Estadual Norte Fluminence, Ctr Ciencias & Tecnol Agr, Lab Genet & Melhoramento Vegetal, Campos Dos Goytacazes, RJ, Brazil
关键词
Zea mays; Genetic diversity; EST-SSR markers; Reciprocal recurrent selection; INBRED LINES; GENETIC DIVERSITY; TROPICAL MAIZE; HETEROGENIC PATTERNS; SOFTWARE PACKAGE; POPULATIONS; PERFORMANCE; HETEROSIS; MICROSATELLITES; CIMMYT;
D O I
10.4238/2015.July.3.10
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
This study aimed to improve grain yield in the full-sib reciprocal recurrent selection program of maize from the North Fluminense State University. In the current phase of the program, the goal is to maintain, or even increase, the genetic variability within and among populations, in order to increase heterosis of the 13th cycle of reciprocal recurrent selection. Microsatellite expressed sequence tags (EST-SSRs) were used as a tool to assist the maximization step of genetic variability, targeting the functional genome. Eighty S1 progenies of the 13th recurrent selection cycle, 40 from each population (CIMMYT and Piranao), were analyzed using 20 EST-SSR loci. Genetic diversity, observed heterozygosity, information content of polymorphism, and inbreeding coefficient were estimated. Subsequently, analysis of genetic dissimilarity, molecular variance, and a graphical dispersion of genotypes were conducted. The number of alleles in the CIMMYT population ranged from 1 to 6, while in the Piranao population the range was from 2 to 8, with a mean of 3.65 and 4.35, respectively. As evidenced by the number of alleles, the Shannon index showed greater diversity for the Piranao population (1.04) in relation to the CIMMYT population (0.89). The genic SSR markers were effective in clustering genotypes into their respective populations before selection and an increase in the variation between populations after selection was observed. The results indicate that the study populations have expressive genetic diversity, which corresponds to the functional genome, indicating that this strategy may contribute to genetic gain, especially in association with the grain yield of future hybrids.
引用
收藏
页码:7344 / 7355
页数:12
相关论文
共 50 条
  • [31] The efficiency of between and within full-sib family selection in a recurrent selection programme in sugar beet (Beta vulgaris L.)
    B. Zhao
    I.J. Mackay
    P.D.S. Caligari
    R. Mead
    Euphytica, 1997, 95 : 355 - 359
  • [32] Bulk Segregant Analysis (BSA) for the improvement of Drought Resistance in Maize (Zea mays L.) Inbred Lines as revealed by SSR Molecular Markers
    Ullah, Farooqi Muhammad Qudrat
    Jun, Ma Shi
    Kyong, Lee Ju
    RESEARCH JOURNAL OF BIOTECHNOLOGY, 2018, 13 (02): : 34 - 51
  • [33] An evaluation of the utility of SSR loci as molecular markers in maize (Zea mays L): comparisons with data from RFLPS and pedigree
    Smith, JSC
    Chin, ECL
    Shu, H
    Smith, OS
    Wall, SJ
    Senior, ML
    Mitchell, SE
    Kresovich, S
    Ziegle, J
    THEORETICAL AND APPLIED GENETICS, 1997, 95 (1-2) : 163 - 173
  • [34] Comparative analysis of genetic diversity among the maize inbred lines (Zea mays L.) obtained by RAPD and SSR markers
    de Souza, Silvia Graciele Huelse
    Carpentieri-Pipolo, Valeria
    Ruas, Claudete de Fatima
    Carvalho, Valdemar de Paula
    Ruas, Paulo Mauricio
    Gerage, Antonio Carlos
    BRAZILIAN ARCHIVES OF BIOLOGY AND TECHNOLOGY, 2008, 51 (01) : 183 - 192
  • [35] Genetic diversity based on SSR markers in maize (Zea mays L.) landraces from Wuling mountain region in China
    Qi-Lun, Yao
    Ping, Fang
    Ke-Cheng, Kang
    Guang-Tang, Pan
    JOURNAL OF GENETICS, 2008, 87 (03) : 287 - 291
  • [36] Genetic diversity based on SSR markers in maize (Zea mays L.) landraces from Wuling mountain region in China
    Yao Qi-Lun
    Fang Ping
    Kang Ke-Cheng
    Pan Guang-Tang
    Journal of Genetics, 2008, 87 : 287 - 291
  • [37] Testcross Response to Four Cycles of Half-sib and S2 Recurrent Selection in the BS13 Maize (Zea mays L.) Population
    Edwards, Jode
    CROP SCIENCE, 2010, 50 (05) : 1840 - 1847
  • [38] Morpho-anatomical characterization of root in recurrent selection cycles for flood tolerance of maize (Zea mays L.)
    de Souza, T. C.
    de Castro, E. M.
    Pereira, F. J.
    Parentoni, S. N.
    Magalhaes, P. C.
    PLANT SOIL AND ENVIRONMENT, 2009, 55 (11) : 504 - 510
  • [39] Genetic variance and covariance components related to intra- and interpopulation recurrent selection in maize (Zea mays L.)
    Arias, CAA
    de Souza, CL
    GENETICS AND MOLECULAR BIOLOGY, 1998, 21 (04) : 537 - 544
  • [40] Maize (Zea mays L.) cyclical populations response over diverse environments - developed via recurrent selection
    Sajjad, Mohammad
    Khan, Naqib Ullah
    Gul, Samrin
    Khan, Shahid Ullah
    Tahir, Iqra
    Bibi, Zarina
    Ali, Sardar
    Ali, Naushad
    Khan, Sher Aslam
    Khan, Shah Masaud
    Hussain, Ijaz
    MAYDICA, 2020, 65 (01):