Ayahiko S.[J].Takeshi I, Kaworu E, Takeshi E, Hiromi K, Saeko K, Masahiro Y(2008). Deletion in a gene associated with grain size increased yields during rice domestication. Nature Genet 40(8,1023,:-
[11]
Bai XF, Luo LJ, Yan WH, Kovi MR, Zhan W, Xing YZ(2010). Genetic dissection of rice Grain shape using a recombinant inbred line population derived from two contrasting parents and fine mapping a pleiotropic quantitative trait locus qGL7. BMC Genet 11:16
[12]
Chang TT, Li CC(1980). Genetics and breeding. In Luh, eds Rice production and utilization . Westport, Connecticut AVI press 87-127
[13]
Fan CC.[J].Xing YZ, Mao HL,Lu TT,Han B,Xu CG,Li XH,Zhang QF(2006). GS3, a major QTL for grain length and weight and minor QTL for grain width and thickness in rice, encodes a putative transmembrane protein. Theor Appl Genet 112(6,1164,:-
[14]
Ge XJ, Xing YZ, Xu CG, He YQ(2005). QTL analysis of cooked rice grain elongation, expansion, and water absorption using a recombinant inbred population. Plant Breeding 124, 121-126
[15]
Guo LB, Ma LL, Jiang H, Zeng DL, Hu J, Wu LW, Gao ZY, Zhang GH, Qian Q(2009). Genetic analysis and fine mapping of two genes for grain shape and weight in rice. Journal of Integrative Plant Biology 51(1), 45-51
[16]
Hittalmani S, Huang N, Courtois B, Venuprasad R, Shashidhar HE, Zhuang JY, Zheng KL, Liu GF, Wang GC, Sidhu JS, Srivantaneeyakul SS, Singh VP, Bagali PG, Prasanna HC, Mclaren G, Khush GS(2003). Identification of QTL for growth- and grain yield-related traits in rice across nine locations of Asia. Theor Appl Genet 107, 679-690
[17]
Huang N, Parco A, Mew T, Magpantay G, McCouch S, Guiderdoni E, Xu JC, Subudhi P, Angeles ER, Khush GS(1997). RFLP mapping of isozymes, RAPD and QTLs for grain shape, brown plantopper resistance in a doubled haploid rice population. Molecular Breeding 3, 105-113
[18]
Jiang GH.[J].Hong XY, Xu C G, Li XH, He YQ(2005). Identification of quantitative trait loci for grain appearance and milling quality using a doubled-haploid rice population. Journal of Integrative Plant Biology 47(11,1391,:-
[19]
Jiang GH, Xu CG, Li XH, He YQ(2004). Characterization of the genetic basis for yield and its component traits of rice revealed by doubled haploid population. Acta Genetica Sinica 31(1), 63-72
[20]
Li J.[J].Thomson M, McCouch SR(2004). Fine mapping of a grain-weight quantitative trait locus in the pericentromeric region of rice chromosme3. Genetics,2187,168:-
[21]
Li JM, Xiao JH, Grandillo S, Jiang LY, Wan YZ, Deng QY, Yuan LP, McCouch SR(2004). QTL detection for rice grain quality traits using an interspecific backcross population derived from cultivated Asian(O. sativa L.) and African (O. glaberrima S.) rice. Genome 47, 697-704
[22]
Li ZF, Wan JM, Xia JF, Zhai HQ(2003). Mapping quantitative trait loci underlying appearance quality of rice grains(Oryza sativa L.). Acta Genetica Sinica 30(3), 251-259
[23]
Takite T(1989). Breeding for grain shape in rice. Agri Sci 44(6), 39-42
[24]
Tan YF, Xing YZ, Li JX, Yu SB, Xu CG, Zhang QF(2000). Genetic bases of bases of appearance quality of rice grains in Shanyou 63,an elite rice hybrid. Theor Appl Genet 101, 823-829
[25]
Thomson MJ, Tai TH, McClung AM, Lai XH, Hinga ME, Lobos KB, Xu Y, Martinez CP, McCouch SR(2003).Mapping quantitative trait loci for yield, yield components and morphological traits in an advanced backcross population between Oryza rufipogon and the Oryza sativa cultivar Jefferson. Theor Appl Genet 107,479-493
[26]
Wan XY.[J].Wan JM, Jiang L, Wang JK, Zhai HQ, Weng JF, Wang HL, Lei CL, Wang JL, Zhang X, Cheng ZJ, Guo XP(2006).QTL analysis for rice grain length and fine mapping of an identified QTL with stable and major effects. Theor Appl Genet,1258,112:-
[27]
Weng JF.[J].Gu SH, Wan XY, Gao H, Guo T, Su N, Lei CL, Zhang X,Cheng ZJ, Guo XP, Wang JL,Jiang L, Zhai HQ,Wan JM(2008). Isolation and initial characterization of GW5, a major QTL associated with rice grain width and weight. Cell Res,1199,18:-
[28]
Xiao JH, Li JM, Yuan LP, Tanksley SD(1995). Dominance is the major genetic basis of heterosis in rice as revealed by QTL analysis using molecular markers. Genetics 140, 745-754
Mao HL.[J].Sun SY, Yao JL, Wang CR, Yu SB, Xu CG, Li XH(2010). Linking differential domain functions of the GS3 protein to natural variation of grain size in rice. Proc Natl Acad Sci 107(45,1957,:9-
[52]
Moncada P, Martinez CP, Borrero J, Chatel M, Gauch H, Guimaraes EP, Tohme J, McCouch SR(2001). Quantitative trait loci for yield and yield components in an Oryza sativa x Oryza rufipogon BC2F2 population evaluated in an upland environment. Theor Appl Genet 102, 41-52
[53]
Song XJ, Huang W, Shi M, Zhu MZ, Lin HX(2007) . A QTL for rice grain width and weight encodes a previously unknown RING-type E3 ubiquitin ligase. Nature Genet 39(5), 623-630
[54]
Xing YZ, Tan YF, Hua JP, Sun XL, Xu CG, Zhang QF(2002). Characterization of the main effects, epistatic effects and their environmental interactions of QTLs on the genetic basis of yield traits in rice. Theor Appl Genet 105,248-257
[55]
Xing YZ, Zhang QF(2010). Genetic and Molecular Bases of Rice Yield. Annu Rev Plant Biol 61, 421-442
[56]
Yoon DB.[J].Kang KH, Kim HJ, Ju HG, Kwon SJ, Suh JP, Jeong OY, Ahn SN(2006). Mapping quantitative trait loci for yield components and morphological traits in an advanced backcross population between O. grandiglumis and the O. sativa japonica cultivar Hwaseongbyeo. Theor Appl Genet,1052,112:-
[57]
Yu SB.[J].Li JX, Xu CG, Tan YJ, Gao YJ, Li XH, Zhang QF, Saghai Maroof M A(1997). Importance of epistasis as the genetic basis of heterosis in an elite rice hybrid. Proc Natl Acad Sci,9226,94:-
[58]
Zhuang JY.[J].Fan YY, Rao ZM, Wu JL, Xia YW, Zheng KL(2002). Analysis on additive effects and additive-by-additive epistatic effects of QTLs for yield traits in a recombinant inbred line population of rice. Theor Appl Genet,1137,105:-
[59]
Zou GH, Mei HW, Liu HY, Liu GL, Hu SP, Yu XQ, Li MS Wu JH, Luo LJ(2005). Grain yield responses to moisture regimes in a rice population: association among traits and genetic markers. Theor Appl Genet 112,106-113