籼粳亚种间杂种育性相关基因座全基因组分析

被引:6
作者
余传元 [1 ]
赵志刚 [1 ]
陈平 [1 ]
江玲 [1 ]
翟虎渠 [2 ]
万建民 [1 ]
机构
[1] 南京农业大学作物遗传和种质创新国家重点实验室
[2] 中国农业科学院作物科学研究所
基金
国家高技术研究发展计划(863计划);
关键词
水稻; 籼粳亚种间杂种; 育性; 染色体片段置换系;
D O I
暂无
中图分类号
S511.2 [按米的粘性分];
学科分类号
摘要
利用一套以粳稻品种Asominori为遗传背景、籼稻品种IR24为染色体片段供体的覆盖全基因组的CSSL群体,研究了籼粳亚种间组合Asominori/IR24和02428/IR24杂种小穗低育性的遗传基础。结果发现,Asominori/IR24组合的育性主要受第5染色体上的2个育性位点S-24(t)和S-31(t)及第6染色体上的S-5位点控制,其中S-31(t)为本研究发现的新育性位点,粳稻品种02428带有该位点的亲和性基因。02428/IR24组合的低育性主要受S-24(t)花粉育性位点的影响。育性基因的表达受遗传背景的影响,在粳稻遗传背景中,S-24(t)位点处在Si/Sj杂合基因型时可使杂种小穗育性下降70%左右,而S-31(t)和S-5为杂种半不育位点。在籼粳全基因组杂合遗传背景中,当S-5i/S-5j基因型置换成S-5i/S-5i基因型后,亚种间杂种小穗育性可平均提高22.5%,接近正常育性水平。在S-5i/S-5j遗传背景中,S-24(t)和S-31(t)的Si/Si纯合基因型不能改善亚种间杂种的小穗育性。说明S-5位点是影响亚种间小穗育性的关键位点,在亚种间杂交稻育种中,必须首先克服S-5位点造成的育性障碍。提出了等位基因置换法克服水稻籼粳亚种间杂种小穗低育性的技术策略。
引用
收藏
页码:547 / 553
页数:7
相关论文
共 11 条
[1]   Stability of QTLs for rice grain dimension and endosperm chalkiness characteristics across eight environments [J].
Wan, XY ;
Wan, JM ;
Weng, JF ;
Jiang, L ;
Bi, JC ;
Wang, CM ;
Zhai, HQ .
THEORETICAL AND APPLIED GENETICS, 2005, 110 (07) :1334-1346
[2]  
Study on heterosis of inter-subspecies between indica and japonica rice ( Oryza sativa L.) using chromosome segment substitution lines.[J].Chuanyuan Yu;Jianmin Wan;Huqu Zhai;Chunming Wang;Ling Jiang;Yinhui Xiao;Yuqiang Liu.Chinese Science Bulletin.2005, 2
[3]  
Mapping and genome organization of microsatellite sequences in rice (<Emphasis Type="Italic">Oryza sativa </Emphasis>L.).[J].S. Temnykh;William D. Park;Nicola Ayres;Sam Cartinhour;N. Hauck;L. Lipovich;Y. G. Cho;T. Ishii;S. R. McCouch.TAG Theoretical and Applied Genetics.2000, 5
[4]   Overview of QTL mapping software and introduction to map manager QT [J].
Manly, KF ;
Olson, JM .
MAMMALIAN GENOME, 1999, 10 (04) :327-334
[5]   The high level of wide compatibility of variety 'Dular' has a complex genetic basis [J].
Wang, J ;
Liu, KD ;
Xu, CG ;
Li, XH ;
Zhang, QF .
THEORETICAL AND APPLIED GENETICS, 1998, 97 (03) :407-412
[6]   Fine mapping of quantitative trait loci Hd-1, Hd-2 and Hd-3, controlling heading date of rice, as single Mendelian factors [J].
Yamamoto, T ;
Kuboki, Y ;
Lin, SY ;
Sasaki, T ;
Yano, M .
THEORETICAL AND APPLIED GENETICS, 1998, 97 (1-2) :37-44
[7]   A genome-wide analysis of wide compatibility in rice and the precise location of the S-5 locus in the molecular map [J].
Liu, KD ;
Wang, J ;
Li, HB ;
Xu, CG ;
Liu, AM ;
Li, XH ;
Zhang, QF .
THEORETICAL AND APPLIED GENETICS, 1997, 95 (5-6) :809-814
[8]   Development of a microsatellite framework map providing genome-wide coverage in rice (Oryza sativa L.) [J].
Chen, X ;
Temnykh, S ;
Xu, Y ;
Cho, YG ;
McCouch, SR .
THEORETICAL AND APPLIED GENETICS, 1997, 95 (04) :553-567
[9]   Identification of two types of differentiation in cultivated rice (Oryza sativa L) detected by polymorphism of isozymes and hybrid sterility [J].
Wan, JM ;
Ikehashi, H .
EUPHYTICA, 1997, 94 (02) :151-161
[10]   Two new loci for hybrid sterility in cultivated rice (Oryza sativa L) [J].
Wan, J ;
Yamaguchi, Y ;
Kato, H ;
Ikehashi, H .
THEORETICAL AND APPLIED GENETICS, 1996, 92 (02) :183-190