Genetic analysis and mapping of gene fzp(t) controlling spikelet differentiation in rice

被引:0
作者
段远霖
李维明
吴为人
潘润森
周元昌
祁建民
林荔辉
陈志伟
毛大梅
刘华清
张丹凤
薛勇彪
机构
[1] Fuzhou 350000
[2] Fujian Province
[3] Chinese Academy of Sciences
[4] Fuzhou 350002
[5] College of Crops
[6] Fujian Agricultural & Forestry University
[7] Institute of Genetics & Developmental Biology
[8] Beijing 100080
[9] China
[10] Academy of Agricultural Science
关键词
rice (O. sativa L); spikelet differentiation; fzp; genetics; gene mapping;
D O I
暂无
中图分类号
S511 [稻];
学科分类号
0901 ;
摘要
A mutant of spikelet differentiation in rice called frizzle panicle (fzp) was discovered in the progeny of a cross between Oryza sativa ssp. indica cv. V20B and cv. Hua1B. The mutant ex-hibits normal plant morphology but has apparently fewer tillers. The most striking change in fzp is that its spikelet differentiation is completely blocked, with unlimited subsequent rachis branches generated from the positions where spikelets normally develop in wild-type plants. Genetic analy-sis suggests that fzp is controlled by a single recessive gene, which is temporarily named fzp (t). Based on its mutant phenotype, fzp (t) represents a key gene controlling spikelet differentiation. Some F2 mutant plants derived from various genetic background appeared as the middle type? suggesting that the action of fzp (t) is influenced by the presence of redundant, modifier or interac-tive genes. By using simple sequence repeat (SSR) markers and bulked segregant analysis (BSA) method, fzp (t) gene was mapped in the terminal region of the long arm of chromosome 7, with RM172 and RM248 on one side, 3.2 cM and 6.4 cM from fzp (t), and RM18 and RM234 on the other side, 23.1 cM and 26.3 cM from fzp(t), respectively. These results will facilitate the positional cloning and function studies of the gene.
引用
收藏
页码:328 / 334
页数:7
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