Quantitative trait loci for panicle size, heading date and plant height co-segregating in trait-performance derived near-isogenic lines of rice (Oryza sativa)

被引:87
作者
Zhang, Yushan
Luo, Lijun
Xu, Caiguo
Zhang, Qifa
Xing, Yongzhong [1 ]
机构
[1] Huazhong Agr Univ, Natl Key Lab Crop Genet Improvement, Wuhan 430070, Peoples R China
[2] Huazhong Agr Univ, Natl Ctr Plant Gene Res Wuhan, Wuhan 430070, Peoples R China
[3] Shanghai Agrobiol Gene Ctr, Shanghai 201106, Peoples R China
关键词
D O I
10.1007/s00122-006-0305-3
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Near-isogenic lines (NILs) are ideal materials for precise estimation of quantitative trait loci (QTL) effects and map-based gene isolation. With the completion of the rice genome sequence, QTL isolation based on NILs is becoming a routine. In this study, a trait-performance derived NIL strategy was adopted to develop NILs. Two plants were identified within one inbred line of recombinant inbred lines (RILs, F-7 generation), exhibiting a significant difference in panicle size. By marker screening of the whole genome the genetic background of the two plants was estimated to be 98.7% identical. These two plants were selected as parents to produce a near-isogenic F-2 (NIL-F-2) population, consisting of 125 individuals, in which spikelets per panicle (SPP), grains per panicle (GPP), heading date (HD) and plant height (PH) were recorded. These four traits expressed discontinuous or bimodal distribution in the NIL-F-2 population and followed the expected segregation ratios for a single Mendelian factor by progeny tests. A partial dominant QTL for the four traits was mapped to the same interval flanked by RM310 and RM126 on chromosome 8. The QTL region explained 83.0, 80.2, 94.9 and 93.8% of trait variation of SPP, GPP, HD and PH in the progenies, respectively. Progeny tests also confirmed co-segregation of QTL for the four traits, tall plants consistently flowering late and carrying large panicles. Different NILs development strategies are discussed.
引用
收藏
页码:361 / 368
页数:8
相关论文
共 31 条
[1]   Cytokinin oxidase regulates rice grain production [J].
Ashikari, M ;
Sakakibara, H ;
Lin, SY ;
Yamamoto, T ;
Takashi, T ;
Nishimura, A ;
Angeles, ER ;
Qian, Q ;
Kitano, H ;
Matsuoka, M .
SCIENCE, 2005, 309 (5735) :741-745
[2]   Advanced backcross QTL analysis of tomato.: II.: Evaluation of near-isogenic lines carrying single-donor introgressions for desirable wild QTL-alleles derived from Lycopersicon hirsutum and L-pimpinellifolium [J].
Bernacchi, D ;
Beck-Bunn, T ;
Eshed, Y ;
Inai, S ;
Lopez, J ;
Petiard, V ;
Sayama, H ;
Uhlig, J ;
Zamir, D ;
Tanksley, S .
THEORETICAL AND APPLIED GENETICS, 1998, 97 (1-2) :170-180
[3]  
DARVASI A, 1993, GENETICS, V134, P943
[4]  
FAN CC, 2006, IN PRESS THEOR APPL
[5]   fw2.2:: A quantitative trait locus key to the evolution of tomato fruit size [J].
Frary, A ;
Nesbitt, TC ;
Frary, A ;
Grandillo, S ;
van der Knaap, E ;
Cong, B ;
Liu, JP ;
Meller, J ;
Elber, R ;
Alpert, KB ;
Tanksley, SD .
SCIENCE, 2000, 289 (5476) :85-88
[6]  
LANDER ES, 1989, GENETICS, V121, P185
[7]   Fine mapping of a grain-weight quantitative trait locus in the pericentromeric region of rice chromosome 3 [J].
Li, JM ;
Thomson, M ;
McCouch, SR .
GENETICS, 2004, 168 (04) :2187-2195
[8]  
Lin HX, 2003, BREEDING SCI, V53, P51, DOI 10.1270/jsbbs.53.51
[9]   RFLP mapping of QTLs for yield and related characters in rice (Oryza sativa L) [J].
Lin, HX ;
Qian, HR ;
Zhuang, JY ;
Lu, J ;
Min, SK ;
Xiong, ZM ;
Huang, N ;
Zheng, KL .
THEORETICAL AND APPLIED GENETICS, 1996, 92 (08) :920-927
[10]  
Lincoln S.E., 1993, MAPPING GENES CONTRO