期刊文献+
共找到2篇文章
< 1 >
每页显示 20 50 100
Dissecting the Genetic Basis of Extremely Large Grain Shape in Rice Cultivar 'JZ1560' 被引量:11
1
作者 Jie-Zheng Ying Ji-Ping Gao +3 位作者 Jun-Xiang Shan Mei-Zhen Zhu Min Shi Hong-Xuan Lin 《Journal of Genetics and Genomics》 SCIE CAS CSCD 2012年第7期325-333,共9页
Rice grain shape, grain length (GL), width (GW), thickness (GT) and length-to-width ratio (LWR), are usually controlled by multiple quantitative trait locus (QTL). To elucidate the genetic basis of extremely... Rice grain shape, grain length (GL), width (GW), thickness (GT) and length-to-width ratio (LWR), are usually controlled by multiple quantitative trait locus (QTL). To elucidate the genetic basis of extremely large grain shape, QTL analysis was performed using an F2 population derived from a cross between a japonica cuttivar 'JZI560' (extremely large grain) and a contrasting indica cultivar 'FAZI' (small grain). A total number of 24 QTLs were detected on seven different chromosomes. QTLs for GL, GW, GT and LWR explained 11.6%, 95.62%, 91.5% and 89.9% of total phenotypic variation, respectively. Many QTLs pleiotropically controlled different grain traits, contributing complex traits correlation. GW2 and qSW5/GW5, which have been cloned previously to control GW, showed similar chromosomal locations with qGW2-1/qGT2-1/qLWR2-2 and qGW5-2/qLWR5-1 and should be the right candidate genes. Plants pyramiding GW2 and qSW5/GW5 showed a significant increase in GW compared with those carrying one of the two major QTLs. Furthermore, no significant QTL interaction was observed between GW2 and qSW5/GW5. These results suggested that GW2 and qSW5/GW5 might work in independent pathways to regulate grain traits. 'JZ1560' alleles underlying all QTLs contributed an increase in GW and GT and the accumulation of additive effects generates the extremely large grain shape in 'JZ1560'. 展开更多
关键词 RICE quantitative trait locus additive effect Grain shape
原文传递
小麦胚芽鞘长、幼苗根长的QTL定位 被引量:7
2
作者 李卓坤 袁倩倩 +3 位作者 师翠兰 陈俊男 韩淑晓 田纪春 《分子植物育种》 CAS CSCD 2010年第3期460-468,共9页
小麦品种花培3号和豫麦57构建的DH群体的168个株系及亲本为材料,在正常发芽和20%PEG-6000模拟水分胁迫处理条件下测定小麦幼苗的胚芽鞘长、根长。利用完备区间作图法分析幼苗胚芽鞘长、幼根长的QTL。两种处理条件下共定位了8个控制胚芽... 小麦品种花培3号和豫麦57构建的DH群体的168个株系及亲本为材料,在正常发芽和20%PEG-6000模拟水分胁迫处理条件下测定小麦幼苗的胚芽鞘长、根长。利用完备区间作图法分析幼苗胚芽鞘长、幼根长的QTL。两种处理条件下共定位了8个控制胚芽鞘长加性QTL,其中位于染色体2A、4B和4D上的QCl2A、QCl4B和QCl4D在两种处理条件下均被检测到,可解释6.10%~16.31%的表型变异。两种条件下共定位了10个控制幼根长加性QTL,其中位于染色体6A上Xgwm82和Xwmc553区间的QRl6A在两种处理下均被检测到,可分别解释8.26%和9.74%的表型变异。在检测到的18对控制胚芽鞘长、根长的上位性互作位点中,大多数互作属于非等位QTL间的非加性QTL位点之间互作。因此在小麦材料的早期抗旱性筛选、分子育种时要同时考虑加性QTL和非加性QTL位点间的上位性互作。 展开更多
关键词 小麦 DH群体 胚芽鞘长 根长 加性QTL 上位性
下载PDF
上一页 1 下一页 到第
使用帮助 返回顶部