作物学报 ›› 2010, Vol. 36 ›› Issue (09): 1498-1505.doi: 10.3724/SP.J.1006.2010.01498
苗兴芬1,2,朱命喜1,徐文平2,丁俊杰4,于凤瑶5,于永梅2,杜升伟1,刘春燕3,陈庆山1,3,*,胡国华1,3,*
MIAO Xing-Fen1,2,ZHU Ming-Xi1,XU Wen-Ping2,DING Jun-Jie4,YU Feng-Yao5,YU Yong-Mei2,DU Sheng-Wei1,Chun-Yan3,CHEN Qing-Shan1,3,*,HU Guo-Hua1,3,*
摘要: 利用Charleston(♀)×东农594(♂)的F14和F15代永久自交系群体154个单株后代,在两年3点条件下用气相色谱法测得其籽粒5种脂肪酸的含量,利用Win QTL Cartographer 2.5复合区间作图法(CIM)进行QTL分析。结果共检测到47个相关的QTL,分布在13个连锁群上。多年多点同时检测到的QTL共有13个,其中控制软脂酸性状的2个,包括qPal-C2-2和qPal-A1-1;控制硬脂酸性状的4个,包括qSt-B1-1、qSt-B1-2、qSt-D1a-1和qSt-C2-1;控制油酸性状3个,包括qOle-B2-1、qOle-G-1和qOle-H-1;控制亚油酸性状的有2个,包括qLin-C2-1和qLin-H-1;控制亚麻酸性状的4个,包括qLino-B1-1、qLino-C2-1、qLino-D1b-1和qLino-J-1。这些QTL的一致性较高,为特异脂肪酸含量标记辅助育种奠定了基础。大豆脂肪酸含量的主效QTL数量不多, 效应大的不多, 可能还受许多未能检测出来的微效基因控制。
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