作物学报 ›› 2022, Vol. 48 ›› Issue (3): 580-589.doi: 10.3724/SP.J.1006.2022.11015
所属专题: 小麦:遗传育种·种质资源·分子遗传学
付美玉1,2(
), 熊宏春2, 周春云2, 郭会君2, 谢永盾2, 赵林姝2, 古佳玉2, 赵世荣2, 丁玉萍2, 徐延浩1,*(
), 刘录祥2,*(
)
FU Mei-Yu1,2(
), XIONG Hong-Chun2, ZHOU Chun-Yun2, GUO Hui-Jun2, XIE Yong-Dun2, ZHAO Lin-Shu2, GU Jia-Yu2, ZHAO Shi-Rong2, DING Yu-Ping2, XU Yan-Hao1,*(
), LIU Lu-Xiang2,*(
)
摘要:
倒伏易引发小麦严重减产, 发掘和利用优异矮秆基因是培育高产抗倒伏小麦新品种的关键。本研究以京411 (WT)及其经EMS诱变获得的产量相关性状优良的矮秆突变体je0098为试验材料, 对其株高进行遗传分析, 结合外显子捕获测序和遗传连锁分析定位矮秆基因。3年田间株高数据统计分析表明, je0098与WT相比株高降低15 cm, 组织细胞学观察结果显示, je0098与WT相比节间细胞长度缩短18%, 暗示je0098的矮化是由于节间细胞长度变短所致; 赤霉素敏感性分析表明, je0098为赤霉素敏感型矮秆突变体。利用WT和je0098杂交构建的由344个单株组成的F2分离群体, 结合F2:3家系表型数据, 选取矮秆纯合和高秆单株构建混池, 对两亲本和子代混池分别进行外显子捕获测序, 在2D染色体上定位到一个具有降秆效应的数量性状位点(QTL)。结合全基因组重测序所得SNP位点, 在2D染色体开发了6个KASP分子标记, 对F2单株进行基因分型。利用QTL IciMapping作图软件构建遗传连锁图谱, 结合3年田间表型数据, 将矮秆基因定位在20.77~28.84 Mb区间内, 遗传距离为11.48 cM。本研究结果为突变体je0098矮秆基因的功能研究以及育种利用奠定了基础。
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