作物学报 ›› 2023, Vol. 49 ›› Issue (12): 3176-3187.doi: 10.3724/SP.J.1006.2023.31008
所属专题: 小麦:遗传育种·种质资源·分子遗传学
张逸宁1,2(
), 张艳菲2, 汪敏2, 王景一2, 李龙2, 李超男2, 杨德龙1,*(
), 毛新国1,2,*(
), 景蕊莲2
ZHANG Yi-Ning1,2(
), ZHANG Yan-Fei2, WANG Min2, WANG Jing-Yi2, LI Long2, LI Chao-Nan2, YANG De-Long1,*(
), MAO Xin-Guo1,2,*(
), JING Rui-Lian2
摘要:
利用水分高效基因资源创制新型小麦品种是应对气候变化和人口高速增长的有效途径。MYB (v-myb avian myeloblastosis viral oncogene homolog)是植物中最大的转录因子家族之一, 参与调控植物生长发育, 生物和非生物胁迫。本研究在TaPHR1-4A和TaPHR1-4B中分别鉴定出19个和15个SNP, 基于这些多态性位点开发了分子标记。关联分析表明, Hap-4B-I是小穗数多的优异单倍型。通过创制两个回交导入系群体, 进一步证实Hap-4B-I有利于改善小麦穗部性状。TaPHR1的转录表达分析发现Hap-4B-I单倍型幼穗中TaPHR1的表达水平均高于Hap-4B-II单倍型。此外, TaPHR1在水稻中的异源表达导致穗分支变多, 也证实TaPHR1参与调控每穗小穗数。小麦育成品种的时空分布分析发现尽管Hap-4B-II在我国现代育成品种中占比最多, 但随小麦育种时间的推进, Hap-4B-I的占比在逐渐增多。总之, TaPHR1是小麦每穗小穗数的正调节因子。因此, 本研究开发的分子标记可作为小麦标记辅助选择和遗传改良的重要来源。
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