作物学报 ›› 2025, Vol. 51 ›› Issue (11): 2923-2932.doi: 10.3724/SP.J.1006.2025.41080
桂灵星1,2(
), 凌溪铁2, 唐兆成2, 罗文臻1,2, 朱盼珍1,2, 仇泽宇2,*(
), 张保龙1,2,*(
)
GUI Ling-Xing1,2(
), LING Xi-Tie2, TANG Zhao-Cheng2, LUO Wen-Zhen1,2, ZHU Pan-Zhen1,2, QIU Ze-Yu2,*(
), ZHANG Bao-Long1,2,*(
)
摘要:
麦田除草剂抗性杂草频发与小麦倒伏风险已成为制约小麦高产稳产的双重挑战。本研究基于甲基磺酸乙酯(EMS)诱变技术创制新型抗除草剂矮秆小麦种质, 利用EMS对冬小麦品种宁麦36进行诱变, 通过乙酰乳酸合成酶(acetolactate synthetase, ALS)抑制剂类除草剂甲氧咪草烟对M2代诱变群体进行抗除草剂单株筛选, 结合株高测定, 最终获得2株稳定遗传的矮秆突变体WK120和WK121。2个突变体较野生型宁麦36, 具有较高的甲氧咪草烟抗性, 且株高分别下降37%和29%。ALS基因的基因型鉴定结果表明, WK120和WK121的D亚基因组上的ALS均发生G-A的单点突变, 导致第627位的丝氨酸转变为天冬酰胺。农艺性状及产量相关性状分析表明, 较野生型宁麦36, WK120、WK121的千粒重分别提高4.29%和5.17%, 每穗粒数分别提高1.9%和3.1%, 穗长分别提高1.8%和2.7%。赤霉素(GA3)处理结果表明, WK120和WK121均属于赤霉素反应敏感型种质。分子标记检测和Sanger测序结果表明, 野生型和突变体中均无已知赤霉素敏感矮秆基因(Rht4、Rht8、Rht9、Rht11和Rht22), 暗示突变体中可能存在新的矮化基因位点。综上, 抗除草剂矮秆型宁麦36不仅对ALS抑制剂类除草剂具有较高的耐受性, 且农艺性状获得改善, 本研究为后续的抗除草剂矮秆小麦品种的培育提供了遗传资源和理论参考。
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