作物学报 ›› 2023, Vol. 49 ›› Issue (2): 365-376.doi: 10.3724/SP.J.1006.2023.12076
李兆伟1,2(), 莫祖意1,2, 孙聪颖1,2, 师宇1,2, 尚平2,3, 林伟伟1,2, 范凯2,3, 林文雄1,2,*()
LI Zhao-Wei1,2(), MO Zu-Yi1,2, SUN Cong-Ying1,2, SHI Yu1,2, SHANG Ping2,3, LIN Wei-Wei1,2, FAN Kai2,3, LIN Wen-Xiong1,2,*()
摘要:
为探究转录因子OsNAC2d的生物学功能及其对水稻耐旱性的影响, 本研究利用CRISPR/Cas9编辑技术对粳稻中花11中的OsNAC2d基因进行突变, 并考察osnac2d突变体在田间种植下的农艺性状, 以及突变体幼苗在干旱胁迫下的生长情况和OsNAC2d基因表达水平。结果表明, OsNAC2d基因主要在水稻成熟籽粒、叶片和花药中表达, 在根系和茎中的表达量较低, 并且受干旱胁迫诱导, 在10株阳性OsNAC2d基因突变株系的T2代植株中, 筛选出6种纯合osnac2d突变体, 田间试验调查表明, osnac2d突变体与野生型中花11相比, 株高、有效穗、穗长、穗粒数、结实率、千粒重和单株产量等农艺性状无显著差异。在干旱胁迫时, osnac2d突变体幼苗的根系与植株生长、根系和地上部生物量的积累均受到抑制, 且OsNAC2d在osnac2d突变体中的表达量维持在较低水平, 而野生型水稻的OsNAC2d表达则受干旱胁迫诱导而增强, 植株生长与生物量积累未受到显著抑制, 表明转录因子OsNAC2d正调控水稻响应干旱胁迫。创建的osnac2d突变体材料为进一步揭示OsNAC2d的生物学功能及其响应干旱胁迫的精细调控机制提供了优质种质资源。
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