作物杂志,2026, 第4期: 2735 doi: 10.16035/j.issn.1001-7283.2026.04.004
王鑫琦(
), 车欣洋, 张海洋, 王旭, 李玉涵, 赵硕, 刘思贝, 王雪贺缘, 贺琳, 徐晶宇(
)
Wang Xinqi(
), Che Xinyang, Zhang Haiyang, Wang Xu, Li Yuhan, Zhao Shuo, Liu Sibei, Wang Xueheyuan, He Lin, Xu Jingyu(
)
摘要: 二酰甘油激酶(DGK)可催化二酰甘油生成磷脂酸,参与植物对多种非生物胁迫的响应。采用CRISPR/ Cas9技术敲除玉米(Zea mays L.)ZmDGK1基因,获得zmdgk1CR T3代纯合株系(遗传转化受体为自交系B104),将3个zmdgk1CR株系和B104进行低温胁迫处理,测定表型和生理指标。结果表明,3个zmdgk1CR株系幼苗表现出较轻的叶片失绿、黄化和萎蔫现象;根系生长受到轻微抑制,根系总长较B104增加11.30%~16.17%。在活性氧、细胞膜损伤、抗氧化酶活性、渗透调节物质和光合色素相关指标中,zmdgk1CR株系与B104均存在显著差异。与B104相比,zmdgk1CR株系的O2-. 含量降低24.61%~30.71%,丙二醛含量降低5.19%~18.18%,超氧化物歧化酶活性提高3.31%~19.88%,总叶绿素含量增加8.78%~27.23%。此外,通过对低温处理后zmdgk1CR株系的叶片和根系进行DAB、NBT、H2DCF-DA和PI染色,证实ZmDGK1基因缺失可减少活性氧积累、降低细胞膜损伤,同时提高玉米的抗氧化能力、渗透调节能力及光合色素积累,表明ZmDGK1基因对玉米幼苗耐低温性具有负调控作用。
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