作物学报 ›› 2015, Vol. 41 ›› Issue (09): 1445-1453.doi: 10.3724/SP.J.1006.2015.01445
王二辉1, 2, *, 胡利芹2, *, 薛飞洋1, 2, 李微微2, 徐兆师2, 李连城2, 周永斌2, 马有志2, 刁现民2, 贾冠清2, 陈明2, *, 闵东红1, *
WANG Er-Hui1, 2, **, HU Li-Qin2, **, XUE Fei-Yang1, 2, LI Wei-Wei2, XU Zhao-Shi2, LI Lian-Cheng2, ZHOU Yong-Bin2, MA You-Zhi2, DIAO Xian-Min2, JIA Guan-Qing2, CHEN Ming2, *, MIN Dong-Hong1, *
摘要: NAC (nascent polypeptide-associated complex)转录因子在植物生长发育和非生物胁迫响应等过程中发挥重要的调控作用, 目前, 关于NAC转录因子参与耐低钾胁迫的研究报道很少。本研究在前期工作对低钾胁迫的转录组测序基础上, 对筛选出的一个低钾胁迫下表达量上调的NAC类转录因子基因SiNAC45进行了深入研究。结果表明, SiNAC45基因全长1383 bp, 编码461个氨基酸, 分子量为50.7 kD, 等电点为6.92。SiNAC45在20~100个氨基酸之间有一段NAM保守结构域。系统进化树结果显示, SiNAC45位于NAC基因家族的第1亚族。基因表达谱分析显示, SiNAC45主要在谷子根部表达, 并且能够被低钾和ABA诱导表达。亚细胞定位结果显示SiNAC45定位于细胞核。基因功能分析结果显示, 在不同浓度低钾处理下, 和野生型拟南芥相比, SiNAC45转基因拟南芥的根长和植株鲜重显著增加, 说明过表达SiNAC45可以提高转基因植物对低钾胁迫的抗性。下游基因表达分析结果显示, 在SiNAC45转基因植物中两种重要的钾离子转运体基因AKT1和HAK1的表达显著提高, 证明SiNAC45通过调控植物钾离子转运体基因的表达影响植物对低钾胁迫的耐性。种子萌发试验结果显示, SiNAC45转基因拟南芥与野生型拟南芥相比对ABA的敏感性降低, 说明SiNAC45可能负调ABA信号。
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