作物学报 ›› 2025, Vol. 51 ›› Issue (1): 58-67.doi: 10.3724/SP.J.1006.2025.44092
MENG Fan-Hua1, LIU Min1(
), SHEN Ao1,2, LIU Wei1,*(
)
摘要:
土壤盐渍化严重制约农业生产发展, 通过提高植物耐盐性进行盐碱地综合利用, 对于保障粮食安全, 提升农业生产效率具有重要意义。脂质转移蛋白是一类在高等植物中广泛存在的小分子蛋白质, 能够参与植株生长、信号转导以及多种生物和非生物胁迫过程。前期本课题组克隆到一个谷子中编码脂质转移蛋白的基因SiLTP1, 本研究通过构建其原核表达载体和植物双元过表达载体, 获得了该基因的原核表达蛋白及同源转化过表达阳性植株, 经进一步筛选获得4个纯合株系。体外耐盐性试验显示, SiLTP1的原核表达蛋白具有一定耐盐性; 转基因植株苗期耐盐生理指标测定显示, SiLTP1过表达植株在遭受盐胁迫时, 植株体内MDA积累减少, 抗氧化酶含量升高, 可积累更少的过氧化氢, 从而降低胁迫对植株的氧化损伤, 显示基因过表达植株具有更好的耐盐性。本研究结果初步揭示, SiLTP1可正向调控谷子的耐盐性, 其在谷子耐盐抗逆方面具有潜在功能, 为耐盐谷子品种改良及新品种培育提供了理论基础和候选基因资源。
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