作物学报 ›› 2023, Vol. 49 ›› Issue (9): 2331-2343.doi: 10.3724/SP.J.1006.2023.23069
所属专题: 玉米:遗传育种·种质资源·分子遗传学
HUANG Yu-Jie(
), ZHANG Xiao-Tian, CHEN Hui-Li, WANG Hong-Wei(
), DING Shuang-Cheng(
)
摘要:
鉴定玉米ZmC2s基因家族成员, 分析其遗传变异与玉米耐热性的关联性, 为明确其在玉米耐热方面的功能和分子机制奠定基础。使用C2蛋白结构域PF00168, 利用hmmsearch从玉米全基因组中搜索ZmC2s基因家族成员, 分析其编码蛋白质等电点和分子量、系统进化和基因家族复制。使用候选基因关联分析的方法, 对ZmC2s基因自然变异位点与玉米苗期耐热性进行关联分析, 发现玉米ZmC2s基因家族重要的耐热候选基因。使用实时荧光定量PCR (RT-qPCR)的方法鉴定与玉米苗期耐热性最显著相关的ZmC2候选基因ZmC2-15在胁迫和激素处理下的基因相对表达水平, 在玉米原生质体瞬时表达系统中鉴定ZmC2-15-GFP的亚细胞表达部位, 以及获得过表达ZmC2-15的转基因拟南芥并分析其耐热性。从玉米参考基因组B73中共鉴定出95个玉米ZmC2s基因, 根据其物理坐标的先后顺序, 将95个玉米ZmC2s基因命名为ZmC2-1~ZmC2-95。其蛋白长度为130~2141, 等电点为4.1~10.8, 分子量为14.1~230.1。通过构建玉米、水稻和高粱基因组C2基因的进化树, 发现C2基因可以分为3个大的聚类分支, 每个聚类分支又可以细分为2个小的聚类分支。分析玉米、水稻和玉米、高粱的全基因组共线性数据, 发现了59个ZmC2s基因在水稻和高粱基因组均有一一对应的复制基因。ZmC2s基因家族关联分析表明ZmC2-15/60/91是重要的玉米耐热候选基因(P≤0.001, MLM), 其中ZmC2-15与玉米苗期耐热性最显著相关(P≤0.000,01, MLM), 且该基因的表达量在多种逆境胁迫处理下上调表达。亚细胞定位分析表明ZmC2-15表达定位于细胞质、核膜和内质网。过表达ZmC2-15的转基因拟南芥提高了植物耐热性。ZmC2-15可作为调控玉米耐热性的重要候选基因。
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