Huang Weizao, Ma Xinrong, Wang Qilin, Gao Yongfeng, Xue Ying, Niu Xiangli, Yu Guirong, Liu Yongsheng
Ministry of Education Key Laboratory for Southwest Bio-resource and Ecoenvironment, College of Life Science and State Key Laboratory of Hydraulics and Mountain River Engineering, Sichuan University, Chengdu 610064, China.
Plant Mol Biol. 2008 Nov;68(4-5):451-63. doi: 10.1007/s11103-008-9382-9. Epub 2008 Aug 9.
Aldehyde dehydrogenases (ALDHs) play a central role in detoxification processes of aldehydes generated in plants when exposed to the stressed conditions. In order to identify genes required for the stresses responses in the grass crop Zea mays, an ALDH (ZmALDH22A1) gene was isolated and characterized. ZmALDH22A1 belongs to the family ALDH22 that is currently known only in plants. The ZmALDH22A1 encodes a protein of 593 amino acids that shares high identity with the orthologs from Saccharum officinarum (95%), Oryza sativa (89%), Triticum aestivum (87%) and Arabidopsis thaliana (77%), respectively. Real-time PCR analysis indicates that ZmALDH22A1 is expressed differentially in different tissues. Various elevated levels of ZmALDH22A1 expression have been detected when the seedling roots exposed to abiotic stresses including dehydration, high salinity and abscisic acid (ABA). Tomato stable transformation of construct expressing the ZmALDH22A1 signal peptide fused with yellow fluorescent protein (YFP) driven by the CaMV35S-promoter reveals that the fusion protein is targeted to plastid. Transgenic tobacco plants overexpressing ZmALDH22A1 shows elevated stresses tolerance. Stresses tolerance in transgenic plants is accompanied by a reduction of malondialdehyde (MDA) derived from cellular lipid peroxidation.
醛脱氢酶(ALDHs)在植物暴露于胁迫条件下产生的醛的解毒过程中起着核心作用。为了鉴定禾本科作物玉米中胁迫反应所需的基因,分离并鉴定了一个ALDH(ZmALDH22A1)基因。ZmALDH22A1属于目前仅在植物中已知的ALDH22家族。ZmALDH22A1编码一个由593个氨基酸组成的蛋白质,该蛋白质与来自甘蔗(95%)、水稻(89%)、小麦(87%)和拟南芥(77%)的直系同源物分别具有高度同源性。实时PCR分析表明,ZmALDH22A1在不同组织中差异表达。当幼苗根暴露于包括脱水、高盐度和脱落酸(ABA)在内的非生物胁迫时,已检测到ZmALDH22A1表达的各种升高水平。由CaMV35S启动子驱动的表达与黄色荧光蛋白(YFP)融合的ZmALDH22A1信号肽的构建体的番茄稳定转化表明,融合蛋白定位于质体。过表达ZmALDH22A1的转基因烟草植株表现出更高的胁迫耐受性。转基因植物的胁迫耐受性伴随着细胞脂质过氧化衍生的丙二醛(MDA)的减少。