Ishitani M, Nakamura T, Han S Y, Takabe T
Nagoya University, BioScience Center, Japan.
Plant Mol Biol. 1995 Jan;27(2):307-15. doi: 10.1007/BF00020185.
When subjected to salt stress or drought, some vascular plants such as barley respond with an increased accumulation of the osmoprotectant glycine betaine (betaine), being the last step of betaine synthesis catalyzed by betaine aldehyde dehydrogenase (BADH). We report here cloning and characterization of BADH cDNA from barley, a monocot, and the expression pattern of a BADH transcript. An open reading frame of 1515 bp encoded a protein which showed high homology to BADH enzymes present in other plants (spinach and sugar-beet) and in Escherichia coli. Transgenic tobacco plants harboring the clone expressed high levels of both BADH protein and its enzymatic activity. Northern blot analyses indicated that BADH mRNA levels increased almost 8-fold and 2-fold, respectively, in leaves and roots of barley plants grown in high-salt conditions, and that these levels decreased upon release of the stress, whereas they did not decrease under continuous salt stress. BADH transcripts also accumulate in response to water stress or drought, indicating a common response of the plant to osmotic changes that affect its water status. The addition of abscisic acid (ABA) to plants during growth also increased the levels of BADH transcripts dramatically, although the response was delayed when compared to that found for salt-stressed plants. Removal of plant roots before transferring the plants to high-salt conditions reduced only slightly the accumulation of BADH transcripts in the leaves.
当受到盐胁迫或干旱时,一些维管植物如大麦会通过增加渗透保护剂甘氨酸甜菜碱(甜菜碱)的积累来做出反应,这是由甜菜碱醛脱氢酶(BADH)催化的甜菜碱合成的最后一步。我们在此报告了从单子叶植物大麦中克隆和鉴定BADH cDNA以及BADH转录本的表达模式。一个1515 bp的开放阅读框编码了一种与其他植物(菠菜和甜菜)以及大肠杆菌中存在的BADH酶具有高度同源性的蛋白质。携带该克隆的转基因烟草植物表达了高水平的BADH蛋白及其酶活性。Northern印迹分析表明,在高盐条件下生长的大麦植株的叶片和根中,BADH mRNA水平分别增加了近8倍和2倍,并且在胁迫解除时这些水平下降,而在持续盐胁迫下它们并未下降。BADH转录本也会因水分胁迫或干旱而积累,这表明植物对影响其水分状况的渗透变化有共同的反应。在植物生长期间添加脱落酸(ABA)也会显著增加BADH转录本的水平,尽管与盐胁迫植物相比,这种反应有所延迟。在将植物转移到高盐条件之前去除植物的根只会略微降低叶片中BADH转录本的积累。