Institute of Molecular and Cellular Biosciences, The University of Tokyo, 1-1-1 Yayoi, Bunkyo-ku, Tokyo 113-0032, Japan.
J Exp Bot. 2010 Aug;61(13):3813-25. doi: 10.1093/jxb/erq190. Epub 2010 Jun 30.
Nicotinamide adenine dinucleotide (NAD) and its derivative nicotinamide adenine dinucleotide phosphate (NADP) are indispensable co-factors in broad-spectrum metabolic events for the maintenance of cellular homeostasis in all living organisms. In this study, the cellular expression levels of NAD biosynthesis genes in Arabidopsis were investigated. A very high expression of nicotinate/nicotinamide mononucleotide adenyltransferase (NMNAT) was observed in the differentiated stomatal guard cells of the leaf surface. Transcriptional analysis confirmed that several genes in the biosynthesis pathway were also highly expressed in stomatal guard cells. In fact, NAD and NADP metabolisms were investigated during stomatal movement. Importantly, the generation of phytohormone ABA-induced reactive oxygen species, which acts as a signal for stomatal closure, was accompanied by markedly decreased levels of NAD. The ABA-induced oxidative stress caused stomatal cell death in the nmnat mutant. Furthermore, stomata partially lost their ability to close leading to drought susceptibility. The stomata were less responsive to opening cues as well. These results indicate that NAD biosynthesis is involved in protecting guard cells from ABA-induced local oxidative stress via the regulation of NMNAT activity. In this study, it is demonstrated that NMNAT is essential for the maintenance of NAD homeostasis enabling sustainable stomatal movement.
烟酰胺腺嘌呤二核苷酸(NAD)及其衍生物烟酰胺腺嘌呤二核苷酸磷酸(NADP)是所有生物维持细胞内稳态的广泛代谢事件中不可缺少的辅酶。在这项研究中,研究了拟南芥中 NAD 生物合成基因的细胞表达水平。在叶片表面分化的气孔保卫细胞中观察到烟碱酸/烟酰胺单核苷酸腺苷转移酶(NMNAT)的高表达。转录分析证实,生物合成途径中的几个基因在气孔保卫细胞中也高度表达。事实上,在气孔运动过程中研究了 NAD 和 NADP 代谢。重要的是,作为气孔关闭信号的植物激素 ABA 诱导的活性氧的产生伴随着 NAD 的显著减少。ABA 诱导的氧化应激导致 nmnat 突变体中的气孔细胞死亡。此外,气孔部分丧失了关闭的能力,导致对干旱的敏感性增加。气孔对开放信号的反应也减弱了。这些结果表明,NAD 生物合成通过调节 NMNAT 活性参与保护保卫细胞免受 ABA 诱导的局部氧化应激。在这项研究中,证明了 NMNAT 对于维持 NAD 动态平衡至关重要,使可持续的气孔运动成为可能。