Wang Zhaohai, Wang Ya, Hong Xiao, Hu Daoheng, Liu Caixiang, Yang Jing, Li Yang, Huang Yunqing, Feng Yuqi, Gong Hanyu, Li Yang, Fang Gen, Tang Huiru, Li Yangsheng
State Key Laboratory of Hybrid Rice, College of Life Sciences, Wuhan University, Hubei 430072, China.
Key Laboratory of Magnetic Resonance in Biological Systems, State Key Laboratory of Magnetic Resonance and Atomic and Molecular Physics, Wuhan Centre for Magnetic Resonance, Wuhan Institute of Physics and Mathematics, Chinese Academy of Sciences, Wuhan 430071, China.
J Exp Bot. 2015 Feb;66(3):973-87. doi: 10.1093/jxb/eru456. Epub 2014 Nov 15.
Plant leaf senescence and defence responses are important biological processes, but the molecular mechanisms involved are not well understood. This study identified a new rice mutant, spotted leaf 29 (spl29). The SPL29 gene was identified by map-based cloning, and SPL29 was confirmed as UDP-N-acetylglucosamine pyrophosphorylase 1 (UAP1) by enzymatic analysis. The mutant spl29 lacks UAP activity. The biological phenotypes for which UAP is responsible have not previously been reported in plants. The spl29 mutant displayed early leaf senescence, confirmed by chlorophyll loss and photosystem II decline as physiological indicators, chloroplast degradation as a cellular characteristic, and both upregulation of senescence transcription factors and senescence-associated genes, and downregulation of photosynthesis-related genes, as molecular evidence. Defence responses were induced in the spl29 mutant, shown by enhanced resistance to bacterial blight inoculation and upregulation of defence response genes. Reactive oxygen species, including O2 (-) and H2O2, accumulated in spl29 plants; there was also increased malondialdehyde content. Enhanced superoxide dismutase activity combined with normal catalase activity in spl29 could be responsible for H2O2 accumulation. The plant hormones jasmonic acid and abscisic acid also accumulated in spl29 plants. ROS and plant hormones probably play important roles in early leaf senescence and defence responses in the spl29 mutant. Based on these findings, it is suggested that UAP1 is involved in regulating leaf senescence and defence responses in rice.
植物叶片衰老和防御反应是重要的生物学过程,但其中涉及的分子机制尚未完全清楚。本研究鉴定出一种新的水稻突变体——斑点叶29(spl29)。通过图位克隆鉴定出SPL29基因,并通过酶学分析证实SPL29为UDP-N-乙酰葡糖胺焦磷酸化酶1(UAP1)。突变体spl29缺乏UAP活性。UAP所负责的生物学表型此前在植物中尚未见报道。spl29突变体表现出叶片早衰,以叶绿素损失和光系统II下降作为生理指标、叶绿体降解作为细胞特征予以证实,同时衰老转录因子和衰老相关基因上调以及光合作用相关基因下调作为分子证据。spl29突变体诱导了防御反应,表现为对白叶枯病接种的抗性增强以及防御反应基因上调。包括O2(-)和H2O2在内的活性氧在spl29植株中积累;丙二醛含量也增加。spl29中增强型超氧化物歧化酶活性与正常过氧化氢酶活性相结合可能是H2O2积累的原因。植物激素茉莉酸和脱落酸在spl29植株中也有积累。活性氧和植物激素可能在spl29突变体的叶片早衰和防御反应中发挥重要作用。基于这些发现,推测UAP1参与调控水稻叶片衰老和防御反应。