Kim Yun-Hee, Kim Cha Young, Song Wan-Keun, Park Doo-Sang, Kwon Suk-Yoon, Lee Haeng-Soon, Bang Jae-Wook, Kwak Sang-Soo
Environmental Biotechnology Research Center, Korea Research Institute of Bioscience and Biotechnology, 52 Oun-dong, Yusong-gu, Daejeon 305-806, Korea.
Planta. 2008 Mar;227(4):867-81. doi: 10.1007/s00425-007-0663-3. Epub 2007 Nov 16.
Plant peroxidases (POD) reduce hydrogen peroxide (H(2)O(2)) in the presence of an electron donor. Extracellular POD can also induce H(2)O(2) production and may perform a significant function in responses to environmental stresses via the regulation of H(2)O(2) in plants. We previously described the isolation of 10 POD cDNA clones from cell cultures of sweetpotato (Ipomoea batatas). Among them, the expression of the swpa4 gene was profoundly induced by a variety of abiotic stresses and pathogenic infections (Park et al. in Mol Gen Genome 269:542-552 2003; Jang et al. in Plant Physiol Biochem 42:451-455 2004). In the present study, transgenic tobacco (Nicotiana tabacum) plants overexpressing the swpa4 gene under the control of the CaMV 35S promoter were generated in order to assess the function of swpa4 in planta. The transgenic plants exhibited an approximately 50-fold higher POD specific activity than was observed in control plants. Both transient expression analysis with the swpa4-GFP fusion protein and POD activity assays in the apoplastic washing fluid revealed that the swpa4 protein is secreted into the apoplastic space. In addition, a significantly enhanced tolerance to a variety of abiotic and biotic stresses occurred in the transgenic plants. These plants harbored increased lignin and phenolic content, and H(2)O(2 )was also generated under normal conditions. Furthermore, they showed an increased expression level of a variety of apoplastic acidic pathogenesis-related (PR) genes following enhanced H(2)O(2) production. These results suggest that the expression of swpa4 in the apoplastic space may function as a positive defense signal in the H(2)O(2)-regulated stress response signaling pathway.
植物过氧化物酶(POD)在电子供体存在的情况下可还原过氧化氢(H₂O₂)。细胞外POD还可诱导H₂O₂的产生,并且可能通过调节植物体内的H₂O₂在应对环境胁迫中发挥重要作用。我们之前描述了从甘薯(Ipomoea batatas)细胞培养物中分离出10个POD cDNA克隆。其中,swpa4基因的表达受到多种非生物胁迫和病原体感染的显著诱导(Park等人,《分子遗传学与基因组学》269:542 - 552,2003;Jang等人,《植物生理学与生物化学》42:451 - 455,2004)。在本研究中,为了评估swpa4在植物体内的功能,构建了在CaMV 35S启动子控制下过表达swpa4基因的转基因烟草(Nicotiana tabacum)植株。转基因植株的POD比活性比对照植株高约50倍。对swpa4 - GFP融合蛋白的瞬时表达分析以及对质外体洗液中的POD活性测定均表明,swpa4蛋白被分泌到质外体空间。此外,转基因植株对多种非生物和生物胁迫的耐受性显著增强。这些植株的木质素和酚类含量增加,并且在正常条件下也会产生H₂O₂。此外,在H₂O₂产生增加后,它们还表现出多种质外体酸性病程相关(PR)基因的表达水平升高。这些结果表明,swpa4在质外体空间中的表达可能在H₂O₂调节的胁迫响应信号通路中作为一种正向防御信号发挥作用。