Centre for Tropical Crops and Biocommodities, Queensland University of Technology, Brisbane, Australia.
Physiol Plant. 2018 Jan;162(1):13-34. doi: 10.1111/ppl.12585. Epub 2017 Aug 25.
Osmotin is a key protein associated with abiotic and biotic stress response in plants. In this study, an osmotin from the resurrection plant Tripogon loliiformis (TlOsm) was characterized and functionally analyzed under abiotic stress conditions in T. loliiformis as well as in transgenic Nicotiana tabacum (tobacco) and Oryza sativa (rice) plants. Real-time PCR analysis on mixed elicitor cDNA libraries from T. loliiformis showed that TlOsm was upregulated a 1000-fold during the early stages of osmotic stresses (cold, drought, and salinity) in both shoots and roots but downregulated in shoots during heat stress. There was no change in TlOsm gene expression in roots of heat-stressed plants and during plant development. The plasma membrane localization of TlOsm was showed in fluorescent-tagged TlOsm tobacco plants using confocal laser scanning microscopic analysis. Transgenic rice plants expressing TlOsm were assessed for enhanced tolerance to salinity, drought and cold stresses. Constitutively expressed TlOsm in transgenic rice plants showed increased tolerance to cold, drought and salinity stress when compared with the wild-type and vector control counterparts. This was evidenced by maintained growth, retained higher water content and membrane integrity, and improved survival rate of TlOsm-expressing plants. The results thus indicate the involvement of TlOsm in plant response to multiple abiotic stresses, possibly through the signaling pathway, and highlight its potential applications for engineering crops with improved tolerance to cold, drought and salinity stress.
渗透素是一种与植物非生物和生物胁迫反应相关的关键蛋白。在本研究中,对来自复苏植物三角状叶滨藜(Tripogon loliiformis)的渗透素(TlOsm)进行了表征,并在三角状叶滨藜以及转基因烟草(Nicotiana tabacum)和水稻(Oryza sativa)植株的非生物胁迫条件下进行了功能分析。对三角状叶滨藜混合诱导子 cDNA 文库的实时 PCR 分析表明,TlOsm 在茎和根中渗透胁迫(冷、干旱和盐度)的早期阶段被上调了 1000 倍,但在热胁迫下茎中的表达下调。在热胁迫下的植物根中以及在植物发育过程中,TlOsm 基因表达没有变化。利用共聚焦激光扫描显微镜分析,在荧光标记的 TlOsm 烟草植株中显示了 TlOsm 的质膜定位。对表达 TlOsm 的转基因水稻植株进行了耐盐、耐旱和耐冷胁迫能力的评估。与野生型和载体对照相比,组成型表达 TlOsm 的转基因水稻植株对冷、干旱和盐度胁迫的耐受性增强。这表现在 TlOsm 表达植株的生长保持、更高的含水量和膜完整性以及提高的存活率。因此,研究结果表明 TlOsm 参与了植物对多种非生物胁迫的反应,可能通过信号通路,并强调了其在工程作物中提高对冷、干旱和盐度胁迫的耐受性方面的潜在应用。