Guo Huiyan, Wang Yucheng, Wang Liuqiang, Hu Ping, Wang Yanmin, Jia Yuanyuan, Zhang Chunrui, Zhang Yu, Zhang Yiming, Wang Chao, Yang Chuanping
State Key Laboratory of Tree Genetics and Breeding, Northeast Forestry University, Harbin, China.
Department of Life Science and Technology, Mudanjiang Normal College, Mudanjiang, China.
Plant Biotechnol J. 2017 Jan;15(1):107-121. doi: 10.1111/pbi.12595. Epub 2016 Aug 1.
Plant MYB transcription factors control diverse biological processes, such as differentiation, development and abiotic stress responses. In this study, we characterized BplMYB46, an MYB gene from Betula platyphylla (birch) that is involved in both abiotic stress tolerance and secondary wall biosynthesis. BplMYB46 can act as a transcriptional activator in yeast and tobacco. We generated transgenic birch plants with overexpressing or silencing of BplMYB46 and subjected them to gain- or loss-of-function analysis. The results suggest that BplMYB46 improves salt and osmotic tolerance by affecting the expression of genes including SOD, POD and P5CS to increase both reactive oxygen species scavenging and proline levels. In addition, BplMYB46 appears to be involved in controlling stomatal aperture to reduce water loss. Overexpression of BplMYB46 increases lignin deposition, secondary cell wall thickness and the expression of genes in secondary cell wall formation. Further analysis indicated that BplMYB46 binds to MYBCORE and AC-box motifs and may directly activate the expression of genes involved in abiotic stress responses and secondary cell wall biosynthesis whose promoters contain these motifs. The transgenic BplMYB46-overexpressing birch plants, which have improved salt and osmotic stress tolerance, higher lignin and cellulose content and lower hemicellulose content than the control, have potential applications in the forestry industry.
植物MYB转录因子控制多种生物学过程,如分化、发育和非生物胁迫响应。在本研究中,我们对来自白桦(Betula platyphylla)的MYB基因BplMYB46进行了表征,该基因参与非生物胁迫耐受性和次生壁生物合成。BplMYB46在酵母和烟草中可作为转录激活因子。我们构建了BplMYB46过表达或沉默的转基因白桦植株,并对其进行功能获得或功能缺失分析。结果表明,BplMYB46通过影响包括SOD、POD和P5CS在内的基因表达来提高盐耐受性和渗透耐受性,从而增加活性氧清除能力和脯氨酸水平。此外,BplMYB46似乎参与控制气孔孔径以减少水分流失。BplMYB46的过表达增加了木质素沉积、次生细胞壁厚度以及次生细胞壁形成相关基因的表达。进一步分析表明,BplMYB46与MYBCORE和AC-box基序结合,并可能直接激活启动子中含有这些基序的非生物胁迫响应和次生细胞壁生物合成相关基因的表达。与对照相比,过表达BplMYB46的转基因白桦植株具有更高的盐和渗透胁迫耐受性、更高的木质素和纤维素含量以及更低的半纤维素含量,在林业产业中具有潜在应用价值。