Casaretto José A, El-Kereamy Ashraf, Zeng Bin, Stiegelmeyer Suzy M, Chen Xi, Bi Yong-Mei, Rothstein Steven J
Department of Molecular and Cellular Biology, University of Guelph, Guelph, ON, N1G 2W1, Canada.
University of California, Agriculture and Natural Resources, Cooperative Extension - Kern County, Bakersfield, CA, 93307, USA.
BMC Genomics. 2016 Apr 29;17:312. doi: 10.1186/s12864-016-2659-5.
Plant response mechanisms to heat and drought stresses have been considered in strategies for generating stress tolerant genotypes, but with limited success. Here, we analyzed the transcriptome and improved tolerance to heat stress and drought of maize plants over-expressing the OsMYB55 gene.
Over-expression of OsMYB55 in maize decreased the negative effects of high temperature and drought resulting in improved plant growth and performance under these conditions. This was evidenced by the higher plant biomass and reduced leaf damage exhibited by the transgenic lines compared to wild type when plants were subjected to individual or combined stresses and during or after recovery from stress. A global transcriptomic analysis using RNA sequencing revealed that several genes induced by heat stress in wild type plants are constitutively up-regulated in OsMYB55 transgenic maize. In addition, a significant number of genes up-regulated in OsMYB55 transgenic maize under control or heat treatments have been associated with responses to abiotic stresses including high temperature, dehydration and oxidative stress. The latter is a common and major consequence of imposed heat and drought conditions, suggesting that this altered gene expression may be associated with the improved stress tolerance in these transgenic lines. Functional annotation and enrichment analysis of the transcriptome also pinpoint the relevance of specific biological processes for stress responses.
Our results show that expression of OsMYB55 can improve tolerance to heat stress and drought in maize plants. Enhanced expression of stress-associated genes may be involved in OsMYB55-mediated stress tolerance. Possible implications for the improved tolerance to heat stress and drought of OsMYB55 transgenic maize are discussed.
在培育耐胁迫基因型的策略中,已考虑植物对热胁迫和干旱胁迫的响应机制,但成效有限。在此,我们分析了过表达OsMYB55基因的玉米植株的转录组,并提高了其对热胁迫和干旱的耐受性。
在玉米中过表达OsMYB55可降低高温和干旱的负面影响,从而在这些条件下改善植株生长和表现。当植株受到单独或复合胁迫时以及胁迫期间或恢复后,与野生型相比,转基因株系表现出更高的植物生物量和更少的叶片损伤,这证明了上述结论。使用RNA测序进行的全局转录组分析表明,野生型植株中受热胁迫诱导的几个基因在OsMYB55转基因玉米中组成性上调。此外,在对照或热处理下,OsMYB55转基因玉米中大量上调的基因与对包括高温、脱水和氧化胁迫在内的非生物胁迫的响应有关。后者是施加热胁迫和干旱条件的常见且主要的后果,这表明这种基因表达的改变可能与这些转基因株系中胁迫耐受性的提高有关。转录组的功能注释和富集分析也指出了特定生物学过程与胁迫响应的相关性。
我们的结果表明,OsMYB55的表达可提高玉米植株对热胁迫和干旱的耐受性。胁迫相关基因的增强表达可能参与了OsMYB55介导的胁迫耐受性。讨论了OsMYB55转基因玉米对热胁迫和干旱耐受性提高的可能影响。