Panahi Bahman, Frahadian Mohammad, Dums Jacob T, Hejazi Mohammad Amin
Department of Genomics, Branch for Northwest & West region, Agricultural Biotechnology Research Institute of Iran (ABRII), Agricultural Research, Education and Extension Organization (AREEO), Tabriz, Iran.
Department of Animal Science, Faculty of Agriculture, University of Tabriz, Tabriz, Iran.
Front Genet. 2019 Aug 29;10:752. doi: 10.3389/fgene.2019.00752. eCollection 2019.
Photosynthetic microalgae are potentially yielding sources of different high-value secondary metabolites. Salinity is a complex stress that influences various metabolite-related pathways in microalgae. To obtain a clear view of the underlying metabolic pathways and resolve contradictory information concerning the transcriptional regulation of species in salt stress conditions, RNA-seq meta-analysis along with systems levels analysis was conducted. A p-value combination technique with Fisher method was used for cross species meta-analysis on the transcriptomes of two and species. The potential functional impacts of core meta-genes were surveyed based on gene ontology and network analysis. In the current study, the integration of supervised machine-learning algorithms with RNA-seq meta-analysis was performed. The analysis shows that the lipid and nitrogen metabolism, structural proteins of photosynthesis apparatus, chaperone-mediated autophagy, and ROS-related genes are the keys and core elements of the salt stress response system. Cross-talk between Ca signal transduction, lipid accumulation, and ROS signaling network in salt stress conditions are also proposed. Our novel approach opens new avenues for better understanding of microalgae stress response mechanisms and for selection of candidate gene targets for metabolite production in microalgae.
光合微藻是不同高价值次生代谢产物的潜在来源。盐度是一种复杂的胁迫因素,会影响微藻中各种与代谢物相关的途径。为了清晰了解潜在的代谢途径,并解决有关盐胁迫条件下物种转录调控的矛盾信息,进行了RNA测序元分析以及系统水平分析。采用费舍尔方法的p值组合技术对两种和三种物种的转录组进行跨物种元分析。基于基因本体论和网络分析,研究了核心元基因的潜在功能影响。在本研究中,将监督机器学习算法与RNA测序元分析相结合。分析表明,脂质和氮代谢、光合作用装置的结构蛋白、伴侣介导的自噬以及与活性氧相关的基因是盐胁迫响应系统的关键和核心要素。还提出了盐胁迫条件下钙信号转导、脂质积累和活性氧信号网络之间的相互作用。我们的新方法为更好地理解微藻胁迫响应机制以及选择微藻代谢产物生产的候选基因靶点开辟了新途径。