Sugimura Yusaku, Saito Katsuharu
Department of Bioscience and Food Production Science, Interdisciplinary Graduate School of Science and Technology, Shinshu University, Minamiminowa, Nagano, 399-4598, Japan.
Faculty of Agriculture, Shinshu University, Minamiminowa, Nagano, 399-4598, Japan.
Mycorrhiza. 2017 Feb;27(2):139-146. doi: 10.1007/s00572-016-0735-y. Epub 2016 Oct 20.
The development of arbuscular mycorrhiza (AM) is strongly suppressed under high-phosphate (Pi) conditions. To investigate AM fungal responses during the suppression of AM by high Pi, we performed an RNA-seq analysis of Rhizophagus irregularis colonizing Lotus japonicus roots at different levels of Pi (20, 100, 300, and 500 μM). AM fungal colonization decreased markedly under high-Pi conditions. In total, 163 fungal genes were differentially expressed among the four Pi treatments. Among these genes, a cell cycle-regulatory gene, cyclin-dependent kinase CDK1, and several DNA replication- and mitosis-related genes were repressed under high-Pi conditions. More than 20 genes encoding secreted proteins were also downregulated by high-Pi conditions, including the strigolactone-induced putative secreted protein 1 gene that enhances AM fungal colonization. In contrast, the expression of genes related to aerobic respiration and transport in R. irregularis were largely unaffected. Our data suggest that high Pi suppresses the expression of genes associated with fungal cell cycle progression or that encode secreted proteins that may be required for intercellular hyphal growth and arbuscule formation. However, high Pi has little effect on the transcriptional regulation of the primary metabolism or transport in preformed fungal structures.
在高磷(Pi)条件下,丛枝菌根(AM)的发育受到强烈抑制。为了研究高磷抑制AM过程中AM真菌的反应,我们对定殖于不同磷水平(20、100、300和500 μM)的日本百脉根根系中的不规则根孢囊霉进行了RNA测序分析。在高磷条件下,AM真菌的定殖显著减少。在这四种磷处理中,共有163个真菌基因差异表达。在这些基因中,一个细胞周期调控基因,细胞周期蛋白依赖性激酶CDK1,以及几个与DNA复制和有丝分裂相关的基因在高磷条件下受到抑制。超过20个编码分泌蛋白的基因也因高磷条件而下调,包括增强AM真菌定殖的独脚金内酯诱导的假定分泌蛋白1基因。相比之下,不规则根孢囊霉中与有氧呼吸和转运相关的基因表达基本不受影响。我们的数据表明,高磷抑制了与真菌细胞周期进程相关的基因表达,或抑制了编码可能是细胞间菌丝生长和丛枝形成所需分泌蛋白的基因表达。然而,高磷对已形成的真菌结构中的初级代谢或转运的转录调控影响很小。