Jiangsu Engineering and Technology Research Center for Industrialization of Microbial Resources, Jiangsu Key Laboratory for Microbes and Functional Genomics, College of Life Sciences, Nanjing Normal University, 210023, Nanjing, China.
Centre for Novel Agricultural Products, Department of Biology, University of York, YO10 5DD, York, United Kingdom.
Plant Mol Biol. 2022 Aug;109(6):703-715. doi: 10.1007/s11103-022-01268-7. Epub 2022 May 6.
Fungal endophytes establish symbiotic relationships with host plants, which results in a mutual growth benefit. However, little is known about the plant genetic response underpinning endophyte colonization. Phomopsis liquidambaris usually lives as an endophyte in a wide range of asymptomatic hosts and promotes biotic and abiotic stress resistance. In this study, we show that under low nitrogen conditions P. liquidambaris promotes rice growth in a hydroponic system, which is free of other microorganisms. In order to gain insights into the mechanisms of plant colonization by P. liquidambaris under low nitrogen conditions, we compared root and shoot transcriptome profiles of root-inoculated rice at different colonization stages. We determined that genes related to plant growth promotion, such as gibberellin and auxin related genes, were up-regulated at all developmental stages both locally and systemically. The largest group of up-regulated genes (in both roots and shoots) were related to flavonoid biosynthesis, which is involved in plant growth as well as antimicrobial compounds. Furthermore, genes encoding plant defense-related endopeptidase inhibitors were strongly up-regulated at the early stage of colonization. Together, these results provide new insights into the molecular mechanisms of plant-microbe mutualism and the promotion of plant growth by a fungal endophyte under nitrogen-deficient conditions.
真菌内生菌与宿主植物建立共生关系,从而实现互利共生。然而,人们对支持内生菌定殖的植物遗传反应知之甚少。青霉菌通常作为一种内生菌存在于广泛的无症状宿主中,并促进生物和非生物胁迫抗性。在这项研究中,我们表明,在低氮条件下,青霉菌在无其他微生物的水培系统中促进水稻生长。为了深入了解青霉菌在低氮条件下定殖植物的机制,我们比较了不同定殖阶段根内接种水稻的根和芽转录组谱。我们发现,与植物生长促进相关的基因,如赤霉素和生长素相关基因,在局部和系统水平上均在所有发育阶段上调。上调最多的基因(在根和芽中)与类黄酮生物合成有关,类黄酮生物合成既参与植物生长,也参与抗菌化合物的形成。此外,编码植物防御相关内肽酶抑制剂的基因在定殖的早期阶段强烈上调。总之,这些结果为植物-微生物共生的分子机制以及在氮缺乏条件下真菌内生菌对植物生长的促进提供了新的见解。