Institute of Bioengineering, Guangdong Academy of Sciences, Guangzhou, 510316, Guangdong, China.
Sci Rep. 2021 Mar 16;11(1):6024. doi: 10.1038/s41598-021-85433-w.
Plant-microbe interactions can modulate the plant metabolome, but there is no information about how different soil microbiomes could affect the sugarcane metabolome and its quality. Here, we collected soil and stalk samples from bitter sugarcane (BS) and sweet sugarcane (SS) to conduct chemical analysis, microbiome and metabolome analysis. Our data revealed lower species diversity in the BS group than in the SS group, and 18 discriminatory OTUs (relative abundance ≥ 0.01%) were identified. Sugarcane metabolomic analysis indicated the different abundances of 247 metabolites between the two groups in which 22 distinct metabolites involved in two flavonoid biosynthesis pathways were revealed. Integrated analysis between soil microbial taxa, stalk chemical components, and soil properties showed that the flavonoid content in stalks and the nitrogen concentration in soil were highly correlated with the soil microbiome composition. Bacteria at the genus level exhibited greater associations with distinct metabolites, and six genera were independently associated with 90.9% of the sugarcane metabolites that play a major metabolic role in sugarcane. In conclusion, this study provided evidences that the interaction between plant-microbiome can change the plant metabolome.
植物-微生物相互作用可以调节植物代谢组,但关于不同土壤微生物组如何影响甘蔗代谢组及其品质的信息还不清楚。在这里,我们收集了苦甘蔗 (BS) 和甜甘蔗 (SS) 的土壤和茎样本,进行了化学分析、微生物组和代谢组分析。我们的数据显示,BS 组的物种多样性低于 SS 组,并且鉴定出了 18 个有区别的 OTUs(相对丰度≥0.01%)。甘蔗代谢组学分析表明,两组之间有 247 种代谢物的丰度不同,其中 22 种不同的代谢物涉及两个类黄酮生物合成途径。土壤微生物分类群、茎化学成分和土壤特性之间的综合分析表明,茎中的类黄酮含量和土壤中的氮浓度与土壤微生物群落组成高度相关。在属水平上,细菌与不同的代谢物具有更大的相关性,有 6 个属与 90.9%的甘蔗代谢物独立相关,这些代谢物在甘蔗的主要代谢中起着主要作用。总之,本研究提供了证据表明植物-微生物相互作用可以改变植物代谢组。