Wu Jiadong, He Dongyan, Wang Yue, Liu Sijia, Du Yuxin, Wang Haofei, Tan Shuxian, Zhang Deqiang, Xie Jianbo
State Key Laboratory of Tree Genetics and Breeding, College of Biological Sciences and Technology, Beijing Forestry University, Beijing, 100083, China.
National Engineering Research Center of Tree Breeding and Ecological Restoration, College of Biological Sciences and Technology, Beijing Forestry University, No. 35, Qinghua East Road, Beijing, 100083, P. R. China.
Sci Data. 2025 Apr 30;12(1):717. doi: 10.1038/s41597-025-05029-1.
The rhizosphere microbiota recruited by plants contributes significantly to maintaining host productivity and resisting stress. However, the genetic mechanisms by which plants regulate this recruitment process remain largely unclear. Here, we generated a comprehensive dataset, including 27 root transcriptomes, 27 root metabolomes, and 54 bulk or rhizosphere soil 16S rRNA amplicons across nine poplar species from four sections grown in nutrient-poor natural soil, along with eleven growth phenotype data. We provided a thorough description of this dataset, followed by a comprehensive co-expression network analysis example that broke down the wall of the four-way relationship between plant gene-metabolite-microbe-phenotype, thus identifying the links between plant gene expression, metabolite accumulation, growth behavior, and rhizosphere microbiome variation under nutrient-poor conditions. Overall, this dataset enhances our understanding of plant and microbe interactions, offering valuable strategies and novel insights for resolving how plants regulate rhizosphere microbial compositions and functions, thereby improving host fitness, which will benefit future research.
植物招募的根际微生物群对维持宿主生产力和抵抗胁迫有显著贡献。然而,植物调节这一招募过程的遗传机制仍 largely 不清楚。在这里,我们生成了一个综合数据集,包括来自四个组的九个杨树品种在营养贫瘠的天然土壤中生长的 27 个根转录组、27 个根代谢组和 54 个 bulk 或根际土壤 16S rRNA 扩增子,以及 11 个生长表型数据。我们对这个数据集进行了全面描述,随后给出了一个综合共表达网络分析示例,该示例打破了植物基因 - 代谢物 - 微生物 - 表型之间的四向关系壁垒,从而确定了营养贫瘠条件下植物基因表达、代谢物积累、生长行为和根际微生物组变异之间的联系。总体而言,这个数据集增强了我们对植物与微生物相互作用的理解,为解决植物如何调节根际微生物组成和功能从而提高宿主适应性提供了有价值的策略和新颖见解,这将有益于未来的研究。