Department of Plant Nutrition, College of Resources and Environmental Science, China Agricultural University, Beijing, 100193, China.
Crop Functional Genomics, Institute of Crop Science and Resource Conservation (INRES), University of Bonn, Bonn, 53113, Germany.
New Phytol. 2018 Feb;217(3):1240-1253. doi: 10.1111/nph.14893. Epub 2017 Nov 20.
Different root types of plants are colonized by a myriad of soil microorganisms, including fungi, which influence plant health and performance. The distinct functional and metabolic characteristics of these root types may influence root type-inhabiting fungal communities. We performed internal transcribed spacer (ITS) DNA profiling to determine the composition of fungal communities in field-grown axial and lateral roots of maize (Zea mays) and in response to two different soil phosphate (P) regimes. In parallel, these root types were subjected to transcriptome profiling by RNA sequencing (RNA-Seq). We demonstrated that fungal communities were influenced by soil P levels in a manner specific to root types. Moreover, maize transcriptome sequencing revealed root type-specific shifts in cell wall metabolism and defense gene expression in response to high P. Furthermore, lateral roots specifically accumulated defense-related transcripts at high P levels. This observation was correlated with a shift in fungal community composition, including a reduction in colonization by arbuscular mycorrhizal fungi, as observed in ITS sequence data and microscopic evaluation of root colonization. Our findings suggest soil nutrient-dependent changes in functional niches within root systems and provide new insights into the interaction of individual root types with soil microbiota.
不同根系类型的植物被大量土壤微生物定殖,包括真菌,这些微生物影响植物的健康和性能。这些根系类型的独特功能和代谢特征可能会影响根系定殖真菌群落。我们进行了内部转录间隔区(ITS)DNA 谱分析,以确定田间生长的玉米(Zea mays)轴向和侧根以及对两种不同土壤磷(P)条件的真菌群落组成。同时,这些根类型通过 RNA 测序(RNA-Seq)进行转录组谱分析。我们证明了真菌群落受土壤 P 水平的影响,这种影响方式与根类型有关。此外,玉米转录组测序揭示了细胞壁代谢和防御基因表达在高 P 条件下的根类型特异性变化。此外,在高 P 水平下,侧根特异性地积累了与防御相关的转录本。这一观察结果与真菌群落组成的变化相关,包括丛枝菌根真菌定殖的减少,这在 ITS 序列数据和根定殖的微观评估中都有观察到。我们的研究结果表明,根系内功能小生境会随土壤养分的变化而变化,并为个体根类型与土壤微生物群的相互作用提供了新的见解。