Elevated O3 concentrations alter the compartment‐specific microbial communities inhabiting rust‐infected poplars

生物 叶圈 根际 非生物成分 Rust(编程语言) 微生物群 植物 微生物种群生物学 生态学 细菌 计算机科学 遗传学 生物信息学 程序设计语言
作者
Siqi Tao,Haiyue Yin,Yue Fang,Yunxia Zhang,Naili Zhang,Laiye Qu
出处
期刊:Environmental Microbiology [Wiley]
卷期号:25 (5): 990-1006 被引量:1
标识
DOI:10.1111/1462-2920.16332
摘要

Elevated ozone (O3 ) can affect the susceptivity of plants to rust pathogens. However, the collective role of microbiomes involved in such interaction remains largely elusive. We exposed two cultivated poplar clones exhibiting differential O3 sensitivities, to non-filtered ambient air (NF), NF + 40 ppb or NF + 60 ppb O3 -enriched air in field open-top chambers and then inoculated Melampsora larici-populina urediniospores to study their response to rust infection and to investigate how microbiomes inhabiting four compartments (phyllosphere, rhizosphere, root endosphere, bulk soil) are involved in this response. We found that hosts with higher O3 sensitivity had significantly lower rust severity than hosts with lower sensitivity. Furthermore, the effect of increased O3 on the diversity and composition of microbial communities was highly dependent on poplar compartments, with the microbial network complexity patterns being completely opposite between the two clones. Notably, microbial source analysis estimated that phyllosphere fungal communities predominately derived from root endosphere and vice versa, suggesting a potential transmission mechanism between plant above- and below-ground systems. These promising results suggest that further investigations are needed to better understand the interactions of abiotic and biotic stresses on plant performance and the role of the microbiome in driving these changes.
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