生物
共生
细菌
微生物群
生态系统
外生菌根
生态学
寄主(生物学)
植物
菌根
进化生物学
遗传学
作者
Louis Berrios,Jay Yeam,Lindsey Holm,Wallis Robinson,Peter T. Pellitier,Mei Lin Chin,Terry W. Henkel,Kabir G. Peay
出处
期刊:Current Biology
[Elsevier]
日期:2023-07-01
卷期号:33 (14): 2878-2887.e4
被引量:8
标识
DOI:10.1016/j.cub.2023.06.010
摘要
Bacteria, ectomycorrhizal (EcM) fungi, and land plants have been coevolving for nearly 200 million years, and their interactions presumably contribute to the function of terrestrial ecosystems. The direction, stability, and strength of bacteria-EcM fungi interactions across landscapes and across a single plant host, however, remains unclear. Moreover, the genetic mechanisms that govern them have not been addressed. To these ends, we collected soil samples from Bishop pine forests across a climate-latitude gradient spanning coastal California, fractionated the soil samples based on their proximity to EcM-colonized roots, characterized the microbial communities using amplicon sequencing, and generated linear regression models showing the impact that select bacterial taxa have on EcM fungal abundance. In addition, we paired greenhouse experiments with transcriptomic analyses to determine the directionality of these relationships and identify which genes EcM-synergist bacteria express during tripartite symbioses. Our data reveal that ectomycorrhizas (i.e., EcM-colonized roots) enrich conserved bacterial taxa across climatically heterogeneous regions. We also show that phylogenetically diverse EcM synergists are positively associated with plant and fungal growth and have unique gene expression profiles compared with EcM-antagonist bacteria. In sum, we identify common mechanisms that facilitate widespread and diverse multipartite symbioses, which inform our understanding of how plants develop in complex environments.
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