生物
背景(考古学)
生态系统
特质
基因组
基因
土壤微生物学
表型
细菌
数量性状位点
16S核糖体RNA
性状
微生物生态学
生物技术
遗传学
生态学
古生物学
程序设计语言
计算机科学
作者
Junhui Li,Rebecca L. Mau,Paul Dijkstra,Benjamin J. Koch,Egbert Schwartz,Xiao‐Jun Allen Liu,Ember M. Morrissey,Steven J. Blazewicz,Jennifer Pett‐Ridge,Bram WG Stone,Michaela Hayer,Bruce A. Hungate
出处
期刊:The ISME Journal
[Springer Nature]
日期:2019-05-03
卷期号:13 (9): 2162-2172
被引量:102
标识
DOI:10.1038/s41396-019-0422-z
摘要
Abstract Relationships between microbial genes and performance are often evaluated in the laboratory in pure cultures, with little validation in nature. Here, we show that genomic traits related to laboratory measurements of maximum growth potential failed to predict the growth rates of bacteria in unamended soil, but successfully predicted growth responses to resource pulses: growth increased with 16S rRNA gene copy number and declined with genome size after substrate addition to soils, responses that were repeated in four different ecosystems. Genome size best predicted growth rate in response to addition of glucose alone; adding ammonium with glucose weakened the relationship, and the relationship was absent in nutrient-replete pure cultures, consistent with the idea that reduced genome size is a mechanism of nutrient conservation. Our findings demonstrate that genomic traits of soil bacteria can map to their ecological performance in nature, but the mapping is poor under native soil conditions, where genomic traits related to stress tolerance may prove more predictive. These results remind that phenotype depends on environmental context, underscoring the importance of verifying proposed schemes of trait-based strategies through direct measurement of performance in nature, an important and currently missing foundation for translating microbial processes from genes to ecosystems.
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