Critical transition of soil bacterial diversity and composition triggered by nitrogen enrichment

生物地球化学循环 生态系统 生态学 生物 草原 群落结构 陆地生态系统 多样性指数 微生物种群生物学 农学 细菌 物种丰富度 遗传学
作者
Weixing Liu,Lin Jiang,Sen Yang,Zhou Wang,Rui Tian,Ziyang Peng,Yongliang Chen,Xingxu Zhang,Jialiang Kuang,Ning Ling,Shaopeng Wang,Lingli Liu
出处
期刊:Ecology [Wiley]
卷期号:101 (8): e03053-e03053 被引量:192
标识
DOI:10.1002/ecy.3053
摘要

Abstract Soil bacterial communities are pivotal in regulating terrestrial biogeochemical cycles and ecosystem functions. The increase in global nitrogen (N) deposition has impacted various aspects of terrestrial ecosystems, but we still have a rudimentary understanding of whether there is a threshold for N input level beyond which soil bacterial communities will experience critical transitions. Using high‐throughput sequencing of the 16S rRNA gene, we examined soil bacterial responses to a long‐term (13 yr), multi‐level, N addition experiment in a temperate steppe of northern China. We found that plant diversity decreased in a linear fashion with increasing N addition. However, bacterial diversity responded nonlinearly to N addition, such that it was unaffected by N input below 16 g N·m −2 ·yr −1 , but decreased substantially when N input exceeded 32 g N·m −2 ·yr −1 . A meta‐analysis across four N addition experiments in the same study region further confirmed this nonlinear response of bacterial diversity to N inputs. Substantial changes in soil bacterial community structure also occurred between N input levels of 16 to 32 g N·m −2 ·yr −1 . Further analysis revealed that the loss of soil bacterial diversity was primarily attributed to the reduction in soil pH, whereas changes in soil bacterial community were driven by the combination of increased N availability, reduced soil pH, and changes in plant community structure. In addition, we found that N addition shifted bacterial communities toward more putatively copiotrophic taxa. Overall, our study identified a threshold of N input level for bacterial diversity and community composition. The nonlinear response of bacterial diversity to N input observed in our study indicates that although bacterial communities are resistant to low levels of N input, further increase in N input could trigger a critical transition, shifting bacterial communities to a low‐diversity state.
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