分解者
矿化(土壤科学)
优势(遗传学)
土壤有机质
生态学
植物凋落物
生态系统
土壤碳
营养物
微生物种群生物学
生物地球化学
有机质
生物
农学
营养循环
土壤生态学
土壤质量
土壤水分
土壤生物多样性
细菌
基因
生物化学
遗传学
作者
Johannes Rousk,Serita D. Frey
摘要
Resolving fungal and bacterial groups within the microbial decomposer community is thought to capture disparate life strategies for soil microbial decomposers, associating bacteria with an r ‐selected strategy for carbon (C) and nutrient use, and fungi with a K ‐selected strategy. Additionally, food‐web model‐based work has established a widely held belief that the bacterial decomposer pathway in soil supports high turnover rates of easily available substrates, while the slower fungal‐dominated decomposition pathway supports the decomposition of more complex organic material, thus characterizing the biogeochemistry of the ecosystem. We used a field experiment, the Detritus Input and Removal Treatments, or DIRT, experiment (Harvard Forest Long‐Term Ecological Research Site, USA) where litter and root inputs (control, no litter, double litter, or no tree roots) have been experimentally manipulated during 23 years, generating differences in soil C quality. We hypothesized (1) that δ 13 C enrichment would decrease with higher soil C quality and that a higher C quality would favor bacterial decomposers, (2) that the C mineralized in fungal‐dominated treatments would be of lower quality and also depleted in δ 13 C relative to bacterial‐dominated high‐quality soil C treatments, and (3) that higher C mineralization along with higher gross N mineralization rates would occur in bacterial‐dominated treatments compared with more fungal‐dominated treatments. The DIRT treatments resulted in a gradient of soil C quality, as shown by up to 4.5‐fold differences between the respiration per soil C between treatments. High‐quality C benefited fungal dominance, in direct contrast with our hypothesis. Further, there was no difference between the δ 13 CO 2 produced by a fungal compared with a bacterial‐dominated decomposer community. There were differences in C and N mineralization between DIRT treatments, but these were not related to the relative dominance of fungal and bacterial decomposers. Thus we find no support for the hypothesized differences between detrital food webs dominated by bacteria compared to those dominated by fungi. Rather, an association between high‐quality soil C and fungi emerges from our results. Consequently there is a need to revise our basic understanding for microbial communities and the processes they regulate in soil.
科研通智能强力驱动
Strongly Powered by AbleSci AI