Xiong Jinbo, He Zhili, Shi Shengjing, Kent Angela, Deng Ye, Wu Liyou, Van Nostrand Joy D, Zhou Jizhong
1] Faculty of Marine Sciences, Ningbo University, Ningbo, 315211, China [2] Institute for Environmental Genomics and Department of Microbiology and Plant Biology, the University of Oklahoma, Norman, OK 73019.
Institute for Environmental Genomics and Department of Microbiology and Plant Biology, the University of Oklahoma, Norman, OK 73019.
Sci Rep. 2015 Mar 20;5:9316. doi: 10.1038/srep09316.
Atmospheric CO2 concentration is continuously increasing, and previous studies have shown that elevated CO2 (eCO2) significantly impacts C3 plants and their soil microbial communities. However, little is known about effects of eCO2 on the compositional and functional structure, and metabolic potential of soil microbial communities under C4 plants. Here we showed that a C4 maize agroecosystem exposed to eCO2 for eight years shifted the functional and phylogenetic structure of soil microbial communities at both soil depths (0-5 cm and 5-15 cm) using EcoPlate and functional gene array (GeoChip 3.0) analyses. The abundances of key genes involved in carbon (C), nitrogen (N) and phosphorus (P) cycling were significantly stimulated under eCO2 at both soil depths, although some differences in carbon utilization patterns were observed between the two soil depths. Consistently, CO2 was found to be the dominant factor explaining 11.9% of the structural variation of functional genes, while depth and the interaction of depth and CO2 explained 5.2% and 3.8%, respectively. This study implies that eCO2 has profound effects on the functional structure and metabolic potential/activity of soil microbial communities associated with C4 plants, possibly leading to changes in ecosystem functioning and feedbacks to global change in C4 agroecosystems.
大气二氧化碳浓度持续上升,先前的研究表明,高浓度二氧化碳(eCO2)会对C3植物及其土壤微生物群落产生显著影响。然而,关于eCO2对C4植物下土壤微生物群落的组成和功能结构以及代谢潜力的影响,我们知之甚少。在此,我们通过EcoPlate和功能基因芯片(GeoChip 3.0)分析表明,暴露于eCO2八年的C4玉米农业生态系统改变了两个土壤深度(0 - 5厘米和5 - 15厘米)土壤微生物群落的功能和系统发育结构。在两个土壤深度下,eCO2均显著刺激了参与碳(C)、氮(N)和磷(P)循环的关键基因丰度,尽管两个土壤深度之间在碳利用模式上存在一些差异。一致地,发现二氧化碳是解释功能基因结构变异的11.9%的主导因素,而深度以及深度与二氧化碳的相互作用分别解释了5.2%和3.8%。本研究表明,eCO2对与C4植物相关联的土壤微生物群落的功能结构和代谢潜力/活性具有深远影响,可能导致C4农业生态系统中生态系统功能的变化以及对全球变化的反馈。