不同pH和氧气条件下土壤古菌与海洋古菌的竞争适应机制
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国家自然科学基金重点项目(41530857)资助


Competitive Adaptation Mechanism of Soil Archaea and Marine Archaea Under Different pH and Oxygen Conditions
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    摘要:

    pH和氧气是古菌氨氧化活性的关键限制因子。然而,复杂土壤中不同古菌生态型(土壤古菌和海洋古菌)对pH和氧气的竞争适应规律尚未有相关报道。选择活性氨氧化古菌(ammonia-oxidizing archaea,AOA)为类海洋古菌Group1.1a-associated的酸性森林土(pH5.40)和活性氨氧化古菌为土壤类古菌Group 1.1b的碱性水稻土(pH8.02),调节混合土壤pH和氧气浓度;设置稳定性同位素核酸探针实验,通过微宇宙室内培养,监测土壤硝化强度;利用实时荧光定量qPCR和454高通量测序研究pH和氧气对土壤氨氧化古菌和细菌的影响规律。结果表明:pH3.8下没有硝化作用发生,而pH6.0和7.6则发生了强烈硝化作用,且高氧环境下硝化作用强于低氧环境;加底物培养后,氨氧化古菌数量明显增加;活性氨氧化古菌几乎全为土壤类古菌Group 1.1b。研究表明:尽管氧气对硝化作用也有一定影响,但pH是影响硝化作用的主要因素;与类海洋古菌相比,土壤类古菌Group 1.1b更能适应高氧和低氧的碱性土壤环境,因此具有更强的竞争力。

    Abstract:

    【Objective】pH and oxygen were the key limiting factors for the ammonia oxidation activity of archaea. The law of competition and adaptation of different archaea ecotypes (soil archaea and marine archaea) to pH and oxygen in complex soils are still unclear.【Method】Ammonia-oxidizing archaea (AOA) was selected as the marine archaea Group1.1a-associated with acid forest soil with pH = 5.40, and the active ammonia-oxidizing archaea were selected as the soil archaea Group 1.1b-associated with alkaline paddy soil with pH = 8.02. After adjusting the pH and oxygen concentration of the mixed soil, a stable isotopic probe microcosm indoor culture experiment was set up to analyze the intensity of soil nitrification. Also, quantitative PCR and 454 high-throughput sequencings were employed to study the effect of different pH and oxygen conditions on the number of soil ammonia-oxidizing archaea and bacteria and also the types of active ammonia-oxidizing microorganisms present.【Result】Compared with zero time, the contents of nitrate nitrogen and ammonium nitrogen had no change at pH3.8; At pH6.0 and 7.6, nitrate nitrogen content increased by 23 times and 19 times, respectively, and the ammonium nitrogen content decreased significantly. The results show that after the soil samples were mixed, there was no nitrification at pH 3.8, while strong nitrification occurred at pH 6.0 and 7.6. Also, the nitrification in a high-oxygen environment was stronger than that in a low-oxygen environment. After substrate culture, the number of oxidizing archaea was increased significantly; DNA-SIP shows that the active ammonia oxidizing archaea with pH 6.0 and 7.6 were almost all soil archaea Group 1.1b.【Conclusion】 This study reveals that pH rather than oxygen is the main factor affecting nitrification. Although oxygen also has a certain effect on nitrification; in neutral and alkaline soil, soil archaea lineage has greater activity in high O2 and low O2 environment and have more adaptive capacity than marine lineage.

    参考文献
    [1] Sauder L A,Albertsen M,Engel K,et al. Cultivation and characterization of Candidatus Nitrosocosmicus exaquare,an ammonia-oxidizing archaeon from a municipal wastewater treatment system[J]. The ISME Journal,2017,11(5):1142-1157.
    [2] Liu L T. Enrichment and characteristics of soil ammonia- oxidizing archaea and its mechanism of high ammonia tolerance[D]. Guangzhou:South China University of Technology,2019.[刘亮霆. 土壤氨氧化古菌的富集、特性及耐高氨氮机制研究[D].广州:华南理工大学,2019.]
    [3] van Kessel M A H J,Speth D R,Albertsen M,et al. Complete nitrification by a single microorganism[J]. Nature,2015,528(7583):555-559.
    [4] Fierer N,Jackson R B. The diversity and biogeography of soil bacterial communities[J]. Proceedings of the National Academy of Sciences of the United States of America,2006,103(3):626-631.
    [5] Lauber C L,Strickland M S,Bradford M A,et al. The influence of soil properties on the structure of bacterial and fungal communities across land-use types[J]. Soil Biology & Biochemistry,2008,40(9):2407-2415.
    [6] Nicol G W,Leininger S,Schleper C,et al. The influence of soil pH on the diversity,abundance and transcriptional activity of ammonia oxidizing archaea and bacteria[J]. Environmental Microbiology,2008,10(11):2966-2978.
    [7] Yao H Y,Gao Y M,Nicol G W,et al. Links between ammonia oxidizer community structure,abundance,and nitrification potential in acidic soils[J]. Applied and Environmental Microbiology,2011,77(13):4618-4625.
    [8] Zhang L M,Hu H W,Shen J P,et al. Ammonia-oxidizing archaea have more important role than ammonia-oxidizing bacteria in ammonia oxidation of strongly acidic soils[J]. The ISME Journal,2012,6(5):1032-1045.
    [9] Wang Y F,Gu J D. Effects of allylthiourea,salinity,and pH on ammonia/ammonium-oxidizing prokaryotes in mangrove sediment incubated in laboratory microcosms[J]. Applied Microbiology and Biotechnology,2014,98(7):3257-3274.
    [10] Xia W W,Zhang C X,Zeng X W,et al. Autotrophic growth of nitrifying community in an agricultural soil[J]. The ISME Journal,2011,5(7):1226-1236.
    [11] Jung J,Yeom J,Kim J,et al. Change in gene abundance in the nitrogen biogeochemical cycle with temperature and nitrogen addition in Antarctic soils[J]. Research in Microbiology,2011,162(10):1018-1026.
    [12] Kim J G,Jung M Y,Park S J,et al. Cultivation of a highly enriched ammonia-oxidizing archaeon of thaumarchaeotal group I.1b from an agricultural soil[J]. Environmental Microbiology,2012,14(6):1528-1543.
    [13] Abell G C J,Banks J,Ross D J,et al. Effects of estuarine sediment hypoxia on nitrogen fluxes and ammonia oxidizer gene transcription[J]. FEMS Microbiology Ecology,2011,75(1):111-122.
    [14] Pett-Ridge J,Petersen D G,Nuccio E,et al. Influence of oxic/anoxic fluctuations on ammonia oxidizers and nitrification potential in a wet tropical soil[J]. FEMS Microbiology Ecology,2013,85(1):179-194.
    [15] He J Z,Zhang L M. Key processes and microbial mechanisms of soil nitrogen transformation[J]. Microbiology China,2013,40(1):98-108.[贺纪正,张丽梅. 土壤氮素转化的关键微生物过程及机制[J]. 微生物学通报,2013,40(1):98-108.]
    [16] Lehtovirta-Morley L E,Stoecker K,Vilcinskas A,et al. Cultivation of an obligate acidophilic ammonia oxidizer from a nitrifying acid soil[J]. Proceedings of the National Academy of Sciences of the United States of America,2011,108(38):15892-15897.
    [17] Tian M,Guo J,Li J,et al. Effects of long-term fertilization on the abundance and composition of ammonia-oxidizing archaea and bacteria in paddy soil profiles[J]. Acta Pedologica Sinica,2021. DOI:10.11766/trxb202007140240.[田美洁,郭俊丽,黎娟,等. 长期施肥对水稻土剖面氨氧化古菌和细菌丰度及组成的影响[J]. 土壤学报,2021. DOI:10.11766/trxb202007140240.]
    [18] Gubry-Rangin C,Hai B,Quince C,et al. Niche specialization of terrestrial archaeal ammonia oxidizers[J]. Proceedings of the National Academy of Sciences of the United States of America,2011,108(52):21206-21211.
    [19] Wang B Z,Zheng Y,Huang R,et al. Active ammonia oxidizers in an acidic soil are phylogenetically closely related to neutrophilic archaeon[J]. Applied and Environmental Microbiology,2014,80(5):1684-1691.
    [20] Zhou X,Huang R,Song G,et al. Restoration of microbial ammonia oxidizers in air-dried forest soils upon wetting[J]. Acta Microbiologica Sinica,2014,54(11):1311-1322.[周雪,黄蓉,宋歌,等. 风干土壤中氨氧化微生物的恢复[J]. 微生物学报,2014,54(11):1311-1322.]
    [21] Ayton J,Aislabie J,Barker G M,et al. Crenarchaeota affiliated with group 1.1b are prevalent in coastal mineral soils of the Ross Sea region of Antarctica[J]. Environmental Microbiology,2010,12(3):689-703.
    [22] Nicol G W,Tscherko D,Chang L S,et al. Crenarchaeal community assembly and microdiversity in developing soils at two sites associated with deglaciation[J]. Environmental Microbiology,2006,8(8):1382-1393.
    [23] Jia Z J,Conrad R. Bacteria rather than Archaea dominate microbial ammonia oxidation in an agricultural soil[J]. Environmental Microbiology,2009,11(7):1658-1671.
    [24] Wang B Z,Zhao J,Guo Z Y,et al. Differential contributions of ammonia oxidizers and nitrite oxidizers to nitrification in four paddy soils[J]. The ISME Journal,2015,9(5):1062-1075.
    [25] Liu S,Hu B L,He Z F,et al. Ammonia-oxidizing Archaea have better adaptability in oxygenated/hypoxic alternant conditions compared to ammonia-oxidizing bacteria[J]. Applied Microbiology and Biotechnology,2015,99(20):8587-8596.
    [26] Liu S,Shen L D,Lou L P,et al. Spatial distribution and factors shaping the niche segregation of ammonia- oxidizing microorganisms in the Qiantang River,China[J]. Applied and Environmental Microbiology,2013,79(13):4065-4071.
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熊旭梅,周雪,郭佳,贾仲君,蒋先军.不同pH和氧气条件下土壤古菌与海洋古菌的竞争适应机制[J].土壤学报,2022,59(3):833-843. DOI:10.11766/trxb202101220668 XIONG Xumei, ZHOU Xue, GUO Jia, JIA Zhongjun, JIANG Xianjun. Competitive Adaptation Mechanism of Soil Archaea and Marine Archaea Under Different pH and Oxygen Conditions[J]. Acta Pedologica Sinica,2022,59(3):833-843.

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  • 收稿日期:2021-01-22
  • 最后修改日期:2021-05-14
  • 在线发布日期: 2022-04-16
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