芘对土壤微生物氮转化功能菌群的影响特征

胡琴, 张利兰, 易美玲, 杨锐

中国环境科学 ›› 2023, Vol. 43 ›› Issue (10) : 5574-5582.

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中国环境科学 ›› 2023, Vol. 43 ›› Issue (10) : 5574-5582.
新污染物与环境毒理

芘对土壤微生物氮转化功能菌群的影响特征

  • 胡琴1, 张利兰1,2, 易美玲1, 杨锐1
作者信息 +

Characterization of pyrene's impact on the soil functional microorganisms for nitrogen transformation

  • HU Qin1, ZHANG Li-lan1,2, YI Mei-ling1, YANG Rui1
Author information +
文章历史 +

摘要

通过构建好氧降解微环境,分析环境浓度下的芘(12.09mg/kg)对土壤酶活性,氮转化全过程以及相关功能微生物的影响.结果发现,芘仅在降解第1d显著促进了脲酶活性,而在降解最初和后期均显著刺激了脱氢酶活性.从细菌群落结构分析可知,由于氨氧化菌(Nitrososphaeraceae)相对丰度的变化,导致芘在处理前期对其介导的好氧氨氧化,硝化功能表现为促进作用,在后期表现为抑制作用,而对于固氮细菌(BradyrhizobiumMesorhizobiumEnsifer),尿素分解细菌(Roseomonas)以及硝酸盐还原细菌(Opitutus)则作用相反.与微生物群落结构以及相关功能预测的变化不同,功能基因定量分析表明,芘虽在培养初期对固氮基因nifH表现为抑制作用,但nifH的丰度呈增长趋势.结合土壤氨氧化和反硝化过程中关键酶活性及编码基因的变化,芘在培养前期未促进氨氧化过程,但在15d后明显抑制了土壤氨氧化和反硝化过程,其中对氨氧化过程的抑制作用更为显著.本研究阐明了芘对土壤微生物氮转化过程的影响特征,为了解芘的环境风险提供重要参考价值.

Abstract

An aerobic degradation microenvironment was constructed to analyze the effects of pyrene (12.09mg/kg) at ambient concentration on soil enzyme activities, the whole process of nitrogen transformation and related functional microorganisms. The results showed that pyrene only significantly increased urease activity on the first day of degradation, but promoted the dehydrogenase activity at both the early and late phases of degradation. The analysis of the bacterial community structure revealed that the variation of the relative abundance of ammonia-oxidizing bacteria (Nitrososphaeraceae) promoted pyrene-mediated aerobic ammonia oxidation and nitrification in the early stages of treatment and inhibited that in the late stages. In contrast, the effects of nitrogen-fixing bacteria (Bradyrhizobium, Mesorhizobium and Ensifer), urea-degrading bacteria (Roseomonas), and nitrate-reducing bacteria (Opitutus) were opposite. The quantitative analysis of functional genes showed that, despite pyrene's repressive effect on the nitrogen-fixing gene nifH at the start of the culture, the abundance of nifH showed an increasing trend, which was not consistent to the anticipated changes in microbial community structure and associated functions. Compared with changes in key enzyme activities and genes encoding the processes of ammonia oxidation and denitrification, pyrene did not significantly boost ammonia oxidation in the early stages of incubation, t severely hampered ammonia oxidation and denitrification after 15days, significantly inhibited the ammonia oxidation process. In this study, how pyrene influenced the microbial nitrogen transformation process in soil was reported, fundamental data on understanding the environmental hazard of pyrene were provided.

关键词

氮转化过程 / 氮转化细菌群落 / / 土壤酶活性

Key words

nitrogen cycling bacterial community / nitrogen cycling processes / pyrene / soil enzyme activity

引用本文

导出引用
胡琴, 张利兰, 易美玲, 杨锐. 芘对土壤微生物氮转化功能菌群的影响特征[J]. 中国环境科学. 2023, 43(10): 5574-5582
HU Qin, ZHANG Li-lan, YI Mei-ling, YANG Rui. Characterization of pyrene's impact on the soil functional microorganisms for nitrogen transformation[J]. China Environmental Science. 2023, 43(10): 5574-5582
中图分类号: X172    X171.5   

参考文献

[1] 孙娇,张作涛,郭海礁,等.多环芳烃厌氧生物降解研究进展[J]. 微生物学报, 2020,60(12):2844-2861. Sun J, Zhang Z T, Guo H J, et al. Progresses in anaerobic microbial degradation of polycyclic aromatic hydrocarbons[J]. Acta Microbiologica Sinica, 2020,60(12):2844-2861.
[2] Flowers L, Rieth S H, Cogliano V J. et al. Health assessment of polycyclic aromatic hydrocarbon mixtures:Current practices and future directions[J]. Polycyclic Aromatic Compounds, 2002,22(3/4):811-821.
[3] 曾军,吴宇澄,林先贵.多环芳烃污染土壤微生物修复研究进展[J]. 微生物学报, 2020,60(12):2804-2815. Zeng J, Wu Y C, Lin X G. Advances in microbial remediation of soils polluted by polycyclic aromatic hydrocarbons[J]. Acta Microbiologica Sinica, 2020,60(12):2804-2815.
[4] Maisto G, Nicola F D, Lovieno P, et al. PAHs and trace elements in volcanic urban and natural soils[J]. Geoderma, 2006,136(1):20-27.
[5] Liu S D, Xia X H, Yang L Y, et al. Polycyclic aromatic hydrocarbons in urban soils of different land uses in Beijing, China:Distribution, sources and their correlation with the city's urbanization history[J]. Journal of Hazardous Materials, 2010,177(1):1085-1092.
[6] Huang Z Y, Liu Y, Dai H, et al. Spatial distribution and source apportionment of polycyclic aromatic hydrocarbons in typical oasis soil of north-western China and the bacterial community response[J]. Environmental Research, 2022,204:112401.
[7] 尚庆彬,段永红,程荣.中国农业土壤多环芳烃污染现状及来源研究[J]. 山东农业科学, 2019,51(3):62-67. Shang Q B, Duan Y H, Cheng R. Pollution status and sources of polycyclic aromatic hydrocarbons in agricultural soils in China[J]. Shandong Academy of Agricultural Sciences, 2019,51(3):62-67.
[8] Wang D, Zhu S L, Wang L J. et al. Distribution, origins and hazardous effects of polycyclic aromatic hydrocarbons in topsoil surrounding oil fields:A case study on the Loess Plateau, China[J]. International Journal of Environmental Research and Public Health, 2020,17(4):1390.
[9] Ouyang Z, Gao L, Yang C. Distribution, sources and influence factors of polycyclic aromatic hydrocarbon at different depths of the soil and sediments of two typical coal mining subsidence areas in Huainan, China[J]. Ecotoxicology and Environmental Safety, 2018,163:255-265.
[10] Enuneku A, Ogbeide O, Okpara B, et al. Ingestion and dermal cancer risk via exposure to polycyclic aromatic hydrocarbon-contaminated soils in an oil-producing community, Niger Delta, Nigeria[J]. Environmental Toxicology and Chemistry, 2021,40(1):261-271.
[11] Sun Z, Zhu Y, Zhuo S. J, et al. Occurrence of nitro-and oxy-PAHs in agricultural soils in eastern China and excess lifetime cancer risks from human exposure through soil ingestion[J]. Environment International, 2017,108:261-270.
[12] Wang N, Li H B, Long J L, et al. Contamination, source, and input route of polycyclic aromatic hydrocarbons in historic wastewater-irrigated agricultural soils[J]. Journal of Environmental Monitoring, 2012,14(12):3076-3085.
[13] Zhang X X, Zhu C D, Wang F, et al. Pollution characteristics and risk assessment of polycyclic aromatic hydrocarbons in agricultural soils of different land use types in Nanjing Suburbs[J]. Environmental Earth Sciences, 2023,44(2):944-953.
[14] Fuhrman J A. Microbial community structure and its functional implications[J]. Nature, 2009,459(7244):193-199.
[15] Vlek P L G, Fillery I R P, Burford J R. Accession, transformation, and loss of nitrogen in soils of the arid region[J]. Plant and Soil, 1981, 58(1-3):133-175.
[16] Sverdrup L E, Ekelund F, Krogh P H, et al. Soil microbial toxicity of eight polycyclic aromatic compounds:Effects on nitrification, the genetic diversity of bacteria, and the total number of protozoans[J]. Environmental Toxicology and Chemistry, 2002,21(8):1644-1650.
[17] Yi M L, Zhang L L,Qin C L, et al. Temporal changes of microbial community structure and nitrogen cycling processes during the aerobic degradation of phenanthrene[J]. Chemosphere, 2022,286(2):131709.
[18] Yi M L, Zhang L L, Li Y, et al. Structural, metabolic, and functional characteristics of soil microbial communities in response to benzo a pyrene stress[J]. Journal of Hazardous Materials, 2022,431:128632.
[19] Chen Y Y, Zhu L Z, Zhou R B. Characterization and distribution of polycyclic aromatic hydrocarbon in surface water and sediment from Qiantang River, China[J]. Journal of Hazardous Materials, 2007, 141(1):148-155.
[20] Crampon, M, Bureau F, Akpa-Vinceslas M, et al. Correlations between PAH bioavailability, degrading bacteria, and soil characteristics during PAH biodegradation in five diffusely contaminated dissimilar soils. Environmental Science and Pollution Research, 2014,21(13):8133-8145.
[21] Guo G, Tian F, Ding K Q, et al. Effect of a bacterial consortium on the degradation of polycyclic aromatic hydrocarbons and bacterial community composition in Chinese soils[J]. International Biodeterioration & Biodegradation, 2017,123:56-62.
[22] Belkin S, Stieber M, Tiehm A, et al. Toxicity and genotoxicity enhancement during polycyclic aromatic hydrocarbons' biodegradation[J]. Environmental Toxicology and Water Quality, 1994,9(4):303-309.
[23] Kanaly R A, Harayama S. Biodegradation of high-molecular-weight polycyclic aromatic hydrocarbons by bacteria[J]. Journal of Bacteriology, 2000,182(8):2059-2067.
[24] Sun F L, Wang Y S, Sun C C, et al. Effects of three different PAHs on nitrogen-fixing bacterial diversity in mangrove sediment. Ecotoxicology, 2012,21(6):1651-1660.
[25] 刘杰.土壤多环芳烃(PAHs)污染对氨氧化菌及微生物群落结构的影响研究[D]. 北京:北京林业大学, 2011:2-22. Liu J. The influence on ammonia oxidizing microorganisms and microbial community structure under soil PAHs pollution[D]. Beijing:Beijing Forestry University, 2011:2-22.
[26] Ige I D, Olutona G O, Ajaelu C J. Insight into the metropolitan levels, spatial distribution and health risks of polycyclic aromatic hydrocarbons in roadside soil of Ibadan, Nigeria[J]. Environmental Earth Sciences, 2021,80(20):687.
[27] Raudonytė-Svirbutavičienė E R, Stakėnienė R, Jokšas K, et al. Distribution of polycyclic aromatic hydrocarbons and heavy metals in soil following a large tire fire incident:A case study[J]. Chemosphere, 2022,286(1):131556.
[28] Sun N, Liu Q, Wang J H, et al. Probing the biological toxicity of pyrene to the earthworm Eisenia fetida and the toxicity pathways of oxidative damage:A systematic study at the animal and molecular levels[J]. Environmental Pollution, 2021,289:117936.
[29] Wang J, Luo Z J, Song Y Y, et al. Remediation of phenanthrene contaminated soil by g-C3N4/Fe3O4 composites and its phytotoxicity evaluation[J]. Chemosphere, 2019,221:554-562.
[30] Sinsabaugh R L, Hill B H, Follstad Shah J J. Ecoenzymatic stoichiometry of microbial organic nutrient acquisition in soil and sediment[J]. Nature, 2009,462(7274):795-798.
[31] Li X N, Qu C S, Bian Y R, et al. New insights into the responses of soil microorganisms to polycyclic aromatic hydrocarbon stress by combining enzyme activity and sequencing analysis with metabolomics[J]. Environmental Pollution, 2019,255(Pt 2):113312.
[32] 邢奕,王志强,李益飞,等.不同粒度CuO及与乙基黄原酸钾复合污染对土壤脲酶和微生物多样性的影响[J]. 中国环境科学, 2017, 37(4):1466-1473. Xing Y, Wang Z Q, Li Y F, et al. Effects of different sizes of CuO and potassium ethyl potassium compound pollution on soil urease and microbial diversity[J]. China Environmental Science, 2017,37(4):1466-1473.
[33] Kaczynska G, Borowik A, Wyszkowska J. Soil dehydrogenases as an indicator of contamination of the environment with petroleum products[J]. Water Air and Soil Pollution, 2015,226(11):372.
[34] Junier, P, Molina, V, Dorador, C, et al. Phylogenetic and functional marker genes to study ammonia-oxidizing microorganisms (AOM) in the environment[J]. Appl Microbiol Biotechnol, 2010,85(3):425-440.
[35] Yang X, He Q, Guo F C, et al. Nanoplastics disturb nitrogen removal in constructed wetlands:Responses of microbes and macrophytes[J]. Environmental Science & Technology, 2020,54(21):14007-14016.
[36] Louca S, Parfrey L W, Doebeli M J S, Decoupling function and taxonomy in the global ocean microbiome[J]. Science, 2016,353:1272-1277.
[37] Shi Z, Tao S, Pan B, et al. Contamination of rivers in Tianjin, China by polycyclic aromatic hydrocarbons[J]. Environmental pollution, 2005, 134:97-111.
[38] Roslund M I, Grönroos M, Rantalainen A L, et al. Half-lives of PAHs and temporal microbiota changes in commonly used urban landscaping materials[J]. PeerJ, 2018,6(1):4508.
[39] Park K S, Sims R C, Dupont R R. Transformation of PAHs in soil systems[J]. Environmental Engineering, 1990,116:632-640.
[40] Zhang L L, Yi M L, Lu P L. Effects of pyrene on the structure and metabolic function of soil microbial communities[J]. Environmental Pollution, 2022,305:119301.
[41] Wang C, Luo Y, Tan H, et al. Responsiveness change of biochemistry and micro-ecology in alkaline soil under PAHs contamination with or without heavy metal interaction[J]. Environmental Pollution, 2020, 266(3):115296.
[42] Lu M, Xu K, Chen J. Effect of pyrene and cadmium on microbial activity and community structure in soil[J]. Chemosphere, 2013, 91(4):491-497.
[43] Ma, L, Deng F C, Yang C, et al. Bioremediation of PAH-contaminated farmland:field experiment[J]. Environmental Science and Pollution Research, 2018,25(1):64-72.
[44] Kaimi E, Mukaidania T, Miyoshia S J, et al. Ryegrass enhancement of biodegradation in diesel-contaminated soil[J]. Environmental and Experimental Botany, 2006,55(1/2):110-119.
[45] Ibrahim M M, Tong C X, Hu K, et al. Biochar-fertilizer interaction modifies N-sorption, enzyme activities and microbial functional abundance regulating nitrogen retention in rhizosphere soil[J]. Science of the Total Environment, 2020,739:140065.
[46] Stieglmeier M, Klingl A, Alves R J E, et al. Nitrososphaera viennensis gen. nov., sp nov., an aerobic and mesophilic, ammonia-oxidizing archaeon from soil and a member of the archaeal phylum Thaumarchaeota[J]. International Journal of Systematic and Evolutionary Microbiology, 2014,64:2738-2752.
[47] Yang Y C, Herbold C W, Jung M Y, et al. Survival strategies of ammonia-oxidizing archaea (AOA) in a full-scale WWTP treating mixed landfill leachate containing copper ions and operating at low-intensity of aeration[J]. Water Research, 2021,191:116798.
[48] Sim J X F, Doolette C L, Vasileiadis S, et al. Pesticide effects on nitrogen cycle related microbial functions and community composition[J]. Science of The Total Environment, 2022,807:150734.
[49] Claudine F, Kristina L, Claudine E. Nitrogen-fixing bacteria associated with leguminous and non-leguminous plants[J]. Plant and Soil, 2009,321(1):35-59.
[50] Ohta H, Hattori T. Agromonas oligotrophica gen. nov., sp. nov., a nitrogen-fixing oligotrophic bacterium[J]. Antonie Van Leeuwenhoek Journal of Microbiology, 1983,49(4/5):429-446.
[51] Brenner D J, Krieg N R, Staley J T, et al. The Proteobacteria, Part B:The Gammaproteobacteria. Bergey's Manual of Systematic Bacteriology[M]. New York, Springer, 2005,Vol.2.
[52] Brenner D J, Krieg N R, Staley J T, et al. The Proteobacteria, Part B:The Gammaproteobacteria. Bergey's Manual of Systematic Bacteriology[M]. New York, Springer, 2011,Vol.4.
[53] 郭丽芸,时飞,杨柳燕.反硝化菌功能基因及其分子生态学研究进展[J]. 微生物学通报, 2011,38(4):583-590. Guo L Y, Shi F, Yang L Y. Advances in functional genes and molecular ecology in denitrifiers[J], Microbiology China, 2011,38(4):583-590.

基金

国家重点研发计划(2019YFC1805500);国家自然科学基金资助项目(42177363)

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