被孢霉对土壤养分有效性和秸秆降解的影响
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中图分类号:

S154.39

基金项目:

国家重点研发计划项目(2016YFD0300802)、国家自然科学基金项目(41807017)和江苏省自然科学基金项目(BK20171106)共同资助


Effects of Mortierella on Nutrient Availability and Straw Decomposition in Soil
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Supported by the National Key Research and Development Program of China (No. 2016YFD0300802), the National Natural Science Foundation of China (No. 41807017), and the Natural Science Foundation of Jiangsu Province of China (No. BK20171106)

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    摘要:

    腐生真菌被孢霉在富含有机质的土壤中丰度很高,为土壤碳及养分转化的关键微生物成员。然而目前关于土著被孢霉在秸秆分解过程中对土壤养分有效性影响的研究较少。采用常规平板稀释法从长期施用有机肥的红壤和砂姜黑土中分离真菌菌株,将分离得到的菌株序列与基因库(GenBank)中的序列进行比较,鉴定出了两株被孢霉菌株,即高山被孢霉(Mortierella alpina)和长孢被孢霉(Mortierella elongata)。通过设置盆栽试验,每盆土接种10 g菌剂,研究两株被孢霉对秸秆降解过程中土壤养分有效性和细菌群落的影响。结果表明,在红壤中,与未接种对照相比,接种高山被孢霉处理的土壤有效磷含量提高了29.0%,长孢被孢霉处理下土壤有效氮含量和β-葡萄糖苷酶活性分别提高了15.5%和81.3%。在砂姜黑土中,与对照相比,被孢霉菌株显著提高了土壤可溶性有机碳,速效氮和有效磷的含量以及β-葡萄糖苷酶和磷酸酶的活性。两株被孢霉在红壤中抑制了秸秆的降解,并显著改变细菌群落组成。而在砂姜黑土中,被孢霉菌株促进了秸秆降解,且对细菌群落结构影响不大。在红壤中,苍白杆菌属(Ochrobactrum)、无色杆菌属(Achromobacter)和链霉菌属(Streptomyces)是导致接种处理和对照之间细菌群落差异贡献最大的类群。本研究为土著被孢霉在农业土壤中秸秆分解和养分转化中的作用提供了理论依据。

    Abstract:

    [Objective] Saprophytic fungi can convert complex organic substances into available components, which is closely related to soil nutrient availability and carbon (C) sequestration. Mortierella has been reported to be substantially enhanced after long-term fertilization in agricultural soils. Studies in the past demonstrated that some species of Mortierella did make important contributions to soil nutrient transformation and availability, and were able to degrade hemicellulose, cellulose and lignin, and hence could directly affect straw decomposition and alter nutrient status of the soil. Furthermore, Mortierella species show great ability to excrete a large volume of polyunsaturated fatty acids, which contained abundant C sources, thus altering the soil microhabitat. It was therefore, presumed that Mortierella inoculants could affect soil microbial communities in part by changing their nutrient uptake, thus indirectly influencing soil nutrient transformation and availability in the soil. However, empirical evidence of the effects of Mortierella inoculants on the soil microbial communities under planting conditions is seldom available. The objective of this study was to explore how indigenous strains of Mortierella affect soil nutrient availability during the process of straw decomposition.[Method] Two strains of Mortierella (Mortierella alpina and Mortierella elongata) were isolated from two types of agricultural soils (red soil and Shajiang black soil) that had been applied with organic manure for decades. A pot experiment, designed to have three treatments, i.e. no inoculation (Control); inoculation with Mortierella alpina (Ma); and inoculation with Mortierella elongata (Me), and three replicates for each treatment, was conducted with the two soils packed in the pots separately and incorporated with straw. Availability of C, nitrogen (N) and phosphorus (P) and activities of β-glucosidase, N-acetyl-β-glucosaminidase and phosphatase were determined. Chemical C structure of the residual straw and bacterial community composition in the soil was analyzed with the aid of the solid state 13C-nuclear magnetic resonance (13C-NMR) spectroscopy and the technique of 16S rRNA gene amplicon sequencing, respectively.[Result] In red soil, Treatment Ma increased the content of soil available P by 29.0%, while Treatment Me did the content of soil available N and the activity of β-glucosidase by 15.5% and 81.3%, respectively. In Shajiang black soil, both Mortierella treatments notably increased the content of soil available N and the activity of β-glucosidase. In addition, Treatment Ma significantly increased the activity of phosphatase, while Treatment Me did the content of dissolved organic C and soil available P by 16.2% and 11.5%, respectively. In red soil, Mortierella inoculants inhibited straw decomposition and significantly altered composition and metabolic functions of the bacterial community, while in Shajiang black soil, they promoted straw degradation but had little effect on bacterial community structure. Ochrobactrum, Achromobacter and Streptomyces were the most influential taxa contributing to differences in bacterial community between the treatments and the control in red soil. Network analysis showed that the interactions between soil microbes were more complex connectedness in red soil than in Shajiang black soil. Lysobacter, Stenotrophomonas, Pantoea, Phyllobacteriaceae and Solirubrobacterales were identified as the keystone taxa in red soil, while Comamonadaceae, Lysobacter, Cytophagaceae and Serpens flexibilis were in Shajiang black soil. These keystone taxa acted as decomposers or biocontrol agents, and played important roles in maintaining microbial interactions and in potential processes of straw decomposition.[Conclusion] The present study has demonstrated that Mortierella alpina and Mortierella elongata can improve soil C, N and P availability and associated enzyme activities, and provide evidence of roles of indigenous strains of Mortierella strains on straw decomposition and nutrient transformation in agricultural soils.

    参考文献
    [1] Sun R B, Dsouza M, Gilbert J A, et al. Fungal community composition in soils subjected to long-term chemical fertilization is most influenced by the type of organic matter[J]. Environmental Microbiology, 2016, 18(12):5137-5150.
    [2] Francioli D, Schulz E, Lentendu G, et al. Mineral vs. organic amendments:Microbial community structure, activity and abundance of agriculturally relevant microbes are driven by long-term fertilization strategies[J]. Frontiers in Microbiology, 2016, 7:1446. https://doi.org/10.3389/fmicb.2016.01446.
    [3] Ning Q, Chen L, Jia Z J, et al. Multiple long-term observations reveal a strategy for soil pH-dependent fertilization and fungal communities in support of agricultural production[J]. Agriculture, Ecosystems & Environment, 2020, 293:106837.
    [4] Osorio N W, Habte M. Soil phosphate desorption induced by a phosphate-solubilizing fungus[J]. Communications in Soil Science and Plant Analysis, 2014, 45(4):451-460.
    [5] Zhang H S, Wu X H, Li G, et al. Interactions between arbuscular mycorrhizal fungi and phosphate-solubilizing fungus(Mortierella sp.) and their effects on Kostelelzkya virginica growth and enzyme activities of rhizosphere and bulk soils at different salinities[J]. Biology and Fertility of Soils, 2011, 47(5):543-554.
    [6] Tamayo-Vélez Á, Osorio N W. Soil fertility improvement by litter decomposition and inoculation with the fungus Mortierella sp in avocado plantations of Colombia[J]. Communications in Soil Science and Plant Analysis, 2018, 49(2):139-147.
    [7] Li F, Chen L, Redmile-Gordon M, et al. Mortierella elongata's roles in organic agriculture and crop growth promotion in a mineral soil[J]. Land Degradation & Development, 2018, 29(6):1642-1651.
    [8] Koechli C, Campbell A N, Pepe-Ranney C, et al. Assessing fungal contributions to cellulose degradation in soil by using high-throughput stable isotope probing[J]. Soil Biology & Biochemistry, 2019, 130:150-158.
    [9] Qiao Q, Wang H, Yao R S, et al. Degradation of lignin by Mortierella elongata PFY[J]. Chemical Industry and Engineering Progress, 2012, 31(S1):80-85.[乔乔, 王淮, 姚日生, 等. 长孢被孢霉PFY降解木质素的初步研究[J]. 化工进展, 2012, 31(S1):80-85.]
    [10] Dai P, Chen H Q, Gu Z N, et al. Research progress in fermentation condition for polyunsaturated fatty acids by Mortierella Alpina[J]. Science and Technology of Food Industry, 2014, 35(5):354-359.[代鹏, 陈海琴, 顾震南, 等. 高山被孢霉生产多不饱和脂肪酸发酵条件的研究进展[J]. 食品工业科技, 2014, 35(5):354-359.]
    [11] Cao L Y, Jiang X J, Zhang L, et al. Correlation between content of ergosterol and size fraction of soil aggregates[J]. Acta Pedologica Sinica, 2008, 45(6):1184-1188.[曹良元, 蒋先军, 张磊, 等. 麦角固醇与不同粒级团聚体土壤的相关性[J]. 土壤学报, 2008, 45(6):1184-1188.]
    [12] Chen L, Brookes P C, Xu J, et al. Structural and functional differentiation of the root-associated bacterial microbiomes of perennial ryegrass[J]. Soil Biology & Biochemistry, 2016, 98:1-10.
    [13] Lu R K. Analytical methods for soil and agro-chemistry[M]. Beijing:China Agricultural Science and Technology Press, 2000.[鲁如坤. 土壤农业化学分析方法[M]. 北京:中国农业科学技术出版社, 2000.]
    [14] Chen L, Redmile-Gordon M, Li J, et al. Linking cropland ecosystem services to microbiome taxonomic composition and functional composition in a sandy loam soil with 28-year organic and inorganic fertilizer regimes[J]. Applied Soil Ecology, 2019, 139:1-9.
    [15] Wang H, Liu S R, Wang J X, et al. Dynamics and speciation of organic carbon during decomposition of leaf litter and fine roots in four subtropical plantations of China[J]. Forest Ecology and Management, 2013, 300:43-52.
    [16] Caporaso J G, Kuczynski J, Stombaugh J, et al. QIIME allows analysis of high-throughput community sequencing data[J]. Nature Methods, 2010, 7(5):335-336.
    [17] Edgar R C, Haas B J, Clemente J C, et al. UCHIME improves sensitivity and speed of chimera detection[J]. Bioinformatics, 2011, 27(16):2194-2200.
    [18] Edgar R C. Search and clustering orders of magnitude faster than BLAST[J]. Bioinformatics, 2010, 26(19):2460-2461.
    [19] Detheridge A P, Brand G, Fychan R, et al. The legacy effect of cover crops on soil fungal populations in a cereal rotation[J]. Agriculture, Ecosystems & Environment, 2016, 228:49-61.
    [20] Hayano K, Tubaki K. Origin and properties of β-glucosidase activity of tomato-field soil[J]. Soil Biology and Biochemistry, 1985, 17(4):553-557.
    [21] Wei W, Wu H, Song S L, et al. Effects of compound microbial agents on wheat straw degradation rate, soil enzyme activity and microbial community[J]. Soils, 2019, 51(5):955-963.[魏蔚, 吴昊, 宋时丽, 等.复合菌剂对小麦秸秆降解速率、土壤酶和土壤微生物类群的影响[J]. 土壤, 2019, 51(5):955-963.]
    [22] de Andrade Santos A, Silveira J A G, de Araujo Guilherme E, et al. Changes induced by co-inoculation in nitrogen-carbon metabolism in cowpea under salinity stress[J]. Brazilian Journal of Microbiology, 2018, 49(4):685-694.
    [23] Jayasinghe B A T D, Parkinson D. Actinomycetes as antagonists of litter decomposer fungi[J]. Applied Soil Ecology, 2008, 38(2):109-118.
    [24] Ling N, Chen D M, Guo H, et al. Differential responses of soil bacterial communities to long-term N and P inputs in a semi-arid steppe[J]. Geoderma, 2017, 292:25-33.
    [25] Tapia-Torres Y, Rodríguez-Torres M D, Elser J J, et al. How to live with phosphorus scarcity in soil and sediment:Lessons from bacteria[J]. Applied and Environmental Microbiology, 2016, 82(15):4652-4662.
    [26] Sekiguchi H, Kushida A, Takenaka S. Effects of cattle manure and green manure on the microbial community structure in upland soil determined by denaturing gradient gel electrophoresis[J]. Microbes and Environments, 2007, 22(4):327-335.
    [27] Ermakova I T, Shushkova T V, Sviridov A V, et al. Organophosphonates utilization by soil strains of Ochrobactrum anthropi and Achromobacter sp[J]. Archives of Microbiology, 2017, 199(5):665-675.
    [28] Fang L. Isolation and selection of strains used to degrade organic chlorine pesticides and application effects[J]. Chinese Journal of Applied Ecology, 2000, 11(2):249-252.[方玲. 降解有机氯农药的微生物菌株分离筛选及应用效果[J]. 应用生态学报, 2000, 11(2):249-252.]
    [29] Wang S Q. Research on the effects of Streptomyces JD211 on rice growth promotion and disease prevention mechanism[D]. Nanchang:Jiangxi Agricultural University, 2014.[王世强. 链霉菌JD211对水稻的防病促生效应及机制[D]. 南昌:江西农业大学, 2014.]
    [30] Xiong X Q, Liao H D, Ma J S, et al. Isolation of a rice endophytic bacterium, Pantoea sp Sd-1, with ligninolytic activity and characterization of its rice straw degradation ability[J]. Letters in Applied Microbiology, 2014, 58(2):123-129.
    [31] Chen L J, Jiang Y J, Liang C, et al. Competitive interaction with keystone taxa induced negative priming under biochar amendments[J]. Microbiome, 2019, 7(1):1-18.
    [32] Banerjee S, Baah-Acheamfour M, Carlyle C N, et al. Determinants of bacterial communities in Canadian agroforestry systems[J]. Environmental Microbiology, 2016, 18(6):1805-1816.
    [33] Banerjee S, Kirkby C A, Schmutter D, et al. Network analysis reveals functional redundancy and keystone taxa amongst bacterial and fungal communities during organic matter decomposition in an arable soil[J]. Soil Biology & Biochemistry, 2016, 97:188-198.
    [34] Ma B B, Huang R L, Zhang N, et al. Effect of straw-derived biochar on molecular ecological network between bacterial and fungal communities in rhizosphere soil[J]. Acta Pedologica Sinica, 2019, 56(4):964-974.[马泊泊, 黄瑞林, 张娜, 等. 秸秆生物质炭对根际土壤细菌-真菌群落分子生态网络的影响[J]. 土壤学报, 2019, 56(4):964-974.]
    [35] Wang N, Wu K Y, Cui L J, et al. Advance in bacteria identification and biocontrol mechanism of Lysobacter spp[J]. Journal of Northwest A&F University(Natural Science Edition), 2015, 43(5):174-182, 191.[王娜, 武坤毅, 崔浪军, 等. 溶杆菌属细菌鉴定及生防机制概况[J]. 西北农林科技大学学报(自然科学版), 2015, 43(5):174-182, 191.]
    [36] Liu Y F, Wu R M, Zhang C J, et al. Effects of film mulching on soil biological properties and bacterial diversity in pepper fields[J]. Acta Pedologica Sinica, 2019, 56(4):986-993.[刘岳飞, 吴人敏, 张传进, 等. 地膜对植椒土壤生物学特性和细菌多样性的影响[J]. 土壤学报, 2019, 56(4):986-993.]
    [37] Brabcová V, Nováková M, Davidová A, et al. Dead fungal mycelium in forest soil represents a decomposition hotspot and a habitat for a specific microbial community[J]. The New Phytologist, 2016, 210(4):1369-1381.
    [38] Wang Y L, Hua R M, Tang X Y. Application of Stenotrophomonas in environmental protection[J]. Journal of Anhui Agricultural Sciences, 2010, 38(28):15796-15797, 15800.[王昀璐, 花日茂, 唐欣昀. 寡养单胞菌在环境保护中的应用研究进展[J]. 安徽农业科学, 2010, 38(28):15796-15797, 15800.]
    [39] Nuccio E E, Hodge A, Pett-Ridge J, et al. An arbuscular mycorrhizal fungus significantly modifies the soil bacterial community and nitrogen cycling during litter decomposition[J]. Environmental Microbiology, 2013, 15(6):1870-1881.
    [40] Estendorfer J, Stempfhuber B, Haury P, et al. The influence of land use intensity on the plant-associated microbiome of Dactylis glomerata L[J]. Frontiers in Plant Science, 2017, 8:930.
    [41] Zhao S, Zhou N, Zhao Z Y, et al. Endophytic bacterial diversity and dynamics in root of Salicornia europaea estimated via high throughput sequencing[J]. Acta Microbiologica Sinica, 2016, 56(6):1000-1008.[赵帅, 周娜, 赵振勇, 等.基于高通量测序分析盐角草根部内生细菌多样性及动态规律[J]. 微生物学报, 2016, 56(6):1000-1008.]
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宁琪,陈林,李芳,张丛志,马东豪,蔡泽江,张佳宝.被孢霉对土壤养分有效性和秸秆降解的影响[J].土壤学报,2022,59(1):206-217. DOI:10.11766/trxb202006020213 NING Qi, CHEN Lin, LI Fang, ZHANG Congzhi, MA Donghao, CAI Zejiang, ZHANG Jiabao. Effects of Mortierella on Nutrient Availability and Straw Decomposition in Soil[J]. Acta Pedologica Sinica,2022,59(1):206-217.

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  • 收稿日期:2020-06-02
  • 最后修改日期:2020-07-10
  • 录用日期:2020-08-28
  • 在线发布日期: 2020-12-10
  • 出版日期: 2022-01-11
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