Article Content

Abstract

Riparian vegetation buffer strips play a crucial role in soil and water conservation, yet the impact of different vegetation on soil nitrogen components and microbial communities remains poorly understood. This study aimed to evaluate the effects of different riparian vegetation buffer strip on soil organic nitrogen components and microbial communities. Three types of riparian vegetation buffer strips along Taihu Lake in Yixing City (mixed poplar (Populus × euramericana “Nanlin 95”) and Taxodium “zhongshanshan” (Taxodium “zhongshanshan”), pure poplar, and pure Taxodium “zhongshanshan”) were compared with barren land (HD) as control. Soil nitrogen components, microbial community characteristics, abundance, and their relationships were analyzed across 0–60 cm soil profiles. Results showed that all riparian vegetation buffer strips significantly increased soil total nitrogen (TN) content compared to HD, with content decreasing with soil depth. Riparian vegetation buffer strips significantly enhanced microbial abundance and diversity, with mixed buffer strips exhibiting the highest abundance of Chloroflexi and Acidobacteriota, which contribute positively to nitrogen cycling. RDA revealed that soil nitrogen components and enzyme activities were positively correlated with soil organic carbon (SOC) content but negatively with total potassium (TK) content. The microbial communities in mixed riparian vegetation buffer strips and pure Taxodium “zhongshanshan” buffer strips were closely associated with organic nitrogen parameters (P < 0.05), while communities in pure poplar buffer strips and HD were more related to TK. These findings demonstrate that strategically designed mixed riparian vegetation buffer strips offer superior enhancement of soil nitrogen cycling and microbial diversity compared to pure vegetation buffer strips, these findings provide valuable insights for optimizing riparian vegetation buffer strips design to improve soil quality and nitrogen management in lakeside ecosystems.

Highlights

  • Analyzed the impacts of different riparian vegetation buffer strips on soil organic nitrogen components and microbial communities.
  • Mixed buffer strips are more effective than pure buffer strips in increasing soil organic nitrogen component content, microbial diversity, and abundance.
  • References

    • Abubakar A, Mayer M, Neumann M, et al. (2024) Nitrogen addition reduces litter decomposition but does not affect litter production and chemistry in an alpine shrubland. Plant Soil 165: 108511.

    • Bannister JW, Clairmont LK, Stevens KJ, et al (2021) Exposure to elevated nutrient load results in structural and functional changes to microbial communities associated with riparian wetland plants Phalaris arundinaceae and Veronica anagallis-aquatica. Rhizosphere 18:100350.

      Google Scholar

    • Bao WQ, He P, Han L, et al. (2024) Soil nitrogen availability and microbial carbon use efficiency are dependent more on chemical fertilization than winter drought in a maize–soybean rotation system. Front Microbiol 15. https://doi.org/10.3389/fmicb.2024.1304985

    • Boz B, Mizanur RM, Bottegal M, et al. (2013) Vegetation, soil and hydrology management influence denitrification activity and the composition of nirK-type denitrifier communities in a newly afforested riparian buffer. New Biotechnol 30(6):675–684.

      CAS Google Scholar

    • Calvo C, Gallego LR, León GD, et al. (2024) Potential of different buffer strips as nature-based solutions to mitigate agricultural runoff nutrients in the subtropics. Ecol Eng 207: 107354.

      Google Scholar

    • Che Y, Jin GZ (2024) Plant–soil microbial diversity and structural attributes jointly dominate the multifunctionality of the temperate buffer strips. Ecol Indic 166: 112282.

      Google Scholar

    • Chen H, Ruan YZ (2024) Effects of nitrogen addition on soil microbial biomass: a meta-analysis. Agric 14:1616

      CAS Google Scholar

    • Chen MQ, Xu JS, Li DD, et al. (2023) Long-term nitrogen fertilization-induced enhancements of acid hydrolyzable nitrogen are mainly regulated by the most vital microbial taxa of keystone species and enzyme activities. Sci Total Environ 874: 162463.

      CAS Google Scholar

    • Chen WD, Ren KX, Isabwe A, et al. (2019) Stochastic processes shape microeukaryotic community assembly in a subtropical river across wet and dry seasons. Microbiome 7: 138.

      Google Scholar

    • Chen Y, Yin S, Shao Y, et al. (2022) Soil bacteria are more sensitive than fungi in response to nitrogen and phosphorus enrichment. Front Microbiol 13. https://doi.org/10.3389/fmicb.2022.999385

    • Cole LJ, Stockan J, Helliwell R (2020) Managing riparian buffer strips to optimise ecosystem services: a review. Agriculture, Ecosyst Environ 296:106891.

      CAS Google Scholar

    • Dlamini JC, Cardenas LM, Tesfamariam EH, et al. (2022) Riparian buffer strips influence nitrogen losses as nitrous oxide and leached N from upslope permanent pasture. Agric Ecosyst Environ 336:108031.

      CAS Google Scholar

    • Dong H, Zhang S, Lin J, et al. (2021) Responses of soil microbial biomass carbon and dissolved organic carbon to drying-rewetting cycles: a meta-analysis. Catena 207: 105610.

      CAS Google Scholar

    • Farzadfar S, Knight JD, Congreves KA (2021) Soil organic nitrogen: An overlooked but potentially significant contribution to crop nutrition. Plant Soil 462:7–23

      CAS Google Scholar

    • Galloway JN, Townsend AR, Erisman JW, et al. (2008) Transformation of the nitrogen cycle: recent trends, questions, and potential solutions. Science 320(5878):889–892.

      CAS Google Scholar

    • Gong SS, Yang XY, Xu XK, et al (2022) Effect of stand age on the temporal dynamics of soil active carbon and nitrogen in Chinese cypress artificial buffer strips. Soil Sci Plant Nutr 68(1):64–71.

      CAS Google Scholar

    • Hill AR (2019) Groundwater nitrate removal in riparian buffer zones: a review of research progress in the past 20 years. Biogeochemistry 143(3):347–369.

      CAS Google Scholar

    • Huang J, Xu CC, Ridoutt BG, et al (2017) Nitrogen and phosphorus losses and eutrophication potential associated with fertilizer application to cropland in China. J Clean Prod 159:171–179.

      Google Scholar

    • Huang J, Li J, Yan B, et al. (2021) The effects of nitrogen addition on soil organic carbon decomposition and microbial C-degradation functional genes abundance in a pinus tabulaeformis forest. For Ecol Manag 489: 119098.

      Google Scholar

    • Huang S, Chen C, Jaffé PR (2018) Seasonal distribution of nitrifiers and denitrifiers in urban river sediments affected by agricultural activities. Sci Total Environ 642:1282–1291.

      CAS Google Scholar

    • Ji LF, Wu ZD, You ZM, et al. (2018) Effects of organic substitution for synthetic N fertilizer on soil bacterial diversity and community composition: a 10-year field trial in a tea plantation. Agric Ecosyst Environ 268:124–132.

      Google Scholar

    • Jiang Y, Zhu W, Zhu K, et al. (2023) Similarities and differences in the microbial structure of surface soils of different vegetation types. Peer 11: e16260.

      Google Scholar

    • Jwaideh MAA, Sutanudjaja EH, Dalin C (2022) Global impacts of nitrogen and phosphorus fertiliser use for major crops on aquatic biodiversity. Int J Life Cycle Assess 8(27):1058–1080.

      Google Scholar

    • Kalam S, Basu A, Ahmad I, et al (2020) Recent understanding of soil acidobacteria and their ecological significance: a critical review. Front Microbiol 11.

    • Kim H, Bae H-S, Reddy KR, et al. (2016) Distributions, abundances and activities of microbes associated with the nitrogen cycle in riparian and stream sediments of a river tributary. Water Res 106:51–61.

      CAS Google Scholar

    • Kumwimba MN, Akter S, Li XY (2024) Nutrient and sediment retention by riparian vegetated buffer strips: Impacts of buffer length, vegetation type, and season. Agric Ecosyst Environ 1(369):109050.

      Google Scholar

    • Kuzyakov Y, Xu X (2013) Competition between roots and microorganisms for nitrogen: Mechanisms and ecological relevance. New Phytol 198(3):656–669.

      CAS Google Scholar

    • Li DN, Li Y, Yao SH, et al. (2024) Dynamics of nitrogen mineralization and nitrogen cycling functional genes in response to soil pore size distribution. Eur J Soil Biol 123: 103692.

      CAS Google Scholar

    • Liang C, Schimel J, Jastrow J (2017) The importance of anabolism in microbial control over soil carbon storage. Nat Microbiol 2:17105.

      CAS Google Scholar

    • Lin X, Yang YL, Yang P, et al. (2023) Soil organic nitrogen content and composition in different wetland habitat types along the south-east coast of China. CATENA 232: 107457.

      CAS Google Scholar

    • Liu MH, Sui X, Hu YB, et al. (2019) Microbial community structure and the relationship with soil carbon and nitrogen in an original Korean pine buffer strips of Changbai Mountain, China. BMC Microbiol 19: 218.

      Google Scholar

    • Liu Y, Li HY, Cui G, Cao YQ (2020) Water quality attribution and simulation of non-point source pollution load flux in the Hulan River basin. Sci Rep 10(01):3012.

      CAS Google Scholar

    • Lu XF, Hou EQ, Guo JY, et al. (2021) Nitrogen addition stimulates soil aggregation and enhances carbon storage in terrestrial ecosystems of China: a meta-analysis. Glob Change Biol 12(21):2780–2792.

      Google Scholar

    • Mackay JE, Cunningham SC, Cavagnaro TR (2016) Riparian reforestation: are there changes in soil carbon and soil microbial communities? Sci Total Environ 566–567: 960–967.

    • Niu XS, Liu X, Li T, et al. (2024) Long-term planting of taxodium hybrid ‘Zhongshanshan’ can effectively enhance the soil aggregate stability in saline–alkali coastal areas. Forests 8(15):1376.

      Google Scholar

    • Noble DT, MacDougall AS, Levison J (2023) Impacts of soil, climate, and phenology on retention of dissolved agricultural nutrients by permanent-cover buffers. Sci Total Environ 860: 160532.

      CAS Google Scholar

    • Nsenga Kumwimba M, Huang J, Dzakpasu M, et al. (2023) An updated review of the efficacy of buffer zones in warm/temperate and cold climates: insights into processes and drivers of nutrient retention. J Environ Manag 336:117646.

      CAS Google Scholar

    • Pan C, Sun CC, Yu WR, et al. (2023) Mixed planting enhances soil multi-nutrient cycling by homogenizing microbial communities across soil vertical scale. Land Degrad Dev 5(34):1477–1490.

      Google Scholar

    • Prosser RS, Hoekstra PF, Gene S, et al. (2020) A review of the effectiveness of vegetated buffers to mitigate pesticide and nutrient transport into surface waters from agricultural areas. J Environ Manag 261: 110210.

      CAS Google Scholar

    • Royer-Tardif S, Bradley RL, Parsons WFJ (2010) Evidence that plant diversity and site productivity confer stability to forest floor microbial biomass. Soil Biol Biochem 42(5):813–821.

      CAS Google Scholar

    • Séneca J, Söllinger A, Herbold CW, et al. (2021) Increased microbial expression of organic nitrogen cycling genes in long-term warmed grassland soils. ISME Commun 1(1):69.

      Google Scholar

    • Silveira ML, Comerford NB, Reddy KR, et al. (2008) Characterization of soil organic carbon pools by acid hydrolysis. Geoderma 144(1-2):405–414.

      CAS Google Scholar

    • Tang J, Li W, Wei T, et al. (2024) Patterns and mechanisms of legume responses to nitrogen enrichment: a global meta-analysis. Plants 13(22):3244.

      CAS Google Scholar

    • Thweatt JL, Canniffe DP, Bryant DA (2019) Biosynthesis of chlorophylls and bacteriochlorophylls in green bacteria Adv Bot Res 90:35–89.

      CAS Google Scholar

    • Tsuji JM, Shaw NA, Nagashima S, et al. (2024) Anoxygenic phototroph of the Chloroflexota uses a type I reaction centre. Nature 627:915–922.

      CAS Google Scholar

    • Valkma E, Usva K, Saarinen M, Kämppä JU (2019) A meta-analysis on nitrogen retention by buffer strips. J Environ Qual 48(2):270–279.

      Google Scholar

    • Wang S, Heal KV, Zhang Q, et al. (2023) Soil microbial community, dissolved organic matter and nutrient cycling interactions change along an elevation gradient in subtropical China. J Environ Manag 345: 118793.

      CAS Google Scholar

    • Wiesenbauer J, König A, Gorka S, et al. (2024) A pulse of simulated root exudation alters the composition and temporal dynamics of microbial metabolites in its immediate vicinity. Soil Biol Biochem 189: 109259.

      CAS Google Scholar

    • Wu H, Du SY, Zhang YL, et al. (2019) Effects of irrigation and nitrogen fertilization on greenhouse soil organic nitrogen fractions and soil-soluble nitrogen pools. Agric Water Manag 216:415–424.

      Google Scholar

    • Zhao YP, Wang ZH, Cai K, et al. (2024) Stability of nitrogen-cycling microbial communities and impact on microbial nitrogen function under different land use practices. Appl Soil Ecol 204: 105729.

      Google Scholar

      Soil organic carbon and organic nitrogen components are closely related to soil nitrogen cycling microorganisms.

      Explore related subjects

      Discover the latest articles and news from researchers in related subjects, suggested using machine learning.

      Data Availability

      No datasets were generated or analyzed during the current study.

    Acknowledgements

    We are grateful to the anonymous referees for their valuable comments, constructive suggestions and editorial assistance, which have greatly improved the paper. This project was sponsored by the Postgraduate Research & Practice Innovation Program of Jiangsu Province (KYCX23_1128) and Jiangsu Buffer strips Science & Technology Innovation and Extension Project (No. Su[2022]TG03).

    Author information

    Authors and Affiliations

    Contributions

    Luyao Zhao: Writing, First draft preparation, data support, Sample acquisition, Supervision. Yongbo Wu: Conceptualization, Supervision, Draft revision. All authors have read and agreed to the published version of the manuscript.

    Corresponding author

    Correspondence to Yongbo Wu.

    Ethics declarations

    Conflict of interest

    The authors declare no competing interest.

    Additional information

    Reprints and permissions

    About this article

    Cite this article

    Zhao, L., Wu, Y. The Impacts of Riparian Vegetation Buffer Strips on Soil Nitrogen Components and Microbial Communities. Environmental Management (2025). https://doi.org/10.1007/s00267-025-02204-3

    • Received
    • Accepted
    • Published
    • DOI https://doi.org/10.1007/s00267-025-02204-3

    Keywords

WhatsApp