数字农科院2.0

The Retention Dynamics Of N Input Within The Soil-Microbe-Plant System In A Temperate Grassland

文献类型: 外文期刊

作者: Ma, LN; Gao, XL; Liu, GF; Xu, XF; Lu, XT; Xin, XP; Lu, YX; Zhang, CX; Zhang, LH; Wang, RZ

作者机构:

关键词: N deposition; N-15; N Retention; Non-growing season; Temperate grassland

期刊名称: GEODERMA

ISSN: 0016-7061

年卷期: 2020 年 368 卷

页码:

收录情况: JCR(2021版) ; EI(2021版)

摘要: In N-limited temperate regions, atmospheric N deposition remains high over the non-growing season. However, the retention dynamics of non-growing season N input within the ecosystem remain unclear. Using an isotopic approach, we investigated the initial retention and subsequent dynamics of N-15 (1.5 g N-15 m(-2)) in the soils, microbes, plants, and litter over three years in grazing-prohibited (PG) and heavily grazed treatments (HG) in northern China. For initial retention (21 days after( 15)N addition), most N-15 was immobilized in soils and microbes, while less was taken up by plants. Soil and microbial N-15 immobilization were significantly higher when grazing was prohibited, although plant 15 Nacquisition was not affected by grazing. After initial retention, rapid N-15 loss was observed in microbes and soils, while N-15 levels were sustained longer in plants and litter. The N-15 residence times were longer when grazing was prohibited. The 15 Nacquisition capacity varies among plant taxa: perennial grasses and forbs accumulated N-15 rapidly, while sagebrush and legumes acted slowly. Although the added N-15 had significant contribution to early spring N demands of soil microbes and plants, it did not increase microbial or plant biomass N. Our results showed that non-growing season exogenous N was primarily retained by soil biota in temperate grasslands in the early stage, but N retention is finally sustained in soil and plants. The findings highlighted the importance of soil microbes in sustaining N upon N input, inferring the needs for considering the microbial role for better understanding N cycling in the temperate grasslands.

分类号:

  • 相关文献

[1]Comprehensive Environmental Impacts Of Fertilizer A.pplication Vary Among Different C rops: Implications For The Adjustment Of Agricultural Structure Aimed To Reduce Fertilizer Use. Li, WC, Guo, SF, Liu, HB, Zhai, LM, Wang, HY, Lei, QL. 2018

[2]Alternate Partial Root-Zone Drip Irrigation With Nitrogen Fertigation Promoted Tomato Growth, Water And Fertilizer-Nitrogen Use Efficiency. Liu, R, Yang, Y, Wang, YS, Wang, XC, Rengel, Z, Zhang, WJ, Shu, LZ. 2020

[3]Greenhouse Gas Emissions From The T.ibetan Alpine Grassland: Effects O f Nitrogen And Phosphorus Addition. Gao, Yang,George, Timothy S.,Ren, Fei,Mi, Zhaorong,Mi, Zhaorong,Liang, Yueping,Ren, Fei,Wang, Guangshuai,Wang, Guangshuai,Yang, Xiaoxia,Yang, Xiaoxia,Zhang, Zhenhua. 2018

[4]Nitrogen Acquisition Strategies During The W.inter-Spring Transitional Period Are D ivergent At The Species Level Yet Convergent At The Ecosystem Level In Temperate Grasslands. Ma, LN, Liu, GF, Xu, XF, Xin, XP, Bai, WM, Zhang, LH, Chen, SP, Wang, RZ. 2018

[5]Nitrous Oxide Emissions Following Seasonal F.reeze-Thaw Events From Arable S oils In Northeast China. Chen, Z, Yang, SQ, Zhang, AP, Jing, X, Song, WM, Mi, ZR, Zhang, QW, Wang, WY, Yang, ZL. 2018

[6]Nitrous oxide emissions following seasonal freeze-thaw events from arable soils in Northeast China. CHEN Zhe, YANG Shi-qi, ZHANG Ai-ping, JING Xin, SONG Wei-min, MI Zhao-rong, ZHANG Qingwen. 2018

[7]Shrub Patches Capture Tumble Plants: P.otential Evidence For A S elf-Reinforcing Pattern In A Semiarid Shrub Encroached Grassland. Yan, YC, Xu, DW, Xu, XL, Wang, DL, Wang, X, Cai, YR, Chen, JQ, Xin, XP, Eldridge, DJ. 2019

[8]The Fertile Island Effect Collapses Under Extreme Overgrazing: Evidence From A Shrub-Encroached Grassland. Cai, YR, Yan, YH, Xu, DW, Xu, XL, Wang, C, Wang, X, Chen, JQ, Xin, XP, Eldridge, DJ. 2020

[9]Responses of bacterial community composition and diversity to multi-level nitrogen addition at different periods of growing season driven by conditional rare taxa in an alpine meadow. Hu, Yilun,Ganjurjav, Hasbagan,Hu, Guozheng,Ji, Guoxu,Han, Lin,Sha, Yubao,Liang, Yan,Gao, Qingzhu. 2023

[10]An integrated belowground trait-based understanding of nitrogen-driven plant diversity loss. Tian, Qiuying,Lu, Peng,Zhai, Xiufeng,Zhang, Ruifang,Zheng, Yao,Wang, Hong,Nie, Bao,Bai, Wenming,Niu, Shuli,Shi, Peili,Yang, Yuanhe,Li, Kaihui,Yang, Dianlin,Stevens, Carly,Lambers, Hans,Zhang, Wen-Hao. 2022

[11]What is the character of N deposition and its proportion to NH3 and NOX inside horticultural greenhouse?. Tiantian Miao,Huan Liu,Yu'e Li,Yunfan Wan,Tianjing Ren,Andong Cai,Bin Wang. 2024

[12]The Seasonal Response of N2O Emissions to Increasing Precipitation and Nitrogen Deposition and Its Driving Factors in Temperate Semi-Arid Grassland. Qin Peng,Yuchun Qi,Feihu Yin,Yu Guo,Yunshe Dong,Xingren Liu,Xiujin Yuan,Ning Lv. 2024

[13]Resin-coated urea effectively simulates the chronic dynamics of natural nitrogen deposition. Zhao, Yi,Ke, Yuguang,Wu, Honghui,Xu, Chong,Li, Xiwen,Hautier, Yann,Borer, Elizabeth T.,Yu, Qiang. 2025

作者其他论文 更多>>