Characteristics of soil carbon, nitrogen, phosphorus and their ecological stoichiometric ratios in different habitats of East Lake Wetland, Fuzhou
XIE Yangyang1, LIU Xuyang1, JIN Qiang1, HUANG Jiafang1,2, HEI Jie1, LIN Shaoying1, HUANG Zhuang1, HOU Ning1, WANG Weiqi1,2
1. Institute of Geography, Fujian Normal University, 350007, Fuzhou, China; 2. Key Laboratory of Humid Sub-tropical Eco-geographical Process of Ministry of Education, Fujian Normal University, 350007, Fuzhou, China
Abstract:[Background] Human activities and reclamation lead to the degradation of Fuzhou East Lake Wetland. The stoichiometric ratios of soil C(carbon), N(nitrogen) and P(phosphorus) not only reflect the cycling process of C, N and P, but also is a predictor of C, N and P saturation limitation. Studying the characteristics of soil C, N, P and their stoichiometric ratios in different habitats is helpful to understanding the limitation of land nutrients and has guiding significance for the rational utilization, protection and restoration of wetland resources in this area.[Methods] This study selected the four wetland habitats of bare tidal flat, abandoned breeding pond, Phragmites australis wetland, and shelter forest, five replicates were collected from each habitat, and 0-15 cm of topsoil was collected to measure the contents of soil C, N, and P and their ecological stoichiometry characteristics, as well as the relationship between them and soil physicochemical factors was analyzed.[Results] 1) Contents of both soil C and N were basically in the order of shelter forest > P. australis wetland > abandoned breeding pond > bare tidal flat (P<0.05) whereas soil C and N contents in the shelter forest were 13.99 and 1.47 g/kg. Yet soil P content was basically in the order of shelter forest > abandoned breeding pond > bare tidal flat > P. australis wetland (P<0.05), while soil P content in the shelter forest was 0.33 g/kg. 2) The regression fitting degree between soil C and N in four wetland habitats was high (R=0.98, P<0.05). 3) Soil C/N were basically in the order of the P. australis wetland > shelter forest > abandoned breeding pond > bare tidal flat, while C/P and N/P in the soils were significantly (P<0.05) in the order of P. australis wetland > shelter forest > bare tidal flat > abandoned breeding pond. 4) Soil environmental factors had a certain effect on C, N, P, and their stoichiometric ratios, as there were various correlations between soil C and density (R=-0.45, P<0.05), soil P and density (R=0.64, P<0.01), soil P and pH (R=0.67, P<0.01), soil P and water content (R=-0.73, P<0.01), soil C/N and density (R=-0.45, P<0.05), and electrical conductivity (R=-0.52, P<0.05); soil N/P and water content (R=0.82, P<0.01), soil N/P and with density (R=-0.88, P<0.01), and soil N/P and pH (R=-0.66, P<0.01).[Conclusions] Shelter forests regulated the changes of soil C, N, P and their ecological stoichiometric ratios in various wetland habitats, and contributed the most among the four wetland habitats. Our findings are of great significance in shelter forest for clarifying regulating variations of soil C, N, and P, as well as and their ecological stoichiometric ratios in various wetland habitats. This provides a scientific basis for the protection and restoration of key wetland ecosystems.
谢杨阳, 刘旭阳, 金强, 黄佳芳, 黑杰, 林少颖, 黄庄, 候宁, 王维奇. 福州东湖湿地不同生境土壤碳氮磷及其生态化学计量比特征[J]. 中国水土保持科学, 2023, 21(4): 79-90.
XIE Yangyang, LIU Xuyang, JIN Qiang, HUANG Jiafang, HEI Jie, LIN Shaoying, HUANG Zhuang, HOU Ning, WANG Weiqi. Characteristics of soil carbon, nitrogen, phosphorus and their ecological stoichiometric ratios in different habitats of East Lake Wetland, Fuzhou. SSWC, 2023, 21(4): 79-90.
SARDANS J, RIVAS-UBACH A, PEŇUELAS J, et al. The C:N:P stoichiometry of organisms and ecosystems in a changing world:A review and perspectives[J]. Perspectives in Plant Ecology, Evolution and Systematics, 2012, 14(1):33.
[2]
XU Hongwei, QU Qing, LI Peng, et al. Stocks and stoichiometry of soil organic carbon, total nitrogen, and total phosphorus after vegetation restoration in the loess hilly region, China[J]. Forests, 2019, 10(1):27.
[3]
陈晓旋,陈淑云,曾从盛,等.螃蟹对闽江河口湿地土壤碳氮磷含量及其生态化学计量学特征影响[J]. 环境科学学报, 2018, 38(3):1179. CHEN Xiaoxuan, CHEN Shuyun, ZENG Congsheng., et al. Effects of crabs on soil carbon, nitrogen, phosphorus concentration and ecological stoichiometry in Minjiang River estuarine wetlands[J]. Acta Scientiae Circumstantiae, 2018, 38(3):1179.
[4]
王绍强,于贵瑞.生态系统碳氮磷元素的生态化学计量学特征[J]. 生态学报, 2008, 28(8):3937. WANG Shaoqiang, YU Guirui. Ecological stoichiometry characteristics of ecosystem carbon, nitrogen and phosphorus elements[J]. Acta Ecologica Sinica, 2008, 28(8):3937.
[5]
ZHANG Peng, WEI Ting, LI Yuling, et al. Effects of straw incorporation on the stratification of the soil organic C, total N and C:N ratio in a semiarid region of China[J]. Soil and Tillage Research, 2015, 153:28.
[6]
金宝石,闫鸿远,王维奇,等.互花米草入侵下湿地土壤碳氮磷变化及化学计量学特征[J].应用生态学报, 2017, 28(5):1541. JIN Baoshi, YAN Hongyuan, WANG Weiqi, et al. Changes of soil carbon, nitrogen and phosphorus and stoichiometry characteristics in marsh invaded by Spartina alterniflora[J]. Chinese Journal of Applied Ecology, 2017, 28(5):1541.
[7]
NIE Yong, LI Ainong. Assessment of alpine wetland dynamics from 1976-2006 in the vicinity of Mount Everest[J]. Wetlands, 2011, 31(5):875.
[8]
YANG Ping, YANG Hong, SARDANS J, et al. Large spatial variations in diffusive CH4 fluxes from a subtropical coastal reservoir affected by sewage discharge in Southeast China[J]. Environmental Science and Technology, 2020, 54(22):14192.
[9]
鲁如坤.土壤化学农业分析方法[M]. 北京:中国农业科技出版社, 2000:269. LU Rukun. Soil agricultural chemical analysis method[M]. Beijing:China Agricultural Science and Technology Press, 2000:269.
[10]
赵永全,何彤慧,夏贵菊.银川平原芦苇湿地土壤含水量及土壤生源要素垂直分布特征[J]. 西北林学院学报, 2017, 32(1):37. ZHAO Yongquan, HE Tonghui, XIA Guiju, et al. Characteristics of vertical distribution of soil moisture and soil biogenic elements of Phragmites australis wetland in Yinchuan plain[J]. Journal of Northwest Forestry University, 2017, 32(1):37.
[11]
郗敏,孔范龙,李悦,等.胶州湾滨海湿地土壤的盐渍化特征[J]. 水土保持通报, 2016, 36(6):288. XI Min, KONG Fanlong, LI Yue, et al. Analysis on characteristics of soil salinization in coastal wetlands of Jiaozhou Bay[J]. Bulletin of Soil and Water Conservation, 2016, 36(6):288.
[12]
邵学新,李文华,吴明,等.杭州湾潮滩湿地3种优势植物碳氮磷储量特征研究[J]. 环境科学, 2013, 34(9):3451. SHAO Xuexin, LI Wenhua, WU Ming, et al. Dynamics of carbon, nitrogen and phosphorus storage of three dominant marsh plants in Hangzhou Bay coastal wetland[J]. Environmental Science, 2013, 34(9):3451.
[13]
孙万龙,孙志高,孙文广,等.黄河口潮滩湿地土壤CH4氧化潜力及其对有机物输入的响应[J]. 草业学报, 2014, 23(1):104. SUN Wanlong, SUN Zhigao, SUN Wenguang, et al. The methane oxidation potential of soils in tidal marshes of the Yellow River estuary and its responses to import of organic matter[J]. Acta Prataculturae Sinica, 2013, 34(9):3451.
[14]
白军红,欧阳华,邓伟,等.湿地氮素传输过程研究进展[J]. 生态学报, 2005, 25(2):326. BAI Junhong, OUYANG Hua, DENG Wei, et al. A review on nitrogen transmission processes in natural wetlands[J]. Acta Ecologica Sinica, 2005, 25(2):326.
[15]
王维奇,王纯,仝川,等.闽江河口区盐-淡水梯度下芦苇沼泽土壤有机碳特征[J]. 湿地科学, 2012, 10(2):164. WANG Weiqi, WANG Chun, TONG Chuan, et al. Soil organic carbon along a salinity gradient in Phragmites australis marsh in the Minjiang River estuary[J]. Wetland Science, 2012, 10(2):164.
[16]
钟春柳,黄义雄,张巧,等.平潭4种主要防护林碳氮磷化学计量特征与碳氮储量研究[J]. 西南林业大学学报, 2016, 36(2):96. ZHONG Chunliu, HUANG Yixiong, ZHANG Qiao, et al. The stoichiometric characteristics and carbon, nitrogen stores of four main coastal shelterbelt forests in Pingtan[J]. Journal of Southwest Forestry University, 2016, 36(2):96.
[17]
LIU Peipei, WANG Qinggai, BAI Junhong, et al. Decomposition and return of C and N of plant litters of Phragmites australis and Suaeda salsa in typical wetlands of the Yellow River Delta, China[J].Procedia Environmental Sciences, 2010,2:1717.
[18]
甘树,卢少勇,秦普丰,等.太湖西岸湖滨带沉积物氮磷有机质分布及评价[J]. 环境科学, 2012, 33(9):3064. GAN Shu, LU Shaoyong, QIN Pufeng, et al. Spatial distribution and evaluation of nitrogen, phosphorus and organic matter in surface sediments from western lakeside belt of Lake Taihu[J]. Environmental Science, 2012, 33(9):3064.
[19]
王纯,王维奇,曾从盛,等.闽江河口区盐-淡水梯度下湿地土壤氮形态及储量特征[J]. 水土保持学报, 2011, 25(5):147. WANG Chun, WANG Weiqi, ZENG Congsheng, et al. Soil nitrogen forms concentration and storage along saline-fresh water of Minjiang River estuarine wetland[J]. Journal of Soil and Water Conservation, 2011, 25(5):147.
[20]
袁彦婷,丁振华,张玲,等.土地利用方式改变对红树林沉积物中营养元素含量的影响[J]. 地球与环境, 2012, 40(3):385. YUAN Yanting, DING Zhenhua, ZHANG Ling, et al. Impact of different land use modes on nutrients of sediments from mangrove wetlands of China[J]. Earth and Environment, 2012, 40(3):385.
[21]
MONTES R A, CHRISTENSEN No L. Nitrification and succession in the Piedmont of North Carolina[J]. Forest Science,1979,2:287.
[22]
张向茹,马露莎,陈亚南,等.黄土高原不同纬度下刺槐林土壤生态化学计量学特征研究[J]. 土壤学报, 2013, 50(4):818. ZHANG Xiangru, MA Lusha, CHEN Yanan, et al. Ecological stoichiometry characteristics of Robinia pseudoacacia forest soil in different latitudes of Loess Plateau[J]. Acta Pedologica Sinica, 2013, 50(4):818.
[23]
邱岭军,何宗明,胡欢甜,等.滨海沙地不同树种碳氮磷化学计量特征[J]. 应用与环境生物学报, 2017, 23(3):555. QIU Lingjun, HE Zongming, HU Huantian, et al. Stoichiometric characteristics of carbon, nitrogen and phosphorus in different tree species in a sandy coastal plain area[J]. Chinese Journal of Applied and Environmental Biology, 2017,23(3):555.
[24]
刘玥,杨继松,于洋,等.辽河口不同类型湿地土壤碳氮磷生态化学计量学特征[J]. 生态学杂志, 2020, 39(9):3011. LIU Yue, YANG Jisong, YU Yang, et al. Stoichiometric characteristics of carbon, nitrogen and phosphorus of soil in the Liaohe estuary wetlands[J]. Chinese Journal of Ecology, 2020, 39(9):3011.
[25]
何高迅,王越,彭淑娴,等.滇中退化山地不同植被恢复下土壤碳氮磷储量与生态化学计量特征[J]. 生态学报, 2020, 40(13):4425. HE Gaoxun, WANG Yue, PENG Shuxian, et al. Soil carbon, nitrogen and phosphorus stocks and ecological stoichiometry characteristics of different vegetation restorations in degraded mountainous area of central Yunnan, China[J]. Acta Ecologica Sinica, 2020, 40(13):4425.
[26]
TIAN Hanqin, CHEN Guangsheng, ZHANG Chi, et al. Pattern and variation of C:N:P ratios in China's soils:A synthesis of observational data[J].Biogeochemistry, 2010,98(1/3):139.