MA Yuexin, TAO Wei, LIU Changfa, LIU Jiao, YANG Zhiping, LI Jin, LIU Jichen. Response of microbial biomass and bacterial community composition to fertilization in a salt marsh in China[J]. Acta Oceanologica Sinica, 2017, 36(6): 80-88. doi: 10.1007/s13131-017-1048-5
Citation: MA Yuexin, TAO Wei, LIU Changfa, LIU Jiao, YANG Zhiping, LI Jin, LIU Jichen. Response of microbial biomass and bacterial community composition to fertilization in a salt marsh in China[J]. Acta Oceanologica Sinica, 2017, 36(6): 80-88. doi: 10.1007/s13131-017-1048-5

Response of microbial biomass and bacterial community composition to fertilization in a salt marsh in China

doi: 10.1007/s13131-017-1048-5
  • Received Date: 2016-01-16
  • Rev Recd Date: 2016-08-02
  • The effects of nitrogen (N) addition on microbial biomass, bacterial abundance, and community composition in sediment colonized by Suaeda heteroptera were examined by chloroform fumigation extraction method, real-time quantitative polymerase chain reaction, and denaturing gradient gel electrophoresis (DGGE) in a salt marsh located in Shuangtai Estuary, China. The sediment samples were collected from plots treated with different amounts of a single N fertilizer (urea supplied at 0.1, 0.2, 0.4 and 0.8 g/kg (nitrogen content in sediment) and different forms of N fertilizers (urea, (NH4)2SO4, and NH4NO3, each supplied at 0.2 g/kg (calculated by nitrogen). The fertilizers were applied 1-4 times during the plant-growing season in May, July, August, and September of 2013. Untreated plots were included as a control. The results showed that both the amount and form of N positively influenced microbial biomass carbon, microbial biomass nitrogen, and bacterial abundance. The DGGE profiles revealed that the bacterial community composition was also affected by the amount and form of N. Thus, our findings indicate that short-term N amendment increases microbial biomass and bacterial abundance, and alters the structure of bacterial community.
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  • Alon A, Steinberger Y. 1999. Effect of nitrogen amendments on microbial biomass, above-ground biomass and nematode population in the Negev Desert soil. J Arid Environ, 41(4):429-441
    Barbier E B, Hacker S D, Kennedy C, et al. 2011. The value of estuarine and coastal ecosystem services. Ecol Monogr, 81(2):169-193
    Bowen J L, Byrnes J E K, Weisman D, et al. 2013. Functional gene pyrosequencing and network analysis:an approach to examine the response of denitrifying bacteria to increased nitrogen supply in salt marsh sediments. Front Microbiol, 4:342
    Bowen J L, Crump B C, Deegan L A, et al. 2009. Salt marsh sediment bacteria:their distribution and response to external nutrient inputs. ISME J, 3(8):924-934
    Bowen J L, Valiela I. 2004. Nitrogen loads to estuaries:using loading models to assess the effectiveness of management options to restore estuarine water quality. Estuaries, 27(3):482-500
    Bowen J L, Ward B B, Morrison H G, et al. 2011. Microbial community composition in sediments resists perturbation by nutrient enrichment. ISME J, 5(9):1540-1548
    Chinnadurai C, Gopalaswamy G, Balachandar D. 2014. Long term effects of nutrient management regimes on abundance of bacterial genes and soil biochemical processes for fertility sustainability in a semi-arid tropical Alfisol. Geoderma, 232-234:563-572
    Cole M L, Kroeger K D, McClelland J W, et al. 2006. Effects of watershed land use on nitrogen concentrations and δ15 nitrogen in groundwater. Biogeochemistry, 77(2):199-215
    Compton J E, Watrud L S, Porteous L A, et al. 2004. Response of soil microbial biomass and community composition to chronic nitrogen additions at Harvard forest. Forest Ecol Manag, 196(1):143-158
    Cusack D F, Silver W L, Torn M S, et al. 2011. Changes in microbial community characteristics and soil organic matter with nitrogen additions in two tropical forests. Ecology, 92(3):621-632
    Dang Hongyue, Li Jing, Chen Ruipeng, et al. 2010. Diversity, abundance, and spatial distribution of sediment ammonia-oxidizing betaproteobacteria in response to environmental gradients and coastal eutrophication in Jiaozhou Bay, China. Appl Environ Microbiol, 76(14):4691-4702
    Deegan L A, Johnson D S, Warren R S, et al. 2012. Coastal eutrophication as a driver of salt marsh loss. Nature, 490(7420):388-392
    Fitch R, Theodose T, Dionne M. 2009. Relationships among upland development, nitrogen, and plant community composition in a Maine salt marsh. Wetlands, 29(4):1179-1188
    Gedan K B, Silliman B R, Bertness M D. 2009. Centuries of human-driven change in salt marsh ecosystems. Ann Rev Mar Sci, 1(1):117-141
    Howarth R W, Sharpley A, Walker D. 2002. Sources of nutrient pollution to coastal waters in the United States:implications for achieving coastal water quality goals. Estuaries, 25(4b):656-676
    Irvine I C, Vivanco L, Bentley P N, et al. 2012. The effect of nitrogen enrichment on C1-cycling microorganisms and methane flux in salt marsh sediments. Front Microbiol, 3:90
    Lage M D, Reed H E, Weihe C, et al. 2010. Nitrogen and phosphorus enrichment alter the composition of ammonia-oxidizing bacteria in salt marsh sediments. ISME J, 4(7):933-944
    Li Lujun, Zeng Dehui, Yu Zhanyuan, et al. 2010. Soil microbial properties under N and P additions in a semi-arid, sandy grassland. Biol Fertil Soils, 46(6):653-658
    Liu Weixing, Xu Wenhua, Han Yi, et al. 2007. Responses of microbial biomass and respiration of soil to topography, burning, and nitrogen fertilization in a temperate steppe. Biol Fertil Soils, 44(2):259-268
    Luo Zhuanxi, Qiu Zhaozheng, Wei Qunshan, et al. 2014. Dynamics of ammonia-oxidizing archaea and bacteria in relation to nitrification along simulated dissolved oxygen gradient in sediment-water interface of the Jiulong river estuarine wetland, China. Environ Earth Sci, 72(7):2225-2237
    Muyzer G, de waal E C, Uitterlinden A G. 1993. Profiling of complex microbial populations by denaturing gradient gel electrophoresis analysis of polymerase chain reaction-amplified genes coding for 16S rRNA. Appl Environ Microbiol, 59(3):695-700
    Nicol G W, Webster G, Glover L A, et al. 2004. Differential response of archaeal and bacterial communities to nitrogen inputs and pH changes in upland pasture rhizosphere soil. Environ Microbiol, 6(8):861-867
    Peng Xuefeng, Yando E, Hildebrand E, et al. 2012. Differential responses of ammonia-oxidizing archaea and bacteria to long-term fertilization in a New England salt marsh. Front Microbiol, 3:445
    Ramirez K S, Craine J M, Fierer N. 2012. Consistent effects of nitrogen amendments on soil microbial communities and processes across biomes. Global Change Biol, 18(6):1918-1927
    Ramirez K S, Lauber C L, Knight R, et al. 2010. Consistent effects of nitrogen fertilization on soil bacterial communities in contrasting systems. Ecology, 91(12):3463-3470
    Shen Jupei, Zhang Limei, Guo Junfu, et al. 2010. Impact of long-term fertilization practices on the abundance and composition of soil bacterial communities in Northeast China. Appl Soil Ecol, 46(1):119-124
    Tamura K, Dudley J, Nei M, et al. 2007. MEGA4:Molecular Evolutionary Genetics Analysis (MEGA) software version 4.0. Mol Biol Evol, 24(8):1596-1599
    Treseder K K. 2008. Nitrogen additions and microbial biomass:a meta-analysis of ecosystem studies. Ecol Lett, 11(10):1111-1120
    Tsuboi S, Amemiya T, Seto K, et al. 2013. The ecological roles of bacterial populations in the surface sediments of coastal lagoon environments in Japan as revealed by quantification and qualification of 16S rDNA. World J Microbiol Biotechnol, 29(5):759-774
    Valiela I, Foreman K, LaMontagne M, et al. 1992. Couplings of watersheds and coastal waters:sources and consequences of nutrient enrichment in Waquoit Bay, Massachusetts. Estuaries, 15(4):443-457
    Valiela I, Teal J M, Allen S D, et al. 1985. Decomposition in salt marsh ecosystems:the phases and major factors affecting disappearance of above-ground organic matter. J Exp Mar Biol Ecol, 89(1):29-54
    Wallenstein M D, McNulty S, Fernandez I J, et al. 2006. Nitrogen fertilization decreases forest soil fungal and bacterial biomass in three long-term experiments. Forest Ecol Manag, 222(1-3):459-468
    Wu Jinshui, Lin Qimei, Huang Qiaoyun, et al. 2006. Method and Its Application in Determination of Soil Microbial Biomass (in Chinese). Beijing:China Meteorological Press, 54-78
    Xue Jinghua, Mo Jiangming, Li Jiong, et al. 2007. The short-term response of soil microorganism number to simulated nitrogen deposition. Guihaia (in Chinese), 27(2):174-179
    Zak D R, Holmes W E, Tomlinson M J, et al. 2006. Microbial cycling of C and N in northern hardwood forests receiving chronic atmospheric NO-3 deposition. Ecosystems, 9(2):242-253
    Zhang Qiufang, Peng Jingjing, Chen Qian, et al. 2011. Impacts of Spartina alterniflora invasion on abundance and composition of ammonia oxidizers in estuarine sediment. J Soil Sediment, 11(6):1020-1031
    Zhang Qishui, Zak J C. 1998. Effects of water and nitrogen amendment on soil microbial biomass and fine root production in a semi-arid environment in west Texas. Soil Eiol Biochem, 30(1):39-45
    Zhou Jing, Guan Dawei, Zhou Baoku, et al. 2015. Influence of 34-years of fertilization on bacterial communities in an intensively cultivated black soil in northeast China. Soil Biol Biochem, 90:42-51
    Zhou Xiaobing, Zhang Yuanming, Downing A. 2012. Non-linear response of microbial activity across a gradient of nitrogen addition to a soil from the Gurbantunggut Desert, northwestern China. Soil Biol Biochem, 47:67-77.
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