Abstract
Quantitative methods were used to examine soil properties and their spatial heterogeneity in a 0-year fenced mobile dune (MD0), an 11-year fenced mobile dune (MD11) and a 20-year fenced mobile dune (MD20) in Horqin Sandy Land, Northern China. The objective of the study was to assess the effect of vegetation restoration on heterogeneity of soil properties in sand dunes and to provide a concept model to describe the relationship between vegetation succession and spatial heterogeneity variation of soil properties in the dunes. The results showed that the average values of vegetation cover, species number and diversity, soil organic carbon (C), total nitrogen (N), and electrical conductivity (EC) increased with the increase in fenced age of mobile dunes, while soil water content (0–20 cm) showed the reverse trend. Geostatistical analysis revealed that the spatial heterogeneity of soil organic C, total N, EC, very fine sand content, and soil water content (0–20 cm) increased from MD0 to MD11 with succession from sand pioneer plant to shrub species then decreased from MD11 to MD20 due to continuous development of herbaceous plants. Canonical correspondence analysis (CCA) showed that there was a relatively high correspondence between vegetation and soil factors, suggesting that the major gradients relating soil organic C, total N, EC, pH, slope, very fine sand content, and soil water content are the main factors for the distribution of dune plants and account for 68.1% of the species-environment relationship among the three sites. In addition, the distribution of the sand pioneer plant was positively related to the relative height of the sampling site and soil water content, and that of most herbaceous plants were determined by soil organic C, total N, EC, pH, and very fine sand content in mobile dunes. The conceptual model of relationship between vegetation succession and spatial heterogeneity of soil properties in mobile dunes suggests spatial patterns of soil properties are most strongly related to plant-induced heterogeneity in dune ecosystems prone to wind erosion, and conversely, the magnitude and degree of spatial heterogeneity in soil properties can influence the plant distribution pattern and vegetation succession of mobile dunes.
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References
Abd El-Ghani MM, Amer MA (2003) Soil-vegetation relationships in coastal desert plain of southern Sinai, Egypt. J Arid Environ 55:607–628. doi:10.1016/S0140-1963(02)00318-X
Aguiar MR, Sala OE (1999) Patch structure, dynamics and implications for the functioning of arid ecosystems. Trends Ecol Evol 14:273–277. doi:10.1016/S0169-5347(99)01612-2
Antoine G, Niklaus EZ (2000) Predictive habitat distribution models in ecology. Ecol Modell 135:147–186. doi:10.1016/S0304-3800(00)00354-9
Avis AM, Lubke RA (1996) Dynamics and succession of coastal dune vegetation in the Eastern Cape, South Africa. Landsc Urban Plan 34:237–254. doi:10.1016/0169-2046(95)00217-0
Beyer L, Tielborger K, Blume HP, Pfisterer U, Pingpank K, Podlech D (1998) Geo-ecological soil features and the vegetation pattern in an arid dune area in the Northern Negev, Israel. Z Fur Pflanzenernahrung Und Bodenkunde 161:347–356
Boettcher SE, Kalisz PJ (1990) Single-tree influence on soil properties in the mountains of eastern Kentucky. Ecology 71:1365–1372. doi:10.2307/1938273
Burke IC, Lauenroth WK, Riggle R, Brannen P, Madigan B, Beard S (1999) Spatial variability in soil properties in the shortgrass steppe: the relative importance of topography, grazing, microsite, and plant species in controlling spatial patterns. Ecosystems (N Y, Print) 2:422–438. doi:10.1007/s100219900091
Cannavacciuolo M, Bellido A, Cluzeau D, Gascuel C, Trehen P (1998) A geostatistical approach to the study of earthworm distribution in grassland. Appl Soil Ecol 9:345–349. doi:10.1016/S0929-1393(98)00087-0
Chapin FSIII, Walker LR, Fastie CL, Sharman LC (1994) Mechanisms of primary succession following deglaciation at Glacier Bay, Alaska. Ecol Monogr 64:149–175. doi:10.2307/2937039
Chiarucci A, Rocchini D, Leonzio C, De Dominicis V (2001) A test of vegetation-environment relationship in serpentine soils of Tuscany, Italy. Ecol Res 16:627–639. doi:10.1046/j.1440-1703.2001.00437.x
Cook JG, Irwin LL (1992) Climate-vegetation relationships between the Great Plains and Great Basin. Am Midl Nat 127:316–326. doi:10.2307/2426538
da Silva DM, Batalha MA (2008) Soil-vegetation relationships in cerrados under different fire frequencies. Plant Soil 311:87–96. doi:10.1007/s11104-008-9660-y
Daiyuan P, Bouchard A, Legendre P, Gérald D (1998) Influence of edaphic factors on the spatial structure of inland halophytic communities: a case study in China. J Veg Sci 9:797–804. doi:10.2307/3237045
Fowler N (1986) The role of competition in plant communities in arid and semiarid regions. Ann- Rev Ecol Syst 17:89–110. doi:10.1146/annurev.es.17.110186.000513
Gamma Design Software GS+5.3. 2002. Geostatistics for the Environmental Sciences
Geostatistics for the Environmental Sciences: GS+ User’s Guide, Version 5.3 Gamma Design Software, MI
Gross K, Regitzer K, Burton A (1995) Spatial variation in nitrogen availability in three successional plant communities. J Ecol 83:357–367. doi:10.2307/2261590
Herman RP, Provencio KR, Herrera-Matos J, Torrez RJ (1995) Resource islands predicts the distribution of heterotrophic bacteria in Chihuahuan desert soils. Appl Environ Microbiol 61:1816–1821
Holmgren M, Scheffer M (2001) El Niño as a window of opportunity for the restoration of degraded arid ecosystems. Ecosystems (N Y, Print) 4:151–159. doi:10.1007/s100210000065
Hook PB, Burke IC, Lauenroth WK (1991) Heterogeneity of soil and plant N and C associated with individual plants and openings in North American shortgrass steppe. Plant Soil 138:247–256. doi:10.1007/BF00012252
Huang G, Zhao XY, Su YG, Zhao HL, Zhang TH (2008) Vertical distribution, biomass, production and turnover of fine roots along a topographical gradient in a sandy shrubland. Plant Soil 308:201–212. doi:10.1007/s11104-008-9620-6
Huenneke LF, Anderson JP, Remmenga M, Schlesinger WH (2002) Desertification alters patterns of aboveground net primary production in Chihuahua ecosystems. Glob Change Biol 8:247–264. doi:10.1046/j.1365-2486.2002.00473.x
Huerta-Martínez FM, Vázquez-García JA, García-Moya E, López-Mata L, Vaquera-Huerta H (2004) Vegetation ordination at the southern Chihuahuan Desert (San Luis Potosi, Mexico). Plant Ecol 174:79–87. doi:10.1023/B:VEGE.0000046063.12313.74
Institute of Soil Sciences Chinese Academy of Sciences (ISSCAS) (1978) Physical and chemical analysis methods of soils. Shanghai Science Technology Press, Shanghai, pp 7–59 (In Chinese)
Isaaks E, Srivastava R (1989) Applied geostatistics. Oxford University Press, New York, p 561
Jafari M, Zare C, Tavili A, Azarnivand H, Zahedi Amiri G (2004) Effective environmental factors in the distribution of vegetation types in Poshtkouh rangelands of Yazd Province (Iran). J Arid Environ 56:627–641. doi:10.1016/S0140-1963(03)00077-6
Katherinel G, Kurts P, Andrew JB (1995) Spatial variation in nitrogen availability in three successional plant communities. J Ecol 83:357–367. doi:10.2307/2261590
Keitt TH, Bjørnstad ON, Dixon PM, Citron-Pousty S (2002) Accounting for spatial pattern when modeling organism-environment interactions. Ecography 25:616–625. doi:10.1034/j.1600-0587.2002.250509.x
Li YY, Shao MA (2006) Change of soil physical properties under long-term natural vegetation restoration in the Loess Plateau of China. J Arid Environ 64:77–96. doi:10.1016/j.jaridenv.2005.04.005
Li FR, Zhao WZ, Liu JL, Huang ZG Degraded vegetation and wind erosion influence soil carbon, nitrogen and phosphorus accumulation in sandy grasslands. Plant Soil.. doi:10.1007/s11104-008-9789-8
Li SG, Harazono Y, Zhao HL, He ZY, Chang XL, Zhao XY, Zhang TH, Oikawa T (2002) Micrometeorological changes following establishment of artificially established Artemisia vegetation on desertified sandy land in the Horqin sandyland, China and their implication in regional environmental change. J Arid Environ 52:101–119
Li XR, Ma FY, Xiao HL, Wang XP, Kim KC (2004) Long-term effects of revegetation on soil water content of sand dunes in arid region of Northern China. J Arid Environ 57:1–16. doi:10.1016/S0140-1963(03)00089-2
Maestre FT, Cortina J, Bautista S, Bellot J, Vallejo R (2003) Small-scale environmental heterogeneity and spatiotemporal dynamics of seedling survival in a degraded semiarid ecosystem. Ecosystems (N Y, Print) 6:630–643. doi:10.1007/s10021-002-0222-5
Mun HT, Whitford WG (1998) Changes in mass and chemistry of plant roots during long-term decomposition on a Chihuahuan Desert watershed. Biol Fertil Soils 26:16–22. doi:10.1007/s003740050336
Nelson D, Sommers L (1982) Total carbon, organic carbon and organic matter. In: Page AL et al (ed) Methods of soil analysis, part 2, ASA Publication No. 9, 2nd edn.Madison, WI, pp 539–577
Pan D, Bouchard A, Legendre P, Domon G (1998) Influence of edaphic factors on the spatial structure of inland halophytic communities: a case study in China. J Veg Sci 9:797–804. doi:10.2307/3237045
Parker K (1991) Topography, substrate, and vegetation patterns in the northern Sonoran Desert. J Biogeogr 18:151–163. doi:10.2307/2845289
Perelman SB, León RJC, Oesterheld M (2001) Cross-scale vegetation patterns of Flooding Pampa grasslands. J Ecol 89:562–577. doi:10.1046/j.0022-0477.2001.00579.x
Puignaire FI, Haase P, Puigdefábregas J (1996) Facilitation between higher plant species in a semiarid environment. Ecology 77:1420–1426. doi:10.2307/2265539
Reynolds JF, Virginia RA, Kemp PR, de Soyza AG, Tremmel DC (1999) Impact of drought on desert shrubs: effects of seasonality and degree of resource island development. Ecol Monogr 69:69–106
Ricklefs RE (1990) Ecology, 3rd edn. Freeman W H and Company, New York, USA 896 p
Robertson GP, Crum JR, Ellis BG (1993) The spatial variability of soil resources following long-term disturbance. Oecologia 96:451–456. doi:10.1007/BF00320501
Robinson D, Hodge A, Griffiths BS, Fitter AH (1999) Plant root proliferation in nitrogen-rich patches confers competitive advantage. Proc R Soc Lond B Biol Sci 266:431–435. doi:10.1098/rspb.1999.0656
Sabino CM, Teixeira Filho PF, Zee DMW, da Rocha CFD (1993) Restoring the beach profile with vegetation. In: Magoon OT, Wilson WS, Converse H, Tobin LT (eds) Coastal Zone 93. American Society of Civil Engineers, New York, pp 2312–2323
Schimel DS, Coleman DC, Horton KA (1985) Soil organic matter dynamics in paired rangeland and cropland toposequences in North Dakota. Geoderma 36:201–214. doi:10.1016/0016-7061(85)90002-3
Schlesinger WH, Pilmanis AM (1998) Plant-soil interactions in deserts. Biogeochemistry 42:169–187. doi:10.1023/A:1005939924434
Schlesinger WH, Reynolds JF, Cunningham GL, Huenneke LF, Jarrell WM, Virginia RA, Whitford WG (1990) Biological feedbacks in global desertification. Science 247:1043–1048. doi:10.1126/science.247.4946.1043
Schlesinger WH, Raikes JA, Hartley AE, Cross AF (1996) On the spatial pattern of soil nutrients in desert ecosystems. Ecology 77:364–374. doi:10.2307/2265615
Shumway SW (2000) Facilitative effects of a sand shrub on species growing beneath the shrub canopy. Oecologia 124:138–148. doi:10.1007/s004420050033
Su YZ, Zhang TH, Li YL, Wang F (2005) Changes in soil properties after establishment of Artemisia halodendron and Caragana microphylla on shifting sand dunes in semiarid Horqin Sandy Land, Northern China. Environ Manag (N Y) 36:272–281. doi:10.1007/s00267-004-4083-x
Su YZ, Li YL, Zhao HL (2006) Soil properties and their spatial pattern in a degraded sandy grassland under post-grazing restoration, Inner Mongolia, northern China. Biogeochemistry 79:297–314. doi:10.1007/s10533-005-5273-1
ter Braak C (1986) Canonical correspondence analysis: a new eigenvector method for multivariate director gradient analysis. Ecology 67:1167–1179. doi:10.2307/1938672
ter Braak C, Prentice I (1988) A theory of gradient analysis. Adv Ecol Res 18:271–317. doi:10.1016/S0065-2504(08)60183-X
ter Braak C, Smilauer P (1998) CANOCO Releases 4.0 Reference Manual and User’s Guide to Canoco for Windows. Microcomputer Power, Ithaca, NY
Titus JH, Nowak RS, Smith SD (2002) Soil resource heterogeneity in the Mojave Desert. J Arid Environ 52:269–292. doi:10.1006/jare.2002.1010
Trimble JB (1995) Geomorphic effects of vegetation cover and management: some time and space considerations in prediction of erosion and sediment yield. In: Thornes J (ed) Vegetation and erosion, processes and environments. Wiley, London, pp 169–194
Wallace CSA, Watts JM, Yool SR (2000) Characterizing the spatial structure of vegetation communities in the Mojave Desert using geostatistical techniques. Comput Geosci-UK 26:397–410. doi:10.1016/S0098-3004(99)00120-X
Wetzel A, Rajot JL, Herbrig C (2000) Influence of shrubs on soil characteristics and their function in Sahelian agro-ecosystems in semi-arid Niger. J Arid Environ 44:383–398. doi:10.1006/jare.1999.0609
Whitford WG, Anderson J, Rice PM (1997) Stemflow contribution to the ‘fertile island’ effect in creosote bush, Larrea tridentata. J Arid Environ 35:451–457. doi:10.1006/jare.1996.0164
Whittaker RJ, Willis K, Field R (2001) Scale and species richness: towards a general hierarchical theory of species diversity. J Biogeogr 28:453–470. doi:10.1046/j.1365-2699.2001.00563.x
Zeng DH, Hu YL, Chang SX, Fan ZP (2008) Land cover change effects on soil chemical and biological properties after planting Mongolian pine (Pinus sylvestris var. mongolica) in sandy lands in Keerqin, northeastern China. Plant Soil.. doi:10.1007/s11104-008-9793-z
Zhang JY, Zhao HL, Zhang TH, Zhao XY, Drake S (2005a) Community succession along a chronosequence of vegetation restoration on sand dunes in Horqin Sandy Land. J Arid Environ 62:555–566. doi:10.1016/j.jaridenv.2005.01.016
Zhang YM, Chen YN, Pan BR (2005b) Distribution and floristics of desert plant communities in the lower reaches of Tarim River, southern Xinjiang, People’s Republic of China. J Arid Environ 63:772–784. doi:10.1016/j.jaridenv.2005.03.023
Zhao HL, Zhao XY, Zhang TH, Zhou RL (2005) Desertification Processes of Sandy Rangeland Due to Over-grazing in Semi-arid Area, Inner Mongolia, China. J Arid Environ 62:309–319. doi:10.1016/j.jaridenv.2004.11.009
Zheng J, He M, Li X, Chen Y, Li X, Liu L (2008) Effects of Salsola passerina shrub patches on the microscale heterogeneity of soil in a montane grassland, China. J Arid Environ 72:150–161. doi:10.1016/j.jaridenv.2007.05.010
Zhu ZD, Chen GT (1994) The sandy desertification in China. Science Press, Beijing, pp 7–268 (in Chinese)
Zuo XA, Zhao HL, Zhao XY, Guo YR, Li YL, Luo YY (2008a) Plant distribution at the mobile dune scale and its relevance to soil properties and topographic features. Environ Geol 54:1111–1120. doi:10.1007/s00254-007-1104-0
Zuo XA, Zhao HL, Zhao XY, Zhang TH, Guo YR, Wang SK, Drake S (2008b) Spatial pattern and heterogeneity of soil properties in sand dunes under grazing and restoration in Horqin Sandy Land, Northern China. Soil Tillage Res 99:202–212. doi:10.1016/j.still.2008.02.008
Acknowledgements
Authors thank all the members of Naiman Desertification Research Station, China Academy of Sciences (CAS), for their help in field work. We wish to thank Dr Victor Squires for valuable comments on the manuscript. We also wish to thank two anonymous reviewers for valuable comments on the manuscript. This paper was financially supported by the “Xibuzhiguang” Project of Chinese Academy of Sciences, the National Nature Science Foundation of China (40601008), the Knowledge Innovation Programs of the Chinese Academy of Sciences (KZCX2-YW-431) and National Key Technologies Support Program of China (2006BAC01A12, 2006BAD26B02).
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Zuo, X., Zhao, X., Zhao, H. et al. Spatial heterogeneity of soil properties and vegetation–soil relationships following vegetation restoration of mobile dunes in Horqin Sandy Land, Northern China. Plant Soil 318, 153–167 (2009). https://doi.org/10.1007/s11104-008-9826-7
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DOI: https://doi.org/10.1007/s11104-008-9826-7