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Spatial pattern and heterogeneity of soil organic carbon and nitrogen in sand dunes related to vegetation change and geomorphic position in Horqin Sandy Land, Northern China

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Abstract

To assesses the effect of geomorphology, topography, and vegetation changes on spatial pattern of soil organic carbon (C) and total nitrogen (N) in sand dunes, we used the quantitative methods to examine the spatial heterogeneity of vegetation cover, soil organic C, and total N in an 11-year naturally restored mobile dune (RMD11) and a 20-year naturally restored mobile dune (RMD20) that had been fenced to exclude grazing in Horqin Sandy Land, northern China. Our results showed that the vegetation cover, plant density, species number and diversity, soil organic C, and total N increased from RMD11 to RMD20 and increased from the 50 × 50-m plot (crest) to the 100 × 100-m plot (slope) in each dune. Geostatistical analysis showed that the spatial structural variance accounted for the largest proportion of the total sample variance in vegetation cover, soil organic C, and total N in each dune plot. Calculated spatial autocorrelation ranges of vegetation cover, soil organic C, and total N increased from RMD11 to RMD20, indicating that longer time since vegetation restoration results in a more homogeneous distribution of vegetation cover, soil organic C, and total N in sand dunes. In addition, the spatial continuity of vegetation cover, soil organic C, and total N decreased from the 50 × 50-m plot (crest) to the 100 × 100-m plot (slope) in each dune. These results suggest that the spatial distribution of soil organic C and total N in sand dunes is associated closely with geomorphic position related to the dune crest and slope, relative elevation of sampling site, and vegetation cover. Understanding the principles of this relationship between them may guide strategies for the conservation and management of semiarid dune ecosystems.

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References

  • Aguilar, M. R., & Sala, O. E. (1999). Patch structure, dynamics and implications for the functioning of arid ecosystems. Trends in Ecology & Evolution, 14, 273–277. doi:10.1016/S0169-5347(99)01612-2.

    Article  Google Scholar 

  • Aguilar, R., & Heil, R. D. (1988). Soil organic carbon, nitrogen, and phosphorus quantities in northern Great Plains rangeland. Soil Science Society of America Journal, 52, 1076–1081.

    Google Scholar 

  • Aguilar, R., Kelly, E. F., & Heil, R. D. (1988). Effect of cultivation on soils in Northern Great Plains Rangeland. Soil Science Society of America Journal, 52, 1081–1085.

    Google Scholar 

  • Boettcher, S. E., & Kalisz, P. J. (1990). Single-tree influence on soil properties in the mountains of eastern Kentucky. Ecology, 71, 1365–1372. doi:10.2307/1938273.

    Article  Google Scholar 

  • Brosofske, K. D., Chen, J., Crow, T. R., & Saunders, S. C. (1999). Vegetation responses to landscape structure at multiple scales across a Northern Wisconsin, USA, pine barrens landscape. Plant Ecology, 143, 203–218. doi:10.1023/A:1009768115186.

    Article  Google Scholar 

  • Burke, I. C., Lauenroth, W. K., 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 (New York, NY), 2, 422–438. doi:10.1007/s100219900091.

  • Cannavacciuoloa, M., Bellidoa, A., Cluzeaua, D., Gascuelb, C., & Trehen, P. (1998). A geostatistical approach to the study of earthworm distribution in grassland. Applied Soil Ecology, 9, 345–349. doi:10.1016/S0929-1393(98)00087-0.

    Article  Google Scholar 

  • Chapin, F. S. III, Walker, L. R., Fastie, C. L., & Sharman, L. C. (1994). Mechanisms of primary succession following deglaciation at Glacier Bay, Alaska. Ecological Monographs, 64, 149–175. doi:10.2307/2937039.

    Article  Google Scholar 

  • Derner, J. D., Briske, D. D., & Boutton, T. W. (1997). Does grazing mediate soil carbon and nitrogen accumulation beneath C4, perennial grasses along an environmental gradient? Plant and Soil, 19, 147–156. doi:10.1023/A:1004298907778.

    Article  Google Scholar 

  • Fowler, N. (1986). The role of competition in plant communities in arid and semiarid regions. Annual Review of Ecology and Systematics, 17, 89–110. doi:10.1146/annurev.es.17.110186.000513.

    Article  Google Scholar 

  • Gerrard, A. J. (1981). Soils and landforms. London: George, Allen and Unwin.

  • Gross, K., Regitzer, K., & Burton, A. (1995). Spatial variation in nitrogen availability in three successional plant communities. Journal of Ecology, 83, 357–367. doi:10.2307/2261590.

    Article  Google Scholar 

  • Holmgren, M., & Scheffer, M. (2001). El Niño as a window of opportunity for the restoration of degraded arid ecosystems. Ecosystems (New York, NY), 4, 151–159. doi:10.1007/s100210000065.

  • Hook, P. B., Burke, I. C., & Lauenroth, W. K. (1991). Heterogeneity of soil and plant N and C associated with individual plants and openings in North American shortgrass steppe. Plant and Soil, 138, 247–256. doi:10.1007/BF00012252.

    Article  CAS  Google Scholar 

  • Institute of Soil Sciences. Chinese Academy of Sciences (ISSCAS) (1978). Physical and chemical analysis methods of soils (pp. 7–59). Shanghai: Shanghai Science Technology Press (in Chinese).

  • Isaaks, E., & Srivastava, R. (1989). Applied geostatistics (p. 561). New York: Oxford University Press.

  • Jackson, R. B., & Caldwell, M. M. (1993). Geostatistical patterns of soil heterogeneity around individual perennial plants. Journal of Ecology, 81, 683–692. doi:10.2307/2261666.

    Article  Google Scholar 

  • Jia, Y. P., Su, Z. Z., & Duan, J. N. (2004). Spatial variability of soil organic carbon at small watershed in gully region of Loess Plateau. Chinese Journal of Soil Water Conservation, 18, 31–34.

    Google Scholar 

  • Kelly, R. H., Burke, I. C., & Lauenroth, W. K. (1996). Soil organic matter and nutrient availability responses to reduced plant inputs in shortgrass steppe. Ecology, 77, 2516–2527. doi:10.2307/2265750.

    Article  Google Scholar 

  • Kumar, S., Stohlgern, T. J., & Chong, G. W. (2006). Spatial heterogeneity influences native and nonnative species richness. Ecology, 87, 3186–3199. doi:10.1890/0012-9658(2006)87[3186:SHINAN]2.0.CO;2.

    Article  Google Scholar 

  • Lane, D. R., & BassiriRad, H. (2005). Diminishing spatial heterogeneity in soil organic matter across a prairie restoration chronosequence. Restoration Ecology, 13, 403–412. doi:10.1111/j.1526-100X.2005.00050.x.

    Article  Google Scholar 

  • Legendre, P., & Fortin, M. J. (1989). Spatial pattern and ecological analysis. Vegetatio, 80, 107–138. doi:10.1007/BF00048036.

    Article  Google Scholar 

  • Liu, Z. M., Yan, Q. L., Baskin, C. C., & Ma, J. L. (2006). Burial of canopy-stored seeds in the annual psammophyte Agriophyllum squarrosum Moq. (Chenopodiaceae) and its ecological significance. Plant and Soil, 288, 71–80. doi:10.1007/s11104-006-9090-7.

  • Ludwig, J. A., Wiens, J. A., & Tongway, D. J. (2000). A scaling rule for landscape patches and how it applies to conserving soil resources in savannas. Ecosystems (New York, NY), 3, 84–97. doi:10.1007/s100210000012.

  • Martinez-Turanzas, G. A., Coffin, D. P., & Burke, I. C. (1997). Development of microtopography in a semiarid grassland: effects of disturbance size and soil texture. Plant Soil, 191, 163–171.

    Google Scholar 

  • Milchunas, D. G., & Lauenroth, W. K. (1993). Quantitative effects of grazing on vegetation and soils over a global range of environments. Ecological Monographs, 63, 327–366. doi:10.2307/2937150.

    Article  Google Scholar 

  • Miller, P. M., Singer, M. J., & Nielsen, D. R. (1988). Spatial variability of wheat yield and soil properties on complex hill. Soil Science Society of America Journal, 52, 1133–1141.

    Google Scholar 

  • Nelson, D., & Sommers, L. (1982). Total carbon, organic carbon and organic matter. In A. L. Page, et al. (Eds.), Methods of soil analysis, part 2, no. 9 (2nd ed., pp. 539–577). Madison: ASA Publication.

    Google Scholar 

  • Oba, G., Weladji, R. B., Msangameno, D. J., Kaitira, L. M., & Stave, J. (2008). Scaling effects of proximate desertification drivers on soil nutrients in northeastern Tanzania. Journal of Arid Environments, 72, 1820–1829. doi:10.1016/j.jaridenv.2008.04.009.

    Article  Google Scholar 

  • Palmer, T. M. (2003). Spatial habitat heterogeneity influences competition and coexistence in an African acacia ant guild. Ecology, 84, 2843–2855. doi:10.1890/02-0528.

    Article  Google Scholar 

  • Parkin, T. B. (1993). Spatial variability of microbial processes in soil: A review. Journal of Environmental Quality, 22, 409–417.

    Article  Google Scholar 

  • Pierson, F. B., & Mulla, D. J. (1990). Aggregate stability in the Palouse region of Washington: Effect of landscape position. Soil Science Society of America Journal, 54, 1407–1412.

    Article  CAS  Google Scholar 

  • Robertson, G. P., Crum, J. R., & Ellis, B. G. (1993). The spatial variability of soil resources following long-term disturbance. Oecologia, 96, 451–456. doi:10.1007/BF00320501.

    Article  Google Scholar 

  • Rossi, R. E., Mulla, D. J., Journel, A. G., & Franz, E. H. (1992). Geostatistical tools for modeling and interpreting ecological spatial dependence. Ecological Monographs, 62, 277–314. doi:10.2307/2937096.

    Article  Google Scholar 

  • Schimel, D. S., Coleman, D. C., & Horton, K. A. (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.

    Article  Google Scholar 

  • Schlesinger, W. H., & Pilmanis, A. M. (1998). Plant–soil interactions in deserts. Biogeochemistry, 42, 169–187. doi:10.1023/A:1005939924434.

    Article  Google Scholar 

  • Schlesinger, W. H., Raikes, J. A., Hartley, A. E., & Cross, A. F. (1996). On the spatial pattern of soil nutrients in desert ecosystems. Ecology, 77, 364–374. doi:10.2307/2265615.

    Article  Google Scholar 

  • Schlesinger, W. H., Reynolds, J. F., Cunningham, G. L., Huenneke, L. F., Jarrell, W. M., Virginia, R. A. et al. (1990). Biological feedbacks in global desertification. Science, 247, 1043–1048. doi:10.1126/science.247.4946.1043.

    Article  CAS  Google Scholar 

  • Seibert, J., Stendahl, J., & Sørensen, R. (2007). Topographical influences on soil properties in boreal forests. Geoderma, 141, 139–148. doi:10.1016/j.geoderma.2007.05.013.

    Article  CAS  Google Scholar 

  • Shumway, S. W. (2000). Facilitative effects of a sand shrub on species growing beneath the shrub canopy. Oecologia, 124, 138–148. doi:10.1007/s004420050033.

    Article  Google Scholar 

  • Su, Y. Z., Li, Y. L., & Zhao, H. L. (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.

    Article  Google Scholar 

  • Su, Y. Z., Zhang, T. H., Li, Y. L., & 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. Environmental Management, 36, 272–281. doi:10.1007/s00267-004-4083-x.

    Article  Google Scholar 

  • Titus, J. H., Nowak, R. S., & Smith, S. D. (2002). Soil resource heterogeneity in the Mojave Desert. Journal of Arid Environments, 52, 269–292. doi:10.1006/jare.2002.1010.

    Article  Google Scholar 

  • Vinton, M. A., & Burke, I. C. (1995). Interactions between individual plant species and soil nutrient status in short-grass steppe. Ecology, 76, 1116–1133. doi:10.2307/1940920.

    Article  Google Scholar 

  • Wallace, C. S. A., Watts, J. M., & Yool, S. R. (2000). Characterizing the spatial structure of vegetation communities in the Mojave Desert using geostatistical techniques. Computers & Geosciences, 26, 397–410. doi:10.1016/S0098-3004(99)00120-X.

    Article  Google Scholar 

  • Wang, T., Wu, W., Xue, X., Han, Z. W., Zhang, W. M., & Sun, Q. W. (2004). Spatial–temporal changes of sandy desertified land during last 5 decades in Northern China. Acta Geographica Sinica, 9, 203–212 (in Chinese).

    Google Scholar 

  • Wei, J. B., Xiao, D. N., Zhang, X. Y., Li, X. Z., & Li, X. Y. (2006). Spatial variability of soil organic carbon in relation to environmental factors of a typical small watershed in the black soil region, northeast China. Environmental Monitoring and Assessment, 121, 597–613.

    CAS  Google Scholar 

  • Wezel, A., Rajot, J. L., & Herbrig, C. (2000). Influence of shrubs on soil characteristics and their function in Sahelian agro-ecosystems in semi-arid Niger. Journal of Arid Environments, 44, 383–398. doi:10.1006/jare.1999.0609.

    Article  Google Scholar 

  • Whitford, W. G., Anderson, J., & Rice, P. M. (1997). Stemflow contribution to the ‘fertile island’ effect in creosote bush, Larrea tridentata. Journal of Arid Environments, 35, 451–457. doi:10.1006/jare.1996.0164.

    Article  Google Scholar 

  • Zeng, D. H., Hu, Y. L., Chang, S. X., & Fan, Z. P. (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 and Soil. doi:10.1007/s11104-008–9793-z.

  • Zhang, T. H., Zhao, H. L., Li, S. G., Li, F. R., Shirato, Y., Ohkuro, T. et al. (2004). A comparison of different measures for stabilizing moving sand dunes in the Horqin Sandy Land of Inner Mongolia, China. Journal of Arid Environments, 58, 203–214. doi:10.1016/j.jaridenv.2003.08.003.

    Article  Google Scholar 

  • Zhang, J. Y., Zhao, H. L., Zhang, T. H., Zhao, X. Y., & Drake, S. (2005). Community succession along a chronosequence of vegetation restoration on sand dunes in Horqin Sandy Land. Journal of Arid Environments, 62, 555–566. doi:10.1016/j.jaridenv.2005.01.016.

    Article  Google Scholar 

  • Zhao, H. L., Zhao, X. Y., Zhang, T. H., & Zhou, R. L. (2005). Desertification processes of sandy rangeland due to over-grazing in semi-arid area, Inner Mongolia, China. Journal of Arid Environments, 62, 309–319. doi:10.1016/j.jaridenv.2004.11.009.

    Article  Google Scholar 

  • 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. Journal of Arid Environments, 72, 150–161. doi:10.1016/j.jaridenv.2007.05.010.

    Article  Google Scholar 

  • Zhu, Z. D., & Chen, G. T. (1994). The sandy desertification in China (pp. 7–268). Beijing: Science Press (in Chinese).

  • Zuo, X. A., Zhao, H. L., Zhao, X. Y., Zhang, T. H., Guo, Y. R., Wang, S. K. et al. (2008a). Spatial pattern and heterogeneity of soil properties in sand dunes under grazing and restoration in Horqin Sandy Land, Northern China. Soil & Tillage Research, 99, 202–212. doi:10.1016/j.still.2008.02.008.

    Article  Google Scholar 

  • Zuo, X. A., Zhao, H. L., Zhao, X. Y., Guo, Y. R., Li, Y. L., & Luo, Y. Y. (2008b). Plant distribution at the mobile dune scale and its relevance to soil properties and topographic features. Environmental Geology, 54, 1111–1120. doi:10.1007/s00254-007-1104-0.

    Article  CAS  Google Scholar 

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Zuo, X.A., Zhao, X.Y., Zhao, H.L. et al. Spatial pattern and heterogeneity of soil organic carbon and nitrogen in sand dunes related to vegetation change and geomorphic position in Horqin Sandy Land, Northern China. Environ Monit Assess 164, 29–42 (2010). https://doi.org/10.1007/s10661-009-0872-2

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