Effects of Aridity and Salinization on Soil Microbial Biomass C in a Desert Ecosystem

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In this study, we measured soil microbial biomass C (SMBC) under four different land cover types (canopy, litter, lichen and bare soil) to determine the effects of aridity and salinization on SMBC of a typical desert ecosystem. Results showed that higher SMBC with lower soil salt content and higher soil moisture were found in general if with vegetation, and the SMBC under canopy was especially higher than any other land cover types, which was near double of that of bare soil (115.34μg C g-1 soil vs. 61.88μg C g-1 soil). Linear regression analysis indicated that soil SMBC were positively correlated (p<0.01,r =0.899) with soil moisture but negatively correlated (r =-0.784, p<0.01) with soil salt content. These relationships may represent an evolutionary process, aiding in the conservation of essential vegetation in a fragile desert ecosystem.

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Advanced Materials Research (Volumes 1073-1076)

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638-642

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December 2014

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© 2015 Trans Tech Publications Ltd. All Rights Reserved

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[1] R. Rosenberg, M. Blomqvist, , H.C. Nilsson, H. Cederwall, Marine quality assessment by use of benthic species-abundance distributions: a proposed new protocol within the European Union Water Framework Directive. J. Marine Pollution Bulletin. , 49 (2004).

DOI: 10.1016/j.marpolbul.2004.05.013

Google Scholar

[2] W. H. Schlesinger, J. A. Andrews , Soil respiration and the 14 global carbon cycle. J. Biogeochemistry, 48 (2000) 7-20.

Google Scholar

[3] J. W. Raich, W. H. Schlesinger , The global carbon dioxide flux in soil respiration and its relationship to vegetation and climate. J. Tellus Ser B, 44 (1992) 81-99.

DOI: 10.1034/j.1600-0889.1992.t01-1-00001.x

Google Scholar

[4] Reynolds J F. Desertification. In: Levin S A, ed. Encyclopedia of Biodiversity,. San Diego: Academic Press, 2001, pp.61-78.

Google Scholar

[5] R. T. Conant, J. M. Klopatek, C. C. Klopatek , Environmental factors controlling soil respiration in three semiarid ecosystems. J. Soil SciSoc Am J, 64 (2000) 383-390.

DOI: 10.2136/sssaj2000.641383x

Google Scholar

[6] D. L. Kelting , J. A. Burger, G. S. Edwards, . Estimating root respiration, microbial respiration in the rhizosphere, and root-free soil respiration in forest soils. J. Soil Biology and Biochemistry, 30 (1998) 961-968.

DOI: 10.1016/s0038-0717(97)00186-7

Google Scholar

[7] P. J. Hanson, N. T. Edwards, C. T. Garten, J. A. Andrews, , Separating root and soil microbial contributions to soil respiration: A review of methods and observations. J. Biogeochemistry, 48 (2000) 115-146.

Google Scholar

[8] S. Yadav, M. Irfan, A. Ahmad, S. Hayat, Causes of salinity and plant manifestations to salt stress: a review. J. Environ. Biol. 32 (2011) 667-685.

Google Scholar

[9] X. Zhou, C. Chen, Y. Wang, Z. Xu, J. Duan, Y. Hao, S. Smaill, . Soil extractable carbon and nitrogen, microbial biomass and microbial metabolic activity in response to warming and increased precipitation in a semiarid Inner Mongolian grassland. J. Geoderma, 206 (2013).

DOI: 10.1016/j.geoderma.2013.04.020

Google Scholar

[10] M. Ghollarata, F. Raiesi, The adverse effects of soil salinization on the growth of Trifolium alexandrinum L. and associated microbial and biochemical properties in a soil from Iran. Soil Biology and Biochemistry, 39 (2007) 1699-1702.

DOI: 10.1016/j.soilbio.2007.01.024

Google Scholar

[11] C. Zheng, Q. Wang, Spatiotemporal variations of reference evapotranspiration in recent five decades in the arid land of Northwestern China. Hydrological Processes, 27 (2013) 1085-1099.

DOI: 10.1002/hyp.10109

Google Scholar

[12] X. Hao, L. Yan, X. Jing, C. Lei, Z. Yan, L. Ran, Influence of solar radiation and groundwater table on carbon balance of phreatophytic desert shrub Tamarix. Chinese Journal of Plant Ecology, 34 (2010) 375-386.

Google Scholar

[13] N. Nunan, M. A. Morgan, M. Herlihy,. Ultraviolet absorbance (280nm) of compounds released from soil during chloroform fumigation as an estimate of the microbial biomass. J. Soil Biology and Biochemistry, 30 (1998) 1599-1603.

DOI: 10.1016/s0038-0717(97)00226-5

Google Scholar

[14] B. L. Turner, A. W. Bristow, P. M. Haygarth, Rapid estimation of microbial biomass in grassland soils by ultra-violet absorbance. J. Soil Biology and Biochemistry, 33 (2001) 913-919.

DOI: 10.1016/s0038-0717(00)00238-8

Google Scholar

[15] V. Rameeh, A. Rezai, G. Saeidi, Study of Salinity Tolerance in Rapeseed. J. Communications in Soil Science and Plant Analysis, 35 (2004) 2849-2866.

DOI: 10.1081/css-200036472

Google Scholar