Characterization of soil low-molecular-weight organic acids in the Karst rocky desertification region of Guizhou Province, China

Xiaoliang LI , Xiaomin CHEN , Xia LIU , Lianchuan ZHOU , Xinqiang YANG

Front. Environ. Sci. Eng. ›› 2012, Vol. 6 ›› Issue (2) : 195 -203.

PDF (269KB)
Front. Environ. Sci. Eng. ›› 2012, Vol. 6 ›› Issue (2) : 195 -203. DOI: 10.1007/s11783-012-0391-1
RESEARCH ARTICLE
RESEARCH ARTICLE

Characterization of soil low-molecular-weight organic acids in the Karst rocky desertification region of Guizhou Province, China

Author information +
History +
PDF (269KB)

Abstract

Soil low-molecular-weight (LMW) organic acids play important roles in the soil-forming process and the cycling of nutrients in Karst regions. In this study, we quantified the contents of LMW organic acids (including lactate, acetate, formate, malate, and oxalate) in soil solution over the Karst region of Guizhou Province, China using ion chromatography. The concentration of total LMW organic acids in topsoil solution ranged from 0.358 to 1.823 μmol·g-1, with an average of 0.912 μmol·g-1. The mean concentrations of lactate, acetate, formate, malate, and oxalate were 0.212±0.089, 0.302±0.228, 0.301±0.214, 0.014±0.018 and 0.086±0.118 μmol·g-1, respectively. There were also significant difference in the contents of these acids among four phases of rocky desertification, and their concentrations decreased with the aggravation of rocky desertification. The concentrations of the LMW organic acids were significantly positive correlated each other. Significant positive correlations were also observed among individual LMW organic acids in soil solution, and between them and soil available P, available K, exchangeable Ca, respectively. Furthermore, the concentrations of LMW organic acids were significantly positively correlated with inorganic anions (chlorides, nitrates, and sulfates) in Karst topsoil solution. Therefore, the concentrations of soil LMW organic acids might be one of driving force in the Karst rock desertification process in Guizhou Province.

Keywords

Karst rocky desertification / low-molecular-weight (LMW) organic acids / distribution characteristics / soil

Cite this article

Download citation ▾
Xiaoliang LI, Xiaomin CHEN, Xia LIU, Lianchuan ZHOU, Xinqiang YANG. Characterization of soil low-molecular-weight organic acids in the Karst rocky desertification region of Guizhou Province, China. Front. Environ. Sci. Eng., 2012, 6(2): 195-203 DOI:10.1007/s11783-012-0391-1

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Fox T R. The influence of low-molecular-weight organic acids on properties and processes in forest soils. In: McFee W W, Kelly J M, eds. Carbon Forms and Functions in Forest Soils. Madison: Soil Science Society of America, 1995, 43-62

[2]

Herbert B E, Bertsch P M. Characterization of dissolved and colloidal organic matter in soil solution: a review. In: McFee W W, Kelly J M, eds. Carbon Forms and Functions in Forest Soils. Madison: Soil Science Society of America, 1995, 63-68

[3]

Jones D L. Organic acids in the rhizosphere—a critical review. Plant and Soil, 1998, 205(1): 25-44

[4]

Millet M, Wortham H, Sanusi A, Mirabel P. Low molecular weight organic acids in fogwater in an urban area: Strasbourg (France). The Science of the Total Environment, 1997, 206(1): 57-65

[5]

Bolan N S, Naidu R, Mahimairaja S, Baskaran S. Influence of low-molecular-weight organic-acids on the solubilization of phosphates. Biology and Fertility of Soils, 1994, 18(4): 311-319

[6]

Krzyszowska A J, Vance G F, Blaylock M J, David M B. Ion-chromatographic analysis of low molecular weight organic acids in Spodosol forest floor solutions. Soil Science Society of America Journal, 1996, 60(5): 1565-1571

[7]

Pohlman A A, McColl J G. Soluble organics from forest litter and their role in metal dissolution. Soil Science Society of America Journal, 1987, 52(1): 265-271

[8]

Shen Y, Ström L, Jönsson J A, Tyler G. Low-molecular-organic-acids in the rhizosphere soil solution of beech forest (Fagus sylvatica L.) cambisols determined by ion chromatography using supported liquid membrane enrichment technique. Soil Biology and Biochemistry, 1996, 28(9): 1163-1169

[9]

van Hees P A W, Lundström U S, Giesler R. Low molecular weight acids and their Al-complexes in soil solution—composition, distribution and seasonal variation in three podzolized soils. Geoderma, 2000, 94(2-4): 173-200

[10]

Yuan D X. The Karst Study of China. Beijing: Geology Press, 1993 (in Chinese)

[11]

Yang H K. Karst rocky desertification and assessment of the disasters. Marine Geology and Quaternary Geology, 1995, 15: 137-147 (in Chinese)

[12]

Cai Y L. Ecological and socio-economic rehabilitation in the Karst of Southwest China. The Journal of Chinese Geography, 1997, 7(2): 24-32 (in Chinese)

[13]

Wang S J. The most serious eco-geologically environmental problem in southwestern China Karst rocky desertification. Bulletin of Mineralogy Petrology and Geochemistry, 2003, 22(2): 120-126 (in Chinese)

[14]

Zhang H Y, Zhao X Y, Cai Y L, Yin J. The driving mechanism of human forces to the land-use change in the Karst mountain area. Geographical Research, 1999, 18(2): 136-142 (in Chinese)

[15]

Zhang D F, Wang S J, Zhou D Q, Li R L. Intrinsic driving mechanism of land rocky desertification in Karst regions of Guizhou Province. Bulletin of Soil and Water Conservation, 2001, 21(4): 1-5 (in Chinese)

[16]

Wang S J, Li Y B. Karst rocky desertification: formation background, evolution and comprehensive taming. Quaternary Sciences, 2003, 23(6): 657-666 (in Chinese)

[17]

Cai Y L. The Study of Alleviating Poor and Sustainable Development in Southwest Karst Area. Beijing: Peking University Press, 1994 (in Chinese)

[18]

Cai Y L, Meng J J. Ecological reconstruction of degraded land: a social approach. Scientia Geographica Sinica, 1999, 19(3): 198-204 (in Chinese)

[19]

Wang S J, Liu Q M, Zhang D F. Karst rocky desertification in southwestern China: geomorphology, land use, impact and rehabilitation. Land Degradation and Development, 2004, 15(2): 115-121

[20]

Huang Q H, Cai Y L. Spatial pattern of Karst rock desertification in the Middle of Guizhou Province, Southwestern China. Environmental Geology, 2007, 52(7): 1325-1330

[21]

Mei Z M, Wang D Y, Xiong K N, Lan A J, Chen Y B, Sun J C, Yu J Y. A preliminary study on the technology of vegetation restoration on the land of different rocky desertification degree—a case study of the Huajiang demonstration area, Guizhou. Carsologica Sinica, 2004, 23(3): 253-258 (in Chinese)

[22]

Peng Q, Lin C H, He T B. Soil grain features under rocky desertification in the Guizhou Karst mountain area. Bulletin of Soil and Water Conservation, 2007, 27(2), 29-32 (in Chinese)

[23]

Bachman S R, Peden M E. Determination of organic acid anions in precipitation by ion chromatography exclusion. Water, Air, & Soil Pollution, 1987, 33(1-2): 191-198

[24]

Lu R K. Methods for Agricultural Soil Chemistry Analysis. Beijing: China Agricultural Science and Technology Press, 2000 (in Chinese)

[25]

Chen X M, Pan G X, Wang D J, Li B S. A study on saturated hydraulic conductivity of farmland environment soil of Taihu Lake region. Bulletin of Soil and Water Conservation, 2000, 20(5), 11-12, 59 (in Chinese)

[26]

Mo S X. Sources, transformations of organic acids in soil and some effects on soil fertility. Progress in Soil Science, 1986, 4: 1-10 (in Chinese)

[27]

Stevenson F J. Organic acids in soil. In: Mclaren A D, Peterson G H, eds. Soil Biochemistry. New York: Marcel Dekker, 1967, 119-146

[28]

Ryan P R, Delhaize E, Jones D L. Function and mechanism of organic anion exudation from plant roots. Annual Review of Plant Physiology and Plant Molecular Biology, 2001, 52(1): 527-560

[29]

Li X L, Chen X M, Zhou L C, Zhou F F. Soil organic carbon and nitrogen variability in the process of rocky desertification in Karst region, Guizhou Province. Journal of Nanjing Agricultural University, 2010, 33(4): 75-80 (in Chinese)

[30]

Giesler R, Högberg M N, Strobel B W, Richter A, Nordgren A, Högberg P. Production of dissolved organic carbon and low-molecular weight organic acids in soil solution driven by recent tree photosynthate. Biogeochemistry, 2007, 84(1): 1-12

[31]

Tyler G. Inability to solubilize phosphate in limestone soils—key factor controlling calcifuge habit of plants. Plant and Soil, 1992, 145(1): 65-70

[32]

Ström L, Olsson T, Tyler G. Differences between calcifuge and acidifuge plants in root exudation of low molecular organic-acids. Plant and Soil, 1994, 167(2): 239-245

[33]

Ström L. Root exudation of organic acids: importance to nutrient availability and the calcifuge and calcicole behaviour of plants. Oikos, 1997, 80(3): 459-466

[34]

Ström L, Owen A G, Godbold D L, Jones D L. Organic acid behaviour in a calcareous soil implications for rhizosphere nutrient cycling. Soil Biology and Biochemistry, 2005, 37(11): 2046-2054

[35]

Fox T R, Comerford N B, McFee W W. Phosphorus and aluminum release from a spodic horizon mediated by organic acids. Soil Science Society of America Journal, 1990, 54(6): 1763-1767

[36]

Fox T R, Comerford N B, McFee W W. Kinetics of phosphorus release from spodosol: effects of oxalate and formate. Soil Science Society of America Journal, 1990, 54(5): 1441-1447

[37]

Fox T R, Comerford N B. Influence of oxalate loading on phosphorus and aluminum solubility in spodosols. Soil Science Society of America Journal, 1992, 56(1): 290-294

[38]

Jones D L, Darrah P R. Role of root derived organic acids in the mobilization of nutrients from the rhizosphere. Plant and Soil, 1994, 166(2): 247-257

[39]

Huang W H, Keller W D. Organic acids as agents of chemical weathering of silicate minerals. Nature Physical Science, 1972, 239: 149-151

[40]

Jones D L, Kochian L V. Aluminum-organic acid interactions in acid soils. 1. Effect of root-derived organic acids on the kinetics of Al dissolution. Plant and Soil, 1996, 182(2): 221-228

[41]

Pohlman A A, McColl J G. Kinetics of metal dissolution from forest soils by soluble organic acids. Journal of Environmental Quality, 1986, 15(1): 86-92

[42]

Lundström U S, Öhman L O. Dissolution of feldspars in the presence of natural, organic solutes. Journal of Soil Science, 1990, 41(3): 359-369

RIGHTS & PERMISSIONS

Higher Education Press and Springer-Verlag Berlin Heidelberg

AI Summary AI Mindmap
PDF (269KB)

2537

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/