Functional stability, substrate utilisation and biological indicators of soils following environmental impacts

被引:159
作者
Griffiths, BS [1 ]
Bonkowski, M
Roy, J
Ritz, K
机构
[1] Scottish Crop Res Inst, Soil Plant Dynam Unit, Dundee DD2 5DA, Scotland
[2] Univ Gottingen, Abt Okol, Inst Zool & Anthropol, D-37073 Gottingen, Germany
[3] CNRS, Ctr Ecol Fonct & Evolut, GDR 1936 DIV ECO, F-34293 Montpellier 5, France
关键词
community level physiological profiling; decomposition; protozoa; resilience; soil health; stability;
D O I
10.1016/S0929-1393(00)00081-0
中图分类号
S15 [土壤学];
学科分类号
0903 ; 090301 ;
摘要
Stability of a soil property to perturbation comprises both resistance and resilience. Resistance is defined as the ability of the soil to withstand the immediate effects of perturbation, and resilience the ability of the soil to recover from perturbation. Functional stability is used here to describe the stability of a biological function to perturbation, rather than the stability of physical structure or chemical properties. The function chosen for this study was the short-term decomposition of added plant residues, and the perturbations were copper and heat stresses. Previous studies had shown that functional stability was reduced greatly in soils with experimentally reduced biodiversity. The objective of this study was to determine the relative sensitivity of functional stability and potential indicators of biological status to detect alteration of held soils by various environmental impacts. Functional stability, protozoan populations and substrate mineralisation kinetics, were measured on paired soils with: high or low plant species diversity; hydrocarbon pollution or not; extensive or intensive agricultural management practices. Substrate mineralisation kinetics were poorly related to the soil's antecedent conditions and were stimulated significantly by hydrocarbon pollution. Protozoan populations were potentially useful for detecting differences within soil type, but will require greater taxonomic input to be most useful. Functional stability particularly resistance, was able to quantify differences between and within soils. The potential development of the technique in relation to soil health is discussed. (C) 2001 Elsevier Science B.V. All rights reserved.
引用
收藏
页码:49 / 61
页数:13
相关论文
共 52 条
[1]   PHYSIOLOGICAL METHOD FOR QUANTITATIVE MEASUREMENT OF MICROBIAL BIOMASS IN SOILS [J].
ANDERSON, JPE ;
DOMSCH, KH .
SOIL BIOLOGY & BIOCHEMISTRY, 1978, 10 (03) :215-221
[2]   RELEASE OF TRANSGENIC PLANTS - BIODIVERSITY AND POPULATION-LEVEL CONSIDERATIONS [J].
ANGLE, JS .
MOLECULAR ECOLOGY, 1994, 3 (01) :45-50
[3]   RESPONSE OF MICROBIAL-POPULATIONS TO ENVIRONMENTAL DISTURBANCE [J].
ATLAS, RM ;
HOROWITZ, A ;
KRICHEVSKY, M ;
BEJ, AK .
MICROBIAL ECOLOGY, 1991, 22 (03) :249-256
[4]   IMPACT OF CARBON AND FLOODING ON THE METABOLIC DIVERSITY OF MICROBIAL COMMUNITIES IN SOILS [J].
BOSSIO, DA ;
SCOW, KM .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1995, 61 (11) :4043-4050
[5]   Impacts of carbon and flooding on soil microbial communities: Phospholipid fatty acid profiles and substrate utilization patterns [J].
Bossio, DA ;
Scow, KM .
MICROBIAL ECOLOGY, 1998, 35 (03) :265-278
[6]   Comparison of two kinds of Biolog microplates (GN and ECO) in their ability to distinguish among aquatic microbial communities [J].
Choi, KH ;
Dobbs, FC .
JOURNAL OF MICROBIOLOGICAL METHODS, 1999, 36 (03) :203-213
[7]   Soil respiration profiles and protozoan enumeration agree as microbial growth indicators [J].
Christensen, S ;
Ronn, R ;
Ekelund, F ;
Andersen, B ;
Damgaard, J ;
FribergJensen, U ;
Jensen, L ;
Kiil, H ;
Larsen, B ;
Larsen, J ;
Riis, C ;
Thingsgaard, K ;
Thirup, C ;
TomPetersen, A ;
Vesterdal, L .
SOIL BIOLOGY & BIOCHEMISTRY, 1996, 28 (07) :865-868
[8]  
DARBYSHIRE JF, 1974, REV ECOL BIOL SOL, V11, P465
[9]  
Dhillion SS, 1996, PLANT SOIL, V187, P333, DOI 10.1007/BF00017098
[10]  
Dighton J, 1997, CH ECOTOXIC, V5, P51