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1.
Soil microbial biomass and nitrogen supply in an irrigated lowland rice soil as affected by crop rotation and residue management 总被引:5,自引:0,他引:5
C. Witt Kenneth G. Cassman Johannes C. G. Ottow Ulrich Biker 《Biology and Fertility of Soils》1998,28(1):71-80
Processes that govern the soil nitrogen (N) supply in irrigated lowland rice systems are poorly understood. The objectives
of this paper were to investigate the effects of crop rotation and management on soil N dynamics, microbial biomass C (CBIO) and microbial biomass N (NBIO) in relation to rice N uptake and yield. A maize-rice (M-R) rotation was compared with a rice-rice (R-R) double-cropping
system over a 2-year period with four cropping seasons. In the M-R system, maize (Zea mays L.) was grown in aerated soil during the dry season (DS) followed by rice (Oryza sativa L.) grown in flooded soil during the wet season (WS). In the R-R system, rice was grown in flooded soil in both the DS and
WS. Three fertilizer N rates (0, 50 or 100 kg urea-N ha–1 in WS) were assigned to subplots within the cropping system main plots. Early versus late crop residue incorporation following
DS maize or rice were established as additional treatments in sub-subplots in the second year. In the R-R system, the time
of residue incorporation had a large effect on NO3
–-N accumulation during the fallow period and also on extractable NH4
+-N, rice N uptake and yield in the subsequent cropping period. In contrast, time of residue incorporation had little influence
on extractable N in both the fallow and rice-cropping periods of the M-R system, and no detectable effects on rice N uptake
or yield. In both cropping systems, CBIO and NBIO were not sensitive to residue incorporation despite differences of 2- to 3-fold increase in the amount of incorporated residue
C and N, and were relatively insensitive to N fertilizer application. Extractable organic N was consistently greater after
mid-tillering in M-R compared to the R-R system across N rate and residue incorporation treatments, and much of this organic
N was α-amino N. We conclude that N mineralization-immobilization dynamics in lowland rice systems are sensitive to soil aeration
as influenced by residue management in the fallow period and crop rotation, and that these factors have agronomically significant
effects on rice N uptake and yield. Microbial biomass measurements, however, were a poor indicator of these dynamics.
Received: 31 October 1997 相似文献
2.
A rapid chloroform-fumigation extraction method for measuring soil microbial biomass carbon and nitrogen in flooded rice soils 总被引:2,自引:0,他引:2
C. Witt J. L. Gaunt C. C. Galicia J. C. G. Ottow H.-U. Neue 《Biology and Fertility of Soils》2000,30(5-6):510-519
A chloroform-fumigation extraction method with fumigation at atmospheric pressure (CFAP, without vacuum) was developed for
measuring microbial biomass C (CBIO) and N (NBIO) in water-saturated rice soils. The method was tested in a series of laboratory experiments and compared with the standard
chloroform-fumigation extraction (CFE, with vacuum). For both methods, there was little interference from living rice roots
or changing soil water content (0.44–0.55 kg kg–1 wet soil). A comparison of the two techniques showed a highly significant correlation for both CBIO and NBIO (P<0.001) suggesting that the simple and rapid CFAP is a reliable alternative to the CFE. It appeared, however, that a small
and relatively constant fraction of well-protected microbial biomass may only be lysed during fumigation under vacuum. Determinations
of microbial C and N were highly reproducible for both methods, but neither fumigation technique generated NBIO values which were positively correlated with CBIO. The range of observed microbial C:N ratios of 4–15 was unexpectedly wide for anaerobic soil conditions. Evidence that this
was related to inconsistencies in the release, degradation, and extractability of NBIO rather than CBIO came from the observation that increasing the fumigation time from 4 h to 48 h significantly increased NBIO but not CBIO. The release pattern of CBIO indicated that the standard fumigation time of 24 h is applicable to water-saturated rice soils. To correct for the incomplete
recovery of CBIO, we suggest applying the k
C factor of 2.64, commonly used for aerobic soils (Vance et al. 1987), but caution is required when correcting NBIO data. Until differences in fumigation efficiencies among CFE and CFAP are confirmed for a wider range of rice soils, we suggest
applying the same correction factor for both methods.
Received: 1 June 1999 相似文献
3.
Nitrogen mineralization and microbial activity in permanent pastures amended with nitrogen fertilizer or dung 总被引:9,自引:0,他引:9
D. J. Hatch R. D. Lovell R. S. Antil S. C. Jarvis P. M. Owen 《Biology and Fertility of Soils》2000,30(4):288-293
Gross rates of soil processes and microbial activity were measured in two grazed permanent pasture soils which had recently
been amended with N fertilizer or dung. 15N studies of rates of soil organic matter turnover showed gross N mineralization was higher, and gross N immobilization was
lower, in a long-term fertilized soil than in a soil which had never received fertilizer N. Net mineralization was also found
to be higher in the fertilized soil: a consequence of the difference between the opposing N turnover processes of N mineralization
and immobilization. In both soils without amendments the soil microbial biomass contents were similar, but biomass activity
(specific respiration) was higher in the fertilized soil. Short-term manipulation of fertilizer N input, i.e. adding N to
unfertilized soil, or witholding N from previously fertilized soil, for one growing season, did not affect gross mineralization,
immobilization or biomass size and activity. Amendments of dung had little effect on gross mineralization, but there was an
increase in immobilization in both soils. Total biomass also increased under dung in the unfertilized soil, but specific respiration
was reduced, suggesting changes in the composition of the biomass. Dung had a direct effect on the microbial biomass by temporarily
increasing available soil C. Prolonged input of fertilizer N increases soil C indirectly as a result of enhanced plant growth,
the effect of which may not become evident within one seasonal cycle.
Received: 18 December 1998 相似文献
4.
Mineralization of N from organic materials added to soil depends on the quality of the substrate as a carbon, energy and
nutrient source for the saprophytic microflora. Quality reflects a combination of biochemical and physical attributes. We
investigated how biochemical composition interacts with particle size to affect the soil microflora and N dynamics following
incorporation of crop residues into soil. Four fresh shoot and root crop residues were cut into coarse and fine particle sizes,
and incorporated into sandy-loam soil which was incubated under controlled environment conditions for 6 months. In the case
of the highest biochemical quality material, potato shoot (C/N ratio of 10 : 1), particle size had no effect on microbial
respiration or net N mineralization. For lower biochemical quality Brussels sprout shoot (C/N ratio of 15 : 1), reducing particle
size caused microbial respiration to peak earlier and increased net mineralization of N during the early stages of decomposition,
but reduced net N mineralization at later stages. However, for the lowest biochemical quality residues, rye grass roots (C/N
ratio of 38 : 1) and straw (C/N ratio of 91 : 1) reducing particle size caused microbial respiration to peak later and increased
net immobilization of N. For Brussels sprout shoot, reducing particle size decreased the C content and the C/N ratio of residue-derived
light fraction organic matter (LFOM) 2 months following incorporation. However C and N content of LFOM derived from the other
materials was not affected by particle size. For materials of all qualities, particle size had little effect on biomass N.
We conclude that the impact of particle size on soil microbial activities, and the protection of senescent microbial tissues
from microbial attack, is dependant on the biochemical quality of the substrate.
Received: 3 July 1998 相似文献
5.
Effect of microbial nitrogen immobilization during the growth period on the availability of nitrogen fertilizer for winter cereals 总被引:1,自引:0,他引:1
Pot and field experiments were conducted to determine microbial immobilization of N fertilizer during growth periods of winter
wheat and winter barley. In a pot experiment with winter wheat, Ca(15NO3)2 was applied at tillering [Zadok's growth stage (GS) 25)], stem elongation (GS 31) and ear emergence (GS 49). Rates of 100 mg
N pot–1, 200 mg N pot–1 or 300 mg N pot–1 were applied at each N application date. At crop maturity, 15N-labelled fertilizer N immobilization was highest at the highest N rate (3×300 mg N pot–1). For each N-rate treatment about 50% of the total immobilized fertilizer N was immobilized from the first N dressing, and
30% and 20% of the total 15N immobilized was derived from the second and third applications, respectively. In field trials with winter wheat (three sites)
and winter barley (one site) N was applied at the same growth stages as for the pot trial. N was also applied to fallow plots,
but only at GS 25. N which was not recovered (neither in crops nor in soil mineral N pools) was considered to represent net
immobilized N. A clear effect of N rate (51–255 kg N ha–1) on net N immobilization was not found. The highest net N immobilization was found for the period between GS 25 (March) and
GS 31 (late April) which amounted to 54–97% of the total net N immobilized at harvest (July/August). At GS 31, non-recovered
N was found to be of similar magnitude for cropped and fallow plots, indicating that C from roots did not affect net N immobilization.
Microbial biomass N (Nmic) was determined for cropped plots at GS 31. Although Nmic tended to be higher in fertilized than in unfertilized plots, fertilizer-induced increases in Nmic and net N immobilization were poorly correlated. It can be concluded that microbial immobilization of fertilizer N is particularly
high after the first N application when crop growth and N uptake are low.
Received: 6 July 1999 相似文献
6.
Ilya Yevdokimov Andreas Gattinger Franz Buegger Jean Charles Munch Michael Schloter 《Biology and Fertility of Soils》2008,44(8):1103-1106
The changes in size, activity and structure of soil microbial community caused by N fertilization were studied in a laboratory
incubation experiment. The rates of N fertiliser applied (KNO3) were 0 (control), 100 and 2,000 μg N g−1 soil. Despite no extra C sources added, a high percentage of N was immobilized. Whereas no significant increase of microbial
C was revealed during incubation period, microbial growth kinetics as determined by the substrate-induced growth-response
method demonstrated a significant decrease in the specific growth rate of microbial community in soil treated with 2,000 μg
N g−1 soil. Additionally, a shift in microbial community structure resulting in an increase in fungal biomarkers, mainly in the
treatment with 2,000 μg N g−1 soil was visible. 相似文献
7.
Abul Kalam Mohammad Azmal Takuya Marumoto Haruo Shindo Masaya Nishiyama 《Soil Science and Plant Nutrition》2013,59(3):463-473
A model experiment was carried out at 15, 25, and 35°C to investigate the changes in microbial biomass and the pattern of mineralization in upland soil during 8 weeks following the addition of 8 organic materials including 6 tropical plant residues, ipil ipil (Leucaena leucocephala), azolla (Azolla pinnata), water hyacinth (Eichhornia crassipes), dhaincha (Sesbania rostrata), cowpea (Vigna unguiculata), and sunhemp (Crotalaria juncea). The amounts of CO2-C evolved and inorganic N produced at 35°C were about 2 times larger than those at 15°C. At any temperature, the flush decomposition of C was observed within the first week and thereafter the rate of mineralization became relatively slow. A negative correlation was observed between inorganic N and C/N ratios of the added organic materials. The relationships between the amounts of cellulose or cellulose plus hemicellulose and the amount of mineralized N of the added organic materials were also negative. The changes in the microbial biomass were affected by temperatures. The amount of biomass C and N was maximum after 42 d of incubation at 15°C, and after 7 d at 25 and 35°C, and thereafter decreased. The rate of biomass decline was slower at 15°C and faster at 35°C than at 25°C. Regardless of the temperatures, the addition of organic materials enhanced microbial biomass formation throughout the incubation periods. 相似文献
8.
Gross N mineralization and nitrification rates and their relationships to microbial biomass C and N and enzyme (protease,
deaminase and urease) activities were determined in soils treated with dairy shed effluent (DSE) or NH4
+ fertilizer (NH4Cl) at a rate equivalent to 200 kg N ha–1 at three water potentials (0, –10 and –80 kPa) at 20 °C using a closed incubation technique. After 8, 16, 30, 45, 60 and
90 days of incubation, sub-samples of soil were removed to determine gross N mineralization and nitrification rates, enzyme
activities, microbial biomass C and N, and NH4
+ and NO3
– concentrations. The addition of DSE to the soil resulted in significantly higher gross N mineralization rates (7.0–1.7 μg
N g–1 soil day–1) than in the control (3.8–1.2 μg N g–1 soil day–1), particularly during the first 16 days of incubation. This increase in gross mineralization rate occurred because of the
presence of readily mineralizable organic substrates with low C : N ratios, and stimulated soil microbial and enzymatic activities
by the organic C and nutrients in the DSE. The addition of NH4Cl did not increase the gross N mineralization rate, probably because of the lack of readily available organic C and/or a
possible adverse effect of the high NH4
+ concentration on microbial activity. However, nitrification rates were highest in the NH4Cl-treated soil, followed by DSE-treated soil and then the control. Soil microbial biomass, protease, deaminase and urease
activities were significantly increased immediately after the addition of DSE and then declined gradually with time. The increased
soil microbial biomass was probably due to the increased available C substrate and nutrients stimulating soil microbial growth,
and this in turn resulted in higher enzyme activities. NH4Cl had a minimal impact on the soil microbial biomass and enzyme activities, possibly because of the lack of readily available
C substrates. The optimum soil water potential for gross N mineralization and nitrification rates, microbial and enzyme activities
was –10 kPa compared with –80 kPa and 0 kPa. Gross N mineralization rates were positively correlated with soil microbial biomass
N and protease and urease activities in the DSE-treated soil, but no such correlations were found in the NH4Cl-treated soil. The enzyme activities were also positively correlated with each other and with soil microbial biomass C and
N. The forms of N and the different water potentials had a significant effect on the correlation coefficients. Stepwise regression
analysis showed that protease was the variable that most frequently accounted for the variations of gross N mineralization
rate when included in the equation, and has the potential to be used as one of the predictors for N mineralization.
Received: 10 March 1998 相似文献
9.
不同培肥措施下种植制度及撂荒对土壤微生物量碳氮的影响 总被引:5,自引:1,他引:5
以黄土高原南部半湿润易旱区已进行17年的田间定位试验为研究对象,研究了不同培肥措施(不施肥、施用氮磷钾及氮磷钾与有机肥配合施用)下两种种植制度(一年1熟及一年两熟)和撂荒对土壤微生物量碳、氮(SMBC、SMBN)及可溶性有机碳、氮(SOC、SON)等含量的影响.结果表明,与一年1熟的小麦一休闲种植制度相比,一年两熟小麦一玉米轮作提高了0~10 cm土层SMBC、SMBN、有机碳(TOC)、全氮(TN)和土壤SOC、SON的含量,而对10~20 cm土层上述测定指标影响不大.与不施肥(CK)或单施化肥处理(NPK)下小麦-休闲和小麦-玉米轮作方式相比,撂荒处理显著提高了0~10 cm土层各测定指标的含量.不同培肥措施相比,氮磷钾配施有机肥显著提高了0~10 cm、10~20 cm土层SMBC、SMBN含量;NPK处理0~10 cm土层SMBN含量显著增加,10~20 cm土层SMBN和0~10 cm、10~20 cm土层SMBC含量增加但未达显著水平.不同培肥措施和种植制度对SMBC/TOC和SMBN/TN的比例无明显影响. 相似文献
10.
P. M. Groffman 《Biology and Fertility of Soils》1999,29(4):430-433
The effects of acetate additions to northern hardwood forest soils on microbial biomass carbon (C) and nitrogen (N) content,
soil inorganic N levels, respirable C and potential net N mineralization and nitrification were evaluated. The experiment
was relevant to a potential watershed-scale calcium (Ca) addition that aims to replace Ca depleted by long-term exposure to
acid rain. One option for this addition is to use calcium-magnesium (Mg) acetate, a compound that is inexpensive and much
more readily soluble than the Ca carbonate that is generally used for large-scale liming. Field plots were treated with sodium
(NA) acetate, Na bicarbonate or water (control) and were sampled (forest floor – Oe and Oa combined) 2, 10 and 58 days following
application. It was expected that the addition of C would lead to an increase in biomass C and N and a decrease in inorganic
N. Instead, we observed no effect on biomass C, a decline in biomass N and an increase in N availability. One possible explanation
for our surprising results is that the C addition stimulated microbial activity but not growth. A second, and more likely,
explanation for our results is that the C addition did stimulate microbial growth and activity, but there was no increase
in microbial biomass due to predation of the new biomass by soil fauna. The results confirm the emerging realization that
the effects of increases in the flow of C to soils, either by deliberate addition or from changes in atmospheric CO2, are more complex than would be expected from a simple C : N ratio analysis. Evaluations of large-scale manipulations of
forest soils to ameliorate effects of atmospheric deposition or to dispose of wastes should consider microbial and faunal
dynamics in considerable detail.
Received: 13 March 1998 相似文献
11.
Conservation tillage, and especially no-tillage, induce changes in the distribution of organic pools in the soil profile.
In long-term field experiments, marked stratification of the total soil microbial biomass and its activity have been observed
as consequence of the application of no-tillage to previously tilled soils. Our objective was to study the evolution of the
total and active soil microbial biomass and mineralized C in vitro during the first crop after the introduction of no-tillage
to an agricultural soil. The experiment was performed on a Typic Hapludoll from the Argentinean Pampa. Remaining plant residues,
total and active microbial biomass and mineralized C were determined at 0–5 cm and 5–15 cm depths, at three sampling times:
wheat tilling, silking and maturity. The introduction of no-tillage produced an accumulation of plant residues in the soil
surface layer (0–5 cm), showing stratification with depth at all sampling dates. Active microbial biomass and C mineralization
were higher under no-tillage than under conventional tillage in the top 5 cm of the profile. The total soil microbial biomass
did not differ between treatments. The active soil biomass was highly and positive correlated with plant residues (r
2=0.617;P<0.01) and with mineralized C (r
2=0.732;P<0.01). Consequently, the active microbial biomass and mineralized C reflected immediately the changes in residue management,
whereas the total microbial biomass seemed not to be an early indicator of the introduction of a new form of soil management
in our experiment.
Received: 23 February 1999 相似文献
12.
Water and N availability are the major limiting factors of primary production in desert ecosystems, and the response of soil
biota to these two factors is of great importance. We examined the immediate response of soil nematodes and the microbial
biomass to a single pulse of water amendment in N-treated plots in the Israeli Negev desert. Plots were treated with 0, 50
and 100 kg NH4NO3 ha–1 in December 1992, and at the end of the summer period (August 1993) the plots were exposed to a 15 mm water. Soil samples
from the 0–10 cm layer were collected daily and analysed soil moisture, total soluble N, nematode populations and microbial
biomass. Soil moisture increased to 8.5%, then gradually decreased to 2% during the 11 days of the study. Microbial biomass,
soil respiration and metabolic quotient values did not exhibit any significant correlation with soil N levels. Free-living
nematode population levels in the different plots were found to increase from a mean level of 45 500 to a mean level of 92 300
individuals m–2. N treatment was found to affect the patterns of free-living nematode population dynamics. The results of this study demonstrated
the importance of moisture availability levels and the ability to mobilize previous N inputs into available N which, occurring
in pulses, can affect the microbial ecophysiological status, nematode population dynamics and the interrelationship between
these two important components in the desert soil milieu.
Received: 5 November 1998 相似文献
13.
Crop yields in sandy soils can be increased by addition of clay-rich soil, but little is known about the effect of clay addition on nutrient availability after addition of plant residues with different C/N ratios. A loamy sandy soil(7% clay) was amended with a clay-rich subsoil(73% clay) at low to high rates to achieve soil mixtures of 12%, 22%, and 30% clay, as compared to a control(sandy soil alone) with no clay addition. The sandy-clay soil mixtures were amended with finely ground plant residues at 10 g kg~(-1): mature wheat(Triticum aestivum L.) straw with a C/N ratio of 68, mature faba bean(Vicia faba L.) straw with a C/N ratio of 39, or their mixtures with different proportions(0%–100%, weight percentage) of each straw. Soil respiration was measured over days 0–45 and microbial biomass C(MBC), available N, and p H on days 0, 15, 30, and 45. Cumulative respiration was not clearly related to the C/N ratio of the residues or their mixtures, but C use efficiency(cumulative respiration per unit of MBC on day 15) was greater with faba bean than with wheat and the differences among the residue mixtures were smaller at the highest clay addition rate. The MBC concentration was lowest in sole wheat and higher in residue mixtures with 50% of wheat and faba bean in the mixture or more faba bean. Soil N availability and soil p H were lower for the soil mixtures of 22% and 30% clay compared to the sandy soil alone. It could be concluded that soil cumulative respiration and MBC concentration were mainly influenced by residue addition, whereas available N and p H were influenced by clay addition to the sandy soil studied. 相似文献
14.
Jeff S. Coyle Richard R. Doucett Stephen C. Hart Bruce A. Hungate 《Soil biology & biochemistry》2009,41(8):1605-1611
Soil microbial organisms are central to carbon (C) and nitrogen (N) transformations in soils, yet not much is known about the stable isotope composition of these essential regulators of element cycles. We investigated the relationship between C and N availability and stable C and N isotope composition of soil microbial biomass across a three million year old semiarid substrate age gradient in northern Arizona. The δ15N of soil microbial biomass was on average 7.2‰ higher than that of soil total N for all substrate ages and 1.6‰ higher than that of extractable N, but not significantly different for the youngest and oldest sites. Microbial 15N enrichment relative to soil extractable and total N was low at the youngest site, increased to a maximum after 55,000 years, and then decreased slightly with age. The degree of 15N enrichment of microbial biomass correlated negatively with the C:N mass ratio of the soil extractable pool. The δ13C signature of soil microbial biomass was 1.4‰ and 4.6‰ enriched relative to that of soil total and extractable pools respectively and showed significant differences between sites. However, microbial 13C enrichment was unrelated to measures of C and N availability. Our results confirm that 15N, but not 13C enrichment of soil microbial biomass reflects changes in C and N availability and N processing during long-term ecosystem development. 相似文献
15.
In a cropping systems experiment in southeastern Norway, ecological (ECO), integrated (INT) and conventional (CON) forage
(FORAGE) and arable (ARABLE) model farms were compared. After 5 experimental years, topsoil was sampled in spring from spring
grain plots and incubated for 449 days at controlled temperature (15 °C) and moisture content (50% water-holding capacity).
There were no detectable differences between model farms in terms of total soil C or N. For INT and CON, however, values of
microbial biomass C and N, microbial quotient (Cmic/Corg), and C and N mineralization were, or tended to be, higher for FORAGE than for ARABLE. For the ECO treatment, values were
similar for FORAGE and ARABLE and did not differ significantly from that of CON-FORAGE. For INT and CON, the metabolic quotient
(qCO2) was lower for FORAGE than for ARABLE. Again, for the ECO treatment, values were similar for FORAGE and ARABLE and did not
differ significantly from that of CON-FORAGE. We estimated the sizes of conceptual soil organic matter pools by fitting a
decomposition model to biomass and mineralization data. This resulted in a 48% larger estimate for CON-FORAGE than for CON-ARABLE
of physically protected biomass C. For physically protected organic C the difference was 42%. Moreover, the stability of soil
aggregates against artificial rainfall was substantially greater for CON-FORAGE than for CON-ARABLE. On this basis, we hypothesized
that the lower qCO2 values in the FORAGE soils were mainly caused by a smaller proportion of active biomass due to enclosure of microorganisms
within aggregates. Altogether, our results indicated a poorer inherent soil fertility in ARABLE than in FORAGE rotations,
but the difference was small or absent in the ECO system, probably owing to the use of animal and green manures and reduced
tillage intensity in the ECO-ARABLE rotation.
Received: 28 October 1998 相似文献
16.
D. M. Granatstein D. F. Bezdicek V. L. Cochran L. E. Elliott J. Hammel 《Biology and Fertility of Soils》1987,5(3):265-270
Summary Three mollisols, typical of the Palouse winter wheat region of eastern Washington and northern Idaho, were analyzed for microbial biomass, total C and total N after 10 years of combined tillage and rotation treatments. Treatments included till, no-till and three different cereal-legume rotations. All crop phases in each rotation were sampled in the same year. Microbial biomass was monitored from April to October, using a respiratory-response method. Microbial biomass, total C and total N were highest under no-till surface soils (0–5 cm), with minimal differences for tillage or depth below 5 cm. Microbial biomass differences among rotations were not large, owing to the relative homogeneity of the treatments. A rotation with two legume crops had the highest total C and N. Microbial biomass was significantly higher in no-till surface soils where the current crop had been preceded by a high-residue crop. The opposite was true for the tilled plots. There was little change in microbial biomass over the seasons until October, when fresh crop residues and rains had a strong stimulatory effect. The seasonal pattern of biomass in no-till surface soils reflected the dry summer/winter rainfall climate of the region. The results of this study show that numerous factors affect soil microbial biomass and that cropping history and seasonal changes must be taken into account when microbial biomass data are compared.Scientific paper no. 7634 相似文献
17.
Soil organic carbon stocks, storage profile and microbial biomass under different crop management systems in a tropical agricultural ecosystem 总被引:3,自引:0,他引:3
We investigated the soil organic C and N stocks, storage profiles and microbial biomass as influenced by different crop management
systems in a tropical agricultural ecosystem. The different crop management systems significantly affected the C and N stocks
and microbial biomass C and N at different soil depths. Amongst the systems evaluated, the rice-wheat system maintained a
higher soil organic C content. Inclusion of legumes in the system improved the soil organic matter level and also soil microbial
biomass activity, vital for the nutrient turnover and long-term productivity of the soil. Irrespective of the cropping system,
approximately 58.4%, 25.7% and 15.9% of the C was distributed in 0–15, 15–30 and 30–60 cm depths, respectively.
Received: 10 October 1999 相似文献
18.
Variations in soil microbial biomass and N availability due to residue and tillage management in a dryland rice agroecosystem 总被引:10,自引:0,他引:10
Seasonal changes in the levels of soil microbial biomass C (MBC) and N (MBN), N-mineralization rate and available-N concentration were studied in rice–barley supporting tropical dryland (rainfed) agroecosystem under six combinations of tillage (conventional, minimum and zero tillage) and crop residue manipulation (retained or removed) conditions. Highest levels of soil MBC and MBN (368–503 and 38.2–59.7 μg g−1, respectively) were obtained in minimum tillage residue retained (MT+R) treatment and lowest levels (214–264 and 20.3–27.1 μg g−1, respectively) in conventional tillage residue removed (CT−R, control) treatment. Along with residue retention tillage reduction from conventional to zero increased the levels of MBC and MBN (36–82 and 29–104% over control, respectively). The proportion of MBC and MBN in soil organic C and total N contents increased significantly in all treatments compared to control. This increase (28% in case of C and 33% N) was maximum in MT+R and minimum (10% for C and N both) in minimum tillage residue removed (MT−R) treatment. In all treatments concentrations of N in microbial biomass were greater at seedling stage, thereafter these concentrations decreased drastically (21–38%) at grain-forming stage of both crops. In residue removed treatments, N-mineralization rates were maximum during the seedling stage of crops and then decreased through the crop maturity. In residue retained treatments, however, N-mineralization rates were lower than in residue removed treatments at seedling stage of both crops. At grain-forming stage in all instances the N-mineralization rates in residue retained treatments considerably exceeded the rates in corresponding residue removed treatments. Tillage reduction and residue retention both increased the proportion of organic C and total N present in soil organic matter as microbial biomass. Microbial immobilization of available-N during the early phase of crops and its pulsed release later during the period of greater N demand of crops enhanced the degree of synchronization between crop demand and N supply. The maximum enhancement effects were recorded in the minimum tillage along with residue retained treatment. In the dryland agroecosystem studied, two management practices in combination proved more advantageous than either practice alone in maintaining soil fertility levels. For soil fertility amelioration in dryland agroecosystems with least dependence upon chemical fertilizer input, post-harvest retention of about 20 cm shoot biomass (accounting for 25–40% aboveground biomass) of previous crop and its incorporation in soil through minimum tillage in the succeeding crop is suggested, especially in the case of cereal. 相似文献
19.
R. J. Haynes 《Biology and Fertility of Soils》1999,30(3):210-216
The effects of 5 years of continuous grass/clover (Cont grass/clover) or grass (Cont grass) pasture or 5 years of annual
grass under conventional (Ann grass CT) or zero tillage (Ann grass ZT) were compared with that of 5 years of continuous barley
(LT arable) on a site which had previously been under arable crops for 11 years. For added comparison, a long-term grass/clover
pasture site (LT past) nearby was also sampled. Soil organic C (Corg) content followed the order LT arable=Ann grass CT<Ann grass ZT<Cont grass=Cont grass/clover<LTpast. Trends with treatment
for microbial biomass C (Cmic), basal respiration, flourescein diacetate (FDA) hydrolytic activity, arginine ammonification rate and the activities of
dehydrogenase, protease, histidase, acid phosphatase and arylsulphatase enzymes were broadly similar to those for Corg. For Cmic, FDA hydrolysis, arginine ammonification and the activities of histidase, acid phosphatase and arylsulphatase, the percentage
increase caused by 5 years of continuous pasture (in comparison with LT arable) was 100–180%, which was considerably greater
than that for organic C (i.e. 60%). The microbial metabolic quotient (qCO2) was higher for the two treatments which were mouldboard ploughed annually (LT arable and Ann grass CT) than for the undisturbed
sites. At the undisturbed sites, Corg declined markedly with depth (0–15 cm) and there was a similar stratification in the size and activity of Cmic and enzyme activity. The microbial quotient (Cmic/Corg) declined with depth whilst qCO2 tended to increase, reflecting a decrease in the proportion of readily available substrate with depth.
Received: 7 July 1998 相似文献
20.
Long-term monitoring of microbial biomass, N mineralisation and enzyme activities of a Chernozem under different tillage management 总被引:13,自引:0,他引:13
We investigated the influence of tillage (conventional, minimum and reduced) on selected soil microbial properties of a fine-sandy
loamy Haplic Chernozem over a period of 8 years. The microbial biomass and soil microbial processes were affected mostly by
type of tillage and to a lesser extent by the date of soil sampling. Whereas xylanase activity was significantly higher in
the 0 to 10-cm soil layer of the reduced and minimum tillage systems within the first year of the experiment (protease and
phosphatase activities were significantly higher in the second year), significant treatment effects on microbial biomass,
N mineralisation and potential nitrification were observed after a 4-year period. The slow response of substrate-induced respiration
to the change in type of tillage may have been due to the differences in the biomass C turnover rates. After a 4-year period,
the stratification of the soil microbial biomass within the profile of reduced and minimum tillage systems was probably responsible
for the more intensive soil microbial processes near the soil surface compared with conventional tillage. In the 20 to 30-cm
layer, N mineralisation, potential nitrification and xylanase activity in the conventional treatment were significantly higher
than in the minimum and reduced tillage plots due to buried organic materials. Discriminant analysis underlined the similarity
of the enzyme activity patterns in the top layer of the reduced and minimum tillage treatments, and in both layers of the
conventional tillage system. The trend towards a significant increase in functional diversity caused by reduced tillage became
obvious within the first year of the experiment, and this effect was still manifest after 8 years. All relationships suggested
that there were differences in available resources (e.g. organic matter) along the sequence of different tillage systems;
this was reflected in part by enhanced enzymatic and microbial activities in the soil layers. In conclusion, this study showed
that soils affected by tillage may be classified on the basis of their functional diversity. Therefore, the soil microbial
properties chosen for microbiological soil monitoring (microbial biomass, N mineralisation and enzyme activities involved
in C, N and P cycling) provide a reliable tool with which to estimate early changes in the dynamics and distribution of soil
microbial processes within soil profiles.
Received: 3 February 1998 相似文献