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1.
Jelínek D Miketová P Khailová L Schram KH Moore IM Vytrasová J 《Folia microbiologica》2006,51(4):329-336
High-performance liquid chromatography (HPLC) and gas chromatography-mass spectrometry (GC-MS) were used to analyze the phospholipids and fatty acids of four Arcobacter species (becoming routinely isolated from a wide variety of food sources, especially of animal origin) to provide information for the identification within these species. Phospholipid differences were observed in the HPLC profiles. GC-MS analysis provided a complete fatty acid composition for each arcobacter that after pattern recognition analysis allows taxonomic classification of each species. 相似文献
2.
Gary Egan Xue Zhou Dongmei Wang Zhongjun Jia Michael J. Crawley Dario Fornara 《Biogeochemistry》2018,141(2):213-228
Grassland management intensification can significantly affect the structure and composition of important soil microbial groups such as bacteria and fungi. Changes to these microbial communities can greatly influence carbon (C) and nitrogen (N) cycling in grassland soils. Here we specifically address how microbial abundances might shift under the effect of multiple management practices and how this in turn might relate to changes in soil C and N storage. Soil samples were collected from a 23-year-old grassland experiment and real-time quantitative Polymerase Chain Reaction (PCR) was performed to address whether and how (1) chronic nutrient additions, (2) liming (i.e., the addition of CaCO3 to soils), and (3) grazing by rabbits might affect archaeal, bacterial and fungal microbial groups. We found that liming additions significantly increased archaeal and bacterial abundance whilst strongly reducing fungal abundance. The addition of N-only (as NH4NO3) significantly reduced bacterial abundance while chronic grazing by rabbits resulted in positive effects on archaeal abundance. Despite long-term grassland management significantly affecting soil microbial abundances (and Fungal-to-Bacterial ratios), microbial changes were not related to either changes in soil C or N pools. Overall, our results suggest that (1) important microbial-‘soil functioning’ relationships may only be detected at lower taxonomic levels, and (2) liming-induced increases in soil pH determined significant shifts in soil microbial abundance, which could have important consequences for the delivery of multiple soil ecosystem services (i.e., nutrient regulation, C and N sequestration) from permanent grassland. 相似文献
3.
磷脂脂肪酸法在土壤微生物群落分析中的应用 总被引:7,自引:0,他引:7
土壤微生物群落的组成一直是土壤学、微生物学和生态学研究的热点问题。我国在这方面的研究处于国际前列,越来越多的研究成果在国际重要刊物上发表。而磷脂脂肪酸(PLFA)法在土壤微生物群落分析中占有举足轻重的地位,国内外学者都热衷于使用该方法。但是PLFA法的使用仍存在一些不足的地方,需要研究学者们慎重使用。本文综述了国际上相关研究,概述了PLFA方法使用的发展历史,应用及挑战。总结了使用和数据解读时需要注意的问题,整理了PLFA法相关的生物标记以及与新方法结合的设想,方便以后研究的开展。 相似文献
4.
内蒙草原不同植物功能群及物种对土壤微生物组成的影响 总被引:1,自引:0,他引:1
为了分析不同植物群落组成对内蒙古典型草原土壤微生物群落组成的影响,本研究利用植物功能群剔除处理实验平台,采用荧光定量PCR(real-timePCR)和自动核糖体间隔区基因分析(automated ribosomal intergenic spacer analysis,ARISA)技术,对不同植物功能群组成的非根际土壤和常见物种的根际土壤中细菌和真菌的数量及群落结构进行了分析。结果表明,在非根际土壤中,不同植物功能群组成对细菌数量有显著影响,而对真菌数量及细菌和真菌的群落结构影响不明显;在根际土壤中,不同植物物种对细菌、真菌的数量都有显著影响。此外,聚类分析表明,不同物种的根际土中细菌和真菌的群落结构也有所不同,尤其以细菌的群落结构变化较为明显。研究结果表明不同植物物种可以通过根系影响土壤微生物群落组成。 相似文献
5.
Susan E. Ward Simon M. Smart Helen Quirk Jerry R. B. Tallowin Simon R. Mortimer Robert S. Shiel Andrew Wilby Richard D. Bardgett 《Global Change Biology》2016,22(8):2929-2938
The importance of managing land to optimize carbon sequestration for climate change mitigation is widely recognized, with grasslands being identified as having the potential to sequester additional carbon. However, most soil carbon inventories only consider surface soils, and most large‐scale surveys group ecosystems into broad habitats without considering management intensity. Consequently, little is known about the quantity of deep soil carbon and its sensitivity to management. From a nationwide survey of grassland soils to 1 m depth, we show that carbon in grassland soils is vulnerable to management and that these management effects can be detected to considerable depth down the soil profile, albeit at decreasing significance with depth. Carbon concentrations in soil decreased as management intensity increased, but greatest soil carbon stocks (accounting for bulk density differences), were at intermediate levels of management. Our study also highlights the considerable amounts of carbon in subsurface soil below 30 cm, which is missed by standard carbon inventories. We estimate grassland soil carbon in Great Britain to be 2097 Tg C to a depth of 1 m, with ~60% of this carbon being below 30 cm. Total stocks of soil carbon (t ha?1) to 1 m depth were 10.7% greater at intermediate relative to intensive management, which equates to 10.1 t ha?1 in surface soils (0–30 cm), and 13.7 t ha?1 in soils from 30 to 100 cm depth. Our findings highlight the existence of substantial carbon stocks at depth in grassland soils that are sensitive to management. This is of high relevance globally, given the extent of land cover and large stocks of carbon held in temperate managed grasslands. Our findings have implications for the future management of grasslands for carbon storage and climate mitigation, and for global carbon models which do not currently account for changes in soil carbon to depth with management. 相似文献
6.
耕作方式对紫色水稻土有机碳和微生物生物量碳的影响 总被引:8,自引:2,他引:8
以位于西南大学的农业部紫色土生态环境重点野外科学观测试验站始于1990年的长期定位试验田为对象,研究了冬水田平作(DP)、水旱轮作(SH)、垄作免耕(LM)及垄作翻耕(LF)等4种耕作方式对紫色水稻土有机碳(SOC)和微生物生物量碳(SMBC)的影响。结果表明,4种耕作方式下SOC和SMBC均呈现出在土壤剖面垂直递减趋势,翻耕栽培下其降低较均匀,而免耕栽培下其富集在表层土壤中。同一土层不同耕作方式间SOC和SMBC的差异在表层最大,随着土壤深度的增加,各处理之间的差异逐渐减小。在0—60 cm剖面中,SOC含量依次为:LM(17.6 g/kg)>DP(13.9 g/kg)>LF(12.5 g/kg)>SH(11.3 g/kg),SOC储量也依次为:LM(158.52 Mg C/hm2)>DP(106.74 Mg C/hm2)>LF(93.11 Mg C/hm2)>SH(88.59 Mg C/hm2),而SMBC含量则依次为:LM(259 mg/kg)>SH(213 mg/kg)>LF(160 mg/kg)>DP(144 mg/kg)。与其它3种耕作方式比较,LM处理显著提高SOC含量和储量以及SMBC含量。对土壤微生物商(SMBC/SOC)进行分析发现,耕作方式对SOC和SMBC的影响程度并不一致。SMBC与SOC、全氮、全磷、全硫、碱解氮、有效磷均呈现极显著正相关(P<0.01),与有效硫呈显著正相关(P<0.05);表明SMBC可以作为表征紫色水稻土土壤肥力的敏感因子。 相似文献
7.
Aims
The main objective was to describe the effects of plant litter on SOC and on soil microbial activity and structure in extensively managed grasslands in Central Germany that vary in biomass production and plant community composition.Methods
The decomposition of shoot and root litter was studied in an incubation experiment. Labile C and N were isolated by hot water extraction (CHWE, NHWE), while functional groups of microbes were identified by PLFA analysis and microbial activity was measured using a set of soil exo-enzymes.Results
The plant community composition, particulary legume species affected SOC dynamics and below-ground microbial processes, especially via roots. This was reflected in about 20% lower decomposition of root litter in low productivity grassland soil. The CHWE soil pool was found to be a key driver of the below-ground food web, controlling soil microbial processes.Conclusions
Below-ground responses appear to be related to the presence of legume species, which affected the microbial communities, as well as the ratio between fungal and bacterial biomass and patterns of soil enzyme activity. Low productivity fungal-dominated grasslands with slow C turnover rates may play an important role in SOC accumulation. The approach used here is of particular importance, since associated biological and biochemical processes are fundamental to ecosystem functioning. 相似文献8.
Stavros D. Veresoglou Andreas P. Mamolos Barry Thornton Olga K. Voulgari Robin Sen Demetrios S. Veresoglou 《Plant and Soil》2011,344(1-2):187-196
According to the singular hypothesis of plant diversity, different plant species are expected to make unique contributions to ecosystem functioning. Hence, individual species would support distinct microbial communities. It was hypothesized that microbial community dynamics in the respective rhizospheres of, two floristically divergent species, Agrostis capillaris and Prunella vulgaris that were dominant in a temperate, upland grassland in northern Greece, would support distinct microbial communities, in agreement to the singular hypothesis. Phospholipid lipid fatty acid (PLFA) profiles of the rhizosphere soil microbial community were obtained from the grassland which had been subjected to factorial nitrogen (N) and phosphorus (P) fertilization over five plant growth seasons. The soil cores analyzed were centered on stands of the two co-occurring target plant species, sampled from five blocks in all four factorial N and P fertilization combinations. Distinct PLFA clustering patterns following principle component analysis of PLFA concentrations revealed that, in the absence of P fertilization, soils under the two plant species supported divergent microbial communities. In the P fertilized plots, however, no such distinction could be observed. Results reveal that nutrient fertilization may mask the ability of plant species to shape their own rhizosphere microbial community. 相似文献
9.
Patra AK Abbadie L Clays-Josserand A Degrange V Grayston SJ Guillaumaud N Loiseau P Louault F Mahmood S Nazaret S Philippot L Poly F Prosser JI Le Roux X 《Environmental microbiology》2006,8(6):1005-1016
Management by combined grazing and mowing events is commonly used in grasslands, which influences the activity and composition of soil bacterial communities. Whether observed effects are mediated by management-induced disturbances, or indirectly by changes in the identity of major plant species, is still unknown. To address this issue, we quantified substrate-induced respiration (SIR), and the nitrification, denitrification and free-living N(2)-fixation enzyme activities below grass tufts of three major plant species (Holcus lanatus, Arrhenatherum elatius and Dactylis glomerata) in extensively or intensively managed grasslands. The genetic structures of eubacterial, ammonia oxidizing, nitrate reducing, and free-living N(2)-fixing communities were also characterized by ribosomal intergenic spacer analysis, and denaturing gradient gel electrophoresis (DGGE) or restriction fragment length polymorphism (RFLP) targeting group-specific genes. SIR was not influenced by management and plant species, whereas denitrification enzyme activity was influenced only by plant species, and management-plant species interactions were observed for fixation and nitrification enzyme activities. Changes in nitrification enzyme activity were likely largely explained by the observed changes in ammonium concentration, whereas N availability was not a major factor explaining changes in denitrification and fixation enzyme activities. The structures of eubacterial and free-living N(2)-fixing communities were essentially controlled by management, whereas the diversity of nitrate reducers and ammonia oxidizers depended on both management and plant species. For each functional group, changes in enzyme activity were not correlated or were weakly correlated to overall changes in genetic structure, but around 60% of activity variance was correlated to changes in five RFLP or DGGE bands. Although our conclusions should be tested for other ecosystems and seasons, these results show that predicting microbial changes induced by management in grasslands requires consideration of management-plant species interactions. 相似文献
10.
放牧和刈割是内蒙古草原的两种主要利用方式,然而,长期放牧和刈割对大针茅草原土壤微生物群落的影响知之甚少,因此,以内蒙古大针茅草原为研究对象,设置放牧和刈割两种利用方式,以围封不利用为对照,基于高通量测序技术,研究大针茅草原在不同利用方式下土壤微生物组成及多样性的变化,并结合土壤理化因子进一步探究土壤微生物群落组成的主要影响因素。研究结果表明:不同利用方式下土壤细菌α多样性指数无显著差异,而刈割显著提高了土壤真菌Observed_species、Chao1和ACE指数;土壤细菌群落的优势菌门是变形菌门(Proteobacteria)和放线菌门(Actinobacteria),土壤真菌群落的优势菌门是子囊菌门(Ascomycota)和被孢霉门(Mortierellomycota),不同利用方式下部分微生物类群的相对丰度差异显著,放牧显著提高了细菌群落的变形菌门、疣微菌门(Verrucomicrobia)和芽单胞菌门(Gemmatimonadetes)的相对丰度,刈割显著提高了真菌群落的担子菌门(Basidiomycota)相对丰度,此外,放牧和刈割均显著降低了厚壁菌门(Firmicutes... 相似文献
11.
The microbial community compositions of surface and subsurface marine sediments and sediments lining burrows of marine polychaetes and hemichordates from the North Inlet estuary (near Georgetown, S.C. ) were analyzed by comparing ester-linked phospholipid fatty acid (PLFA) profiles with a back-propagating neural network (NN). The NNs were trained to relate PLFA inputs to sediment type outputs (e.g., surface, subsurface, and burrow lining) and worm species (e.g., Notomastus lobatus, Balanoglossus aurantiacus, and Branchyoasychus americana). Sensitivity analysis was used to determine which of the 60 PLFAs significantly contributed to training the NN. The NN architecture was optimized by changing the number of hidden neurons and calculating the cross-validation error between predicted and actual outputs of training and test data. The optimal NN architecture was found to be four hidden neurons with 60-input neurons representing the 60 PLFAs, and four output neurons coding for both sediment types and worm species. Comparison of cross-validation results using NNs and linear discriminant analysis (LDA) revealed that NNs had significantly fewer incorrect classifications (2.7%) than LDA (8.4%). For the NN cross-validation, both sediment type and worm species had 3 incorrect classifications out of 112. For the LDA cross-validation, sediment type and worm species had 7 and 12 incorrect classifications out of 112, respectively. Sensitivity analysis of the trained NNs revealed that 17 fatty acids explained 50% of variability in the data set. These PLFAs were highly different among sediments and burrow types, indicating significant differences in the microbiota. 相似文献
12.
Discrimination of microbial diversity by fatty acid profiles of phospholipids and lipopolysaccharides in differently cultivated soils 总被引:6,自引:0,他引:6
The effects of long-term management practices on the diversity of the microbial community were examined by analyzing the composition of fatty acids (FAs) in phospholipids (PL) and lipopolysaccharides (LPS). According to the Principal Component Analysis (PCA) of total fatty acids the soils were divided in two groups: a) Black fallow soil (1) and soils cropped with potatoes (3, 4), and b) green fallow soil (2), soils cropped with wheat (5, 6), crop rotation (7) and grassland (8). The PCA for saturated FAs and for hydroxy FAs of both PL and LPS shows that the green fallow soil (2) can be distinguished from the other soils. For monounsaturated FAs the grassland soil (8) and for polyunsaturated FAs the wheat with vetch soil (6) clearly differed from the other soils. Fatty acids with biomarker quality such as 15:0 for bacteria and 18:26 for fungi were used for determining the ratio between bacteria and fungi: the black fallow soil (1) and the soil managed with crop rotation (7) contained significantly higher proportions of bacteria than the other soils. The largest proportion of the indicator fatty acid il5:0 for Gram-positive bacteria was measured in the black fallow soil (1), while the-hydroxy FAs indicative of Gram-negative bacteria most frequently occurred in manured potato cropped soil (4). Both indicator fatty acids 18:26 for fungi and cy19:0 for anaerobic bacteria had their highest concentrations in the manured potato cropped soil (4). 相似文献
13.
土壤微生物群落磷脂脂肪酸PLFA生物标记多样性 总被引:18,自引:6,他引:18
磷脂脂肪酸(PLFA)生物标记法是一种可定性和定量分析土壤中微生物群落多样性的方法.研究以烟田土壤为例,应用生态学评价方法,即丰富度 (S)、均匀度(J)、Simpson优势度(D)、Shannon-Wiener(H1)、Brillouin(H2)和McIntosh(H3)多样性指数等测度方法,分析土壤中微生物群落PLFAs生物标记的多样性.研究结果表明,供试土壤微生物群落中,先后出现了43种PLFAs,将其聚类分析,可以将所获得的PLFAs分成五大类:第Ⅰ类为高含量、高频次和多样性,PLFA为18:1ω9c的真菌生物标记;第Ⅱ类为高含量、高频次和多样性,PLFA为16:0的假单胞菌生物标记;第Ⅲ类为高含量、高频次,多样性中等,PLFA为16:1ω5c的甲烷氧化菌生物标记;第Ⅳ类为中等含量,频次较高,多样性中等,含有表征好氧菌的i15:0、a15:0、i16:0和a17:0的PLFA,还有表征厌氧菌的18:1ω7c以及硫酸盐还原菌的16:0 10Me;第Ⅴ类为低含量,低频次和多样性,其特征生物标记有表征好氧菌的I 15:0 3OH、15:1 I G、a16:0、i16:1 G、i16:1 H、17:0、i17:0、15:0 2OH、15:0 3OH、17:0和17:0 2OH的PLFAs,存在有表征真菌的18:3ω6c (6,9,12)、放线菌的17:0 10Me和18:0 10Me以及表征原生动物的20:4ω6,9,12,15c.说明供试土壤中能够起主导作用的功能菌依次是真菌、假单胞菌、甲烷氧化菌和部分的好氧菌、厌氧菌及硫酸盐还原菌,将为合理调节土壤微生态系统提供指导,是一种可行的评价土壤微生物群落多样性的新方法. 相似文献
14.
Rhizosphere priming effects on the decomposition of soil organic matter in C4 and C3 grassland soils 总被引:1,自引:0,他引:1
Using a natural abundance 13C method, soil organic matter (SOM) decomposition was studied in a C3 plant – `C4 soil' (C3 plant grown in a soil obtained from a grassland dominated by C4 grasses) system and a C4 plant – `C3 soil' (C4 plant grown in a soil taken from a pasture dominated by C3 grasses) system. In C3 plant – `C4 soil' system, cumulative soil-derived CO2–C were higher in the soils planted with soybean (5499 mg pot–1) and sunflower (4484 mg pot–1) than that in `C4 soil' control (3237 mg pot–1) without plants. In other words, the decomposition of SOM in soils planted with soybean and sunflower were 69.9% and 38.5% faster than `C4 soil' control. In C4 plant – `C3 soil' system, there was an overall negative priming effect of live roots on the decomposition of SOM. The cumulative soil-derived CO2–C were lower in the soils planted with sorghum (2308 mg pot–1) and amaranthus (2413 mg pot–1) than that in `C3 soil' control (2541 mg pot–1). The decomposition of SOM in soils planted with sorghum and amaranthus were 9.2% and 5.1% slower than `C3 soil' control. Our results also showed that rhizosphere priming effects on SOM decomposition were positive at all developmental stages in C3 plant – `C4 soil' system, but the direction of the rhizosphere priming effect changed at different developmental stages in the C4 plant – `C3 soil' system. Implications of rhizosphere priming effects on SOM decomposition were discussed. 相似文献
15.
Climate change effects on the stability and chemistry of soil organic carbon pools in a subalpine grassland 总被引:2,自引:0,他引:2
Jérémy Puissant Robert T. E. Mills Bjorn J. M. Robroek Konstantin Gavazov Yves Perrette Sébastien De Danieli Thomas Spiegelberger Alexandre Buttler Jean-Jacques Brun Lauric Cécillon 《Biogeochemistry》2017,132(1-2):123-139
Mountain soils stock large quantities of carbon as particulate organic matter that may be highly vulnerable to climate change. To explore potential shifts in soil organic matter (SOM) form and stability under climate change (warming and reduced precipitations), we studied the dynamics of SOM pools of a mountain grassland in the Swiss Jura as part of a climate manipulation experiment. The climate manipulation (elevational soil transplantation) was set up in October 2009 and simulated two realistic climate change scenarios. After 4 years of manipulation, we performed SOM physical fractionation to extract SOM fractions corresponding to specific turnover rates, in winter and in summer. Soil organic matter fraction chemistry was studied with ultraviolet, 3D fluorescence, and mid-infrared spectroscopies. The most labile SOM fractions showed high intra-annual dynamics (amounts and chemistry) mediated via the seasonal changes of fresh plant debris inputs and confirming their high contribution to the microbial loop. Our climate change manipulation modified the chemical differences between free and intra-aggregate organic matter, suggesting a modification of soil macro-aggregates dynamics. Interestingly, the 4-year climate manipulation affected directly the SOM dynamics, with a decrease in organic C bulk soil content, resulting from significant C-losses in the mineral-associated SOM fraction (MAOM), the most stable form of SOM. This SOC decrease was associated with a decrease in clay content, above- and belowground plants biomass, soil microbial biomass and activity. The combination of these climate changes effects on the plant–soil system could have led to increase C-losses from the MAOM fraction through clay-SOM washing out and DOC leaching in this subalpine grassland. 相似文献
16.
Decomposition of litter is greatly influenced not only by its chemical composition but also by activities of soil decomposers.
By using leaf litter from 15 plant species collected from semi-natural and improved grasslands, we examined (1) how interspecific
differences in the chemical composition of litter influence the abundance and composition of soil bacterial and fungal communities
and (2) how such changes in microbial communities are related to the processes of decomposition. The litter from each species
was incubated in soil of a standard composition for 60 days under controlled conditions. After incubation, the structure of
bacterial and fungal communities in the soil was examined using phospholipid fatty-acid analysis and denaturing gradient gel
electrophoresis. Species from improved grasslands had significantly higher rates of nitrogen mineralization and decomposition
than those from semi-natural grasslands because the former were richer in nitrogen. Litter from improved grasslands was also
richer in Gram-positive bacteria, whereas that from semi-natural grasslands was richer in actinomycetes and fungi. Nitrogen
content of litter also influenced the composition of the fungal community. Changes in the composition of both bacterial and
fungal communities were closely related to the rate of litter decomposition. These results suggest that plant species greatly
influence litter decomposition not only through influencing the quality of substrate but also through changing the composition
of soil microbial communities. 相似文献
17.
Dissolved organic carbon chemistry and dynamics in contrasting forest and grassland soils 总被引:2,自引:0,他引:2
Seasonal variability in biogeochemical signatures was used to elucidate the dominant pathways of soil microbial metabolism
and elemental cycling in an oligotrophic mangrove system. Three interior dwarf mangrove habitats (Twin Cays, Belize) where
surface soils were overlain by microbial mats were sampled during wet and dry periods of the year. Porewater equilibration
meters and standard biogeochemical methods provided steady-state porewater profiles of pH, chloride, sulfate, sulfide, ammonium,
nitrate/nitrite, phosphate, dissolved organic carbon, nitrogen, and phosphorus, reduced iron and manganese, dissolved inorganic
carbon, methane and nitrous oxide. During the wet season, the salinity of overlying pond water and shallow porewaters decreased.
Increased rainwater infiltration through soils combined with higher tidal heights appeared to result in increased organic
carbon inventories and more reducing soil porewaters. During the dry season, evaporation increased both surface water and
porewater salinities, while lower tidal heights resulted in less reduced soil porewaters. Rainfall strongly influenced inventories
of dissolved organic carbon and nitrogen, possibly due to more rapid decay of mangrove litter during the wet season. During
both times of year, high concentrations of reduced metabolites accumulated at depth, indicating substantial rates of organic
matter mineralization coupled primarily to sulfate reduction. Nitrous oxide and methane concentrations were supersaturated
indicating considerable rates of nitrification and/or incomplete denitrification and methanogenesis, respectively. More reducing
soil conditions during the wet season promoted the production of reduced manganese. Contemporaneous activity of sulfate reduction
and methanogenesis was likely fueled by the presence of noncompetitive substrates. The findings indicate that these interior
dwarf areas are unique sites of nutrient and energy regeneration and may be critical to the overall persistence and productivity
of mangrove-dominated islands in oligotrophic settings. 相似文献
18.
红壤丘陵景观单元土壤有机碳和微生物生物量碳含量特征 总被引:13,自引:0,他引:13
为了探讨我国亚热带红壤丘陵区不同利用方式下土壤有机碳(SOC)和土壤微生物生物量碳(SMB-C)含量的特征,在湖南省桃源县选取典型样区,通过密集取样,分析了红壤丘陵景观单元内水田、旱地、林地、果园4种典型利用方式下表层土壤(0~20 cm)SOC和SMB-C含量.结果表明,典型红壤丘陵景观单元中SOC含量高低的顺序为水田(16.0 g·kg-1)>旱地(11.2 g·kg-1) >果园(9.5 g·kg-1)>林地(8.4 g·kg-1),SMB-C含量则为水田(830 mg·kg-1)>旱地(361 mg·kg-1)>林地(200 mg·kg-1)>果园(186 mg·kg-1),且在不同利用方式下SOC与SMB-C均呈极显著正相关(P<0.01),说明本研究区内各土地利用类型的土壤SMB-C含量变化可以敏感地指示SOC的动态.研究结果还表明,将我国亚热带红壤丘陵林地开垦为果园或耕地后,表层土壤 SOC含量不可能降低. 相似文献
19.
Murthy M Hamilton J Greiner RS Moriguchi T Salem N Kim HY 《Journal of lipid research》2002,43(4):611-617
In this study, we have examined the effects of n-3 fatty acid deficient diets on the phospholipids (PL) molecular species composition in the hippocampus. Female rats were raised for two generations on diets containing linoleic acid (18:2n-6), with or without supplementation of alpha-linolenic acid (18:3n-3) or 18:3n-3 plus docosahexaenoic acid (22:6n-3). At 84 days of age, the hippocampal phospholipids were analyzed by reversed phase HPLC-electrospray ionization mass spectrometry. Depleting n-3 fatty acids from the diet led to a reduction of 22:6n-3 molecular species in phosphatidylcholine (PC), phosphatidylethanolamine (PE), PE-plasmalogens (PLE), and phosphatidylserine (PS) by 70-80%. In general, 22:6n-3 was replaced with 22:5n-6 but the replacement at the molecular species level did not always occur in a reciprocal manner, especially in PC and PLE. In PC, the 16:0,22:6n-3 species was replaced by 16:0,22:5n-6 and 18:0,22:5n-6. In PLE, substantial increases of both 22:5n-6 and 22:4n-6 species compensated for the decreases in 22:6n-3 species in n-3 fatty acid deficient groups. While the total PL content was not affected by n-3 deficiency, the relative distribution of PS decreased by 28% with a concomitant increase in PC.The observed decrease of 22:6n-3 species along with PS reduction may represent key biochemical changes underlying losses in brain-hippocampal function associated with n-3 deficiency. 相似文献
20.
Influence of inorganic nitrogen management regime on the diversity of nitrite-oxidizing bacteria in agricultural grassland soils 总被引:7,自引:0,他引:7
Freitag TE Chang L Clegg CD Prosser JI 《Applied and environmental microbiology》2005,71(12):8323-8334
To assess links between the diversity of nitrite-oxidizing bacteria (NOB) in agricultural grassland soils and inorganic N fertilizer management, NOB communities in fertilized and unfertilized soils were characterized by analysis of clone libraries and denaturing gradient gel electrophoresis (DGGE) of 16S rRNA gene fragments. Previously uncharacterized Nitrospira-like sequences were isolated from both long-term-fertilized and unfertilized soils, but DGGE migration patterns indicated the presence of additional sequence types in the fertilized soils. Detailed phylogenetic analysis of Nitrospira-like sequences suggests the existence of one newly described evolutionary group and of subclusters within previously described sublineages, potentially representing different ecotypes; the new group may represent a lineage of noncharacterized Nitrospira species. Clone libraries of Nitrobacter-like sequences generated from soils under different long-term N management regimes were dominated by sequences with high similarity to the rhizoplane isolate Nitrobacter sp. strain PJN1. However, the diversity of Nitrobacter communities did not differ significantly between the two soil types. This is the first cultivation-independent study of nitrite-oxidizing bacteria in soil demonstrating that nitrogen management practices influence the diversity of this bacterial functional group. 相似文献