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1.
采用平行同步采样法,于2012年雨季,对广州市大夫山森林公园林内外空气的总悬浮颗粒物(TSP)和细颗粒物(PM2.5)样品进行了24 h收集,测定了TSP和PM2.5的质量浓度并分析了样品中水溶性无机离子成分。结果表明:林内外PM2.5的质量浓度平均值分别为(40.18±10.47)和(55.79±13.01) g/cm3;林内外TSP的质量浓度分别为(101.32 ± 33.19)和(116.61±35.36) g/cm3。林内与林外比,PM2.5和TSP平均质量浓度都显著减少(P < 0.05),表明森林能显著改善空气环境质量。TSP和PM2.5中SO42-、Na+、NH4+和NO3-为水溶性无机离子主要成分,占总离子质量的80%以上,林外这些离子的浓度高于林内(NH4+除外)。这4种离子雨季在空气中的主要存在方式为NaCl、Na2SO4、NH4HSO4和NH4NO3。计算表明,采样期间海盐对大夫山空气TSP和PM2.5的水溶性组分中Na+和Cl-贡献最大,其它元素主要源自陆地源。林内外TSP和PM2.5c(NO3-)/c(SO42-)比值在0.3以下,表明固定源是大夫山森林公园空气主要污染贡献者,TSP中c(NO3-)/c(SO42-)的比值大于PM2.5的比值,说明移动源对TSP的贡献大于PM2.5。  相似文献   

2.
施肥对巢湖流域稻季氨挥发损失的影响   总被引:6,自引:0,他引:6  
采用通气法对巢湖流域稻季土壤氨挥发原位监测,研究了不同施肥量及秸秆还田处理对稻季氨挥发的影响。结果表明,氨挥发峰值发生在施肥后的第1-3 天,氨挥发损失主要集中于施肥后的1周。2010年整个稻季氨挥发净损失量为7.22-14.20 kg/hm2,占氮肥施用量的4.59%-6.64%,基肥期是主要的氨挥发时期,约占总氨挥发量的60%,穗肥期氨挥发总损失量最小。常规施肥处理氨挥发总损失量最大,与常规施肥相比,优化施肥、减量化施肥均能减少稻田土壤氨挥发损失1%-2%,氮磷肥减量同时秸秆还田处理氨挥发量最小,其总氨挥发量占常规处理的54%。施肥后的1-2d内田面水中的NH4+-N浓度达到最大值,且各施肥处理的氨挥发量与同期田面水中的NH4+-N浓度呈线性正相关。结合经济效益和环境效应分析发现,秸秆还田处理可减少氨挥发损失,同时获得较高的经济效益,适宜在巢湖流域水稻季推广。  相似文献   

3.
黄河上游灌区稻田N2O排放特征   总被引:4,自引:0,他引:4  
黄河上游灌区稻田高产区过量施肥现象十分突出,氮肥过量施用引起土壤氮素盈余,导致N2O排放量增大,由此引起的温室效应引起广泛关注。采用静态箱-气相色谱法研究黄河上游灌区稻田不同施肥处理下N2O排放特征。试验设置5个施肥处理,包括常规氮肥300 kg/hm2下单施尿素和有机肥配施2个处理,分别用N300和N300-OM代表;优化氮肥240 kg/hm2下单施尿素和有机肥配施2个处理,分别用N240和N240-OM代表;对照不施氮肥用N0代表。试验结果得出,灌区水稻生长季稻田土壤N2O排放主要集中在水稻分蘖前及水稻生长的中后期,稻田氮肥施用、灌水及土壤温度的变化对N2O排放通量影响较大,不同处理水稻各生育阶段N2O累积排放量与稻田土壤耕层NO-3-N含量动态变化显著相关。稻田N2O排放不是黄河上游灌区稻田氮素损失的主要途径,但灌区稻田N2O排放的增温潜势较大;稻田氮肥过量施用会显著增加N2O排放量,在相同氮素水平下,有机肥配施会显著增加稻田土壤N2O的排放量(P<0.01)。优化施氮能有效减少灌区稻田水稻生长季N2O排放量。稻田不同处理的水稻整个生长季土壤N2O排放总量为2.69-3.87 kg/hm2,肥料氮通过N2O排放损失的百分率仅为0.43%-0.64%。在灌区习惯灌水和高氮肥300 kg/hm2时,N300-OM处理的稻田N2O排放量达3.87 kg/hm2,在100 a时间尺度上的全球增温潜势(GWPs)为20.76×107 kg CO2/hm2;优化施氮240 kg/hm2水平下,N240和N240-OM处理的N2O累计排放量较N300-OM处理,分别降低了1.18 kg/hm2和0.57 kg/hm2,在100 a尺度上每年由稻田N2O排放引起的GWPs分别降低了6.33×107 kg CO2/hm2和3.06×107 kg CO2/hm2。  相似文献   

4.
双季稻田种植不同冬季作物对甲烷和氧化亚氮排放的影响   总被引:4,自引:0,他引:4  
研究双季稻收获后填闲种植不同冬季作物在其生长季节内CH4和N2O的排放特征,对合理利用冬闲稻田,发展冬季作物生产及合理评价不同种植模式具有重要意义。采用静态箱-气相色谱法对冬季免耕直播黑麦草、紫云英、油菜以及翻耕移栽油菜和冬闲的双季稻田中甲烷(CH4)和氧化亚氮(N2O)排放进行了分析。结果表明:在冬季作物生长期,CH4、N2O平均排放通量和总排放量均表现为翻耕移栽油菜>免耕直播黑麦草>免耕直播油菜>免耕直播紫云英>冬闲。不同冬季作物稻田CH4和N2O总排放量与对照(冬闲)的差异均达到极显著水平(P<0.01);翻耕移栽油菜的双季稻田中CH4和N2O排放量最高,分别达2.989 g/m2和0.719 g/m2。翻耕移栽油菜稻田的CH4和N2O温室效应总和也最大,为2893.92 kg CO2/hm2;免耕直播黑麦草和免耕直播油菜处理次之,而免耕直播紫云英处理最低。种植不同冬季作物促进了稻田生态系统CH4和N2O的排放。  相似文献   

5.
该实验以烟草悬浮细胞 BY 2 为材料,在烟草悬浮细胞中分别加入0.05、0.10、0.15、0.20 mmol·L-1AlCl3,以等体积去离子水处理的悬浮细胞液为对照,并依据前述实验结果选择0.15 mmol·L-1 AlCl3,分别添加5 mmol·L-1 DMTU(H2O2 抑制剂)、20 μmol·L-1CaCl2、15 μmol·L-1 LaCl3(Ca2+通道抑制剂)和50 μmol·L-1 ATP设计多项处理,分析胞外ATP(eATP)对铝离子(Al3+)胁迫引起的植物细胞死亡及其胞内H2O2、Ca2+的影响,以揭示Al3+胁迫下植物调节细胞死亡的可能机制,进一步扩展对eATP功能的认知。结果显示:(1)随着 AlCl3 胁迫浓度的提高,细胞死亡水平和胞内H2O2水平上升,而胞内Ca2+和eATP水平则逐渐降低。(2)外援施加H2O2抑制剂 DMTU(二甲基硫脲)和Ca2+能够有效缓解AlCl3诱导的细胞死亡水平的上升;而Ca2+通道抑制剂LaCl3(三氯化镧)则加剧了AlCl3胁迫下的细胞死亡。(3)在AlCl3胁迫下对细胞添加外源ATP,能够缓解AlCl3胁迫下胞内H2O2水平上升和Ca2+水平下降的同时,并显著降低AlCl3胁迫导致的细胞死亡。研究表明, Al3+以剂量依赖的模式提升细胞死亡和细胞内H2O2的水平并降低胞内Ca2+和eATP水平,AlCl3诱导的细胞死亡受到H2O2和Ca2+水平变化的调节,eATP可以通过调节H2O2与Ca2+水平缓解AlCl3诱导的细胞死亡。推测Al3+胁迫可能通过抑制钙离子通道而破坏了细胞内H2O2和Ca2+之间的协同关系,外源ATP对Al3+诱导H2O2上升的缓解作用可能是由于其提升了细胞的抗氧化能力。  相似文献   

6.
大肠杆菌tRNALeu的基因克隆、高效表达和纯化   总被引:2,自引:0,他引:2  
用化学法合成的tRNALeu 和tRNALeu 2的基因分别连接到 pTrc99B质粒载体上 ,转化到大肠杆菌MT10 2中 .DNA测序筛选得到与已知tRNALeu1 和tRNALeu2 的基因顺序完全相同的克隆 .对带有tRNALeu1 和tRNALeu2 基因的 2个转化子 (MT -Leu1和MT- Leu2 )表达条件进行了优化 ,MT- Leu1和MT- Leu2总tRNA中的亮氨酸接受活力分别达到 810 pmol/A2 6 0 和 5 60 pmol/A2 6 0 :tRNALeu1 占MT -Leu1总tRNA的5 0 % ;tRNALeu2 占MT- Leu2总tRNA的 3 0 % .经DEAE Sepharose、BD -纤维素层析柱 ,可分别将MT- Leu1和MT -Leu2的总tRNA纯化到 160 0pmol/A2 6 0 .首次准确地测得了 2种等受体tRNALeu的氨酰化反应动力学常数 .  相似文献   

7.
硝化抑制剂对蔬菜土硝化和反硝化细菌的影响   总被引:3,自引:0,他引:3  
土壤N素循环主要是微生物驱动的转化过程,然而对其的驱动与调控机理了解还很不够。选取长沙黄兴镇蔬菜基地两种蔬菜土研究硝化抑制剂(DCD)对N素转化过程及功能微生物的影响。试验通过室内土壤培养,处理为单施尿素(CK)和尿素与硝化抑制剂双氰胺配合施用(DCD),重复3次。在培养过程中系统监测了土壤中NH4+-N、NO3--N含量变化,同时采用荧光定量PCR(real-time PCR)方法研究硝化抑制剂对土壤中氮素转化功能基因丰度的影响。结果表明:在培养过程中DCD处理使两个供试土壤的NH4+浓度稳定在较高水平,而NO3-浓度则明显低于对照;施用DCD导致土壤中硝化基因amoA丰度显著减少,而对16S rRNA和反硝化基因nirK丰度没有产生明显影响。因此,DCD在菜地土壤中主要通过抑制氨氧化细菌的繁衍来抑制硝化作用。  相似文献   

8.
以3月龄的杉木实生苗为试验材料,分析了不同氮素形态——硝态氮(NO3- N)、铵态氮(NH4+ N)和硝酸铵(NH4NO3)(氮素浓度均为3 mmol·L-1)对杉木幼苗侧根生长、叶片光合气体交换参数和叶绿素荧光参数的影响,以揭示杉木幼苗对不同形态氮的偏好性,以及不同形态氮肥下杉木幼苗侧根生长和光合生理的响应特征,为杉木苗期氮肥管理提供理论依据。结果显示:(1)不同氮素形态对杉木幼苗地上部和侧根生物量具有显著影响,其中NH4+ N处理下幼苗地上部和侧根生物量最大,NO3- N处理次之,而NH4NO3处理最小。(2)NH4+ N和NO3- N处理下杉木幼苗总根长、根系总表面积和根系总体积均显著高于NH4NO3处理(P<0.05),且NH4+ N处理又显著高于NO3- N处理,但不同氮形态处理间侧根数量差异不显著。(3)NH4+ N处理下杉木幼苗叶片净光合速率、气孔导度和蒸腾速率明显高于NO3- N和NH4NO3处理,但NO3- N和NH4NO3处理之间无明显差异。(4)NH4+ N处理下杉木叶片初始荧光强度低于NO3- N处理,而最大荧光强度、可变荧光强度和PSⅡ潜在活性却高于全硝氮和硝铵氮处理。上述结果表明,NH4+ N处理不仅有利于杉木幼苗侧根生长发育,且其叶片具有较强的光合能力,较高的PSⅡ中心稳定性、光化学活性以及电子传递效率,从而更有利于植株生长。因此,从根系生长和光合特性来看,杉木幼苗对铵态氮具有偏好性。  相似文献   

9.
研究了渗透和盐胁迫处理对转Bt基因抗虫棉(Gossypium hirsutum) 99B种子的萌发和幼苗生长的影响,以及幼苗不同器官离子吸收和分配的差异。结果表明:渗透和盐胁迫均对转Bt基因抗虫棉幼苗的生长有抑制作用,其中PEG的抑制作用最强,而3种盐的抑制程度以CaCl2>NaCl>Na2SO4,且在Na+含量相同时,Cl-的毒害大于SO42-。渗透胁迫下使根、茎和叶中的Na+和Cl-含量提高,K+、Ca2+、SO42-含量和K+/Na+、Ca2+/Na+和SO42-/Cl-比值降低,且地上部的变化幅度大于地下部的,其中以PEG的影响最为显著,其次是CaCl2,Na2SO4处理最弱。这些说明,转Bt基因抗虫棉99B的耐盐性较弱。  相似文献   

10.
为研究不同CO2浓度升高和氮肥水平对水稻叶绿素荧光特性的影响,利用由开顶式气室(OTC)组成的CO2浓度自动调控平台开展田间试验。以粳稻9108为试验材料,CO2浓度设置CK(对照,环境大气CO2浓度)、C1(CO2浓度比CK增加160 μmol/mol)和C2(CO2浓度比CK增加200 μmol/mol)3个水平;氮肥设置低氮(N1:10 g/m2)、中氮(N2:20 g/m2)和高氮(N3:30 g/m2)3个水平。结果表明,在低氮条件下,与CK相比,C1处理使拔节期的Fo上升4.8%(P=0.031);C2处理使拔节期的Fo上升6.3%(P=0.015),Fv/Fm下降4.8%(P=0.003),使孕穗期的Fo上升12.7%(P=0.039),Fv/Fo下降18.2%(P=0.039)。在高氮条件下,与CK相比,C2处理使灌浆期的FmFvFv/Fm分别下降3.6%(P=0.039)、4.9%(P=0.013)和1.3%(P=0.039)。在中氮条件下,与CK相比,C1和C2处理的影响不明显。在整个生育期内,CO2浓度升高与施氮处理交互作用对水稻叶绿素荧光特性的影响未到达显著水平。研究表明,大气CO2浓度升高使水稻叶片光系统Ⅱ受损,抑制其电子传递能力、电子受体QA氧化还原情况、最大光化学效率和潜在活性,通过适量施氮可以有效地缓解其负面效应。  相似文献   

11.
长期施肥对双季稻田甲烷排放和关键功能微生物的影响   总被引:3,自引:0,他引:3  
研究不同施肥措施对双季稻田甲烷(CH_4)排放特征的影响及其微生物学机理,对合理利用及评价不同施肥模式对水稻生长的影响具有重要意义。以长期施肥定位试验田为平台,采用静态箱-气相色谱法对施用化肥(MF:mineral fertilizer alone)、秸秆还田配施化肥(RF:rice residues plus mineral fertilizer)、30%有机肥配施70%化肥(LOM:30%organic matter plus 70%mineral fertilizer)、60%有机肥配施40%化肥(HOM:60%organic matter plus 40%mineral fertilizer)和无肥(CK:without fertilizer)条件下双季稻田CH_4排放及其微生物学机理进行了分析。结果表明,早稻和晚稻生长期,不同施肥处理稻田CH_4排放通量均显著高于CK,表现为HOMLOMRFMFCK。各处理间CH_4总排放量差异达显著水平,其大小顺序与排放通量趋势一致,以HOM处理为最高,比CK处理增加105.56%,其次是LOM和RF处理,分别比CK处理增加72.97%和54.17%。关键功能土壤微生物测定结果表明,早稻和晚稻各个主要生育时期,各处理稻田土壤产甲烷古菌的数量变化范围为(3.18—81.07)×10~3cfu/g,土壤甲烷氧化细菌的数量变化范围为(24.82—379.72)×10~3cfu/g。稻田土壤产甲烷古菌和甲烷氧化细菌数量大小顺序为HOMLOMRFMFCK,各施肥处理均显著高于CK;HOM、LOM、RF处理显著高于MF、CK处理。双季稻田CH_4排放与稻田土壤产甲烷古菌、甲烷氧化细菌数量变化关系密切。采用有机无机肥配施促进了双季稻田生态系统CH_4的排放和关键功能微生物的数量。  相似文献   

12.
Labelled fertilizer N applied to winter wheat as Na15NO3 and (15NH4)2SO4 at a total N dressing of 100kg ha−1 was used in a microplot balance study to investigate the fate of each split fraction at three growth stages: end of tillering, heading and beginning of flowering. Results indicated that while the percentage utilization of the applied N by the grain and total crop increased considerably from the first to the third split application, these values diminished steadily in the straw. Grain recovery values for the first, second and third split applications were 34.2%, 51.5% and 55.7% for the NO3 and 32.3%, 48.4% and 52.5% for the NH4 carrier, respectively. The corresponding recovery values for the whole plant were 54.6%, 67.8% and 69.9% for the NO3 and 51.7%, 63.5% and 66.1% for the NH4 carrier. A greater proportion of the fertilizer N applied at the end of tillering stage was found in the vegetative plant components as compared with the grain. The reverse occurred for the N applied at the heading and at the beginning of the flowering stages. The residual fertilizer N found in the soil amounted to 18.0%, 10.4% and 11.6% of the applied NO3−N and to 22.5%, 12.7% and 15.2% of the applied NH4−N for the respective split applications. No differences were found for each split application between the two carriers as far as the unaccounted fertilizer N was concerned. The losses were 26.6%, 22.3% and 18.6% of the applied N for the three split applications, respectively. The application of fertilizer N did not lead to any increase in soil N uptake by the crop.  相似文献   

13.
Although agricultural systems in tropical monsoon Asia play a central role in the global nitrogen (N) cycle, details of the N cycle in this region on a watershed scale remain unclear. This study quantified the N budget in a tropical watershed of 221 km2 on Java Island, where paddy fields cover 28% of the land, by conducting field surveys. The amount of net biochemical gaseous N loss to the atmosphere (X GB ), which is generally difficult to determine, was calculated as the residual of the N balance. Assuming that NH3 volatilization balances deposition, and hence subtracting NH4–N from the N import with atmospheric deposition, the average total import and export of N per year was found to be 46.5 kg ha−1 year−1 over the watershed. Of this, 71% was imported as fertilizer (M F ) and 29% with atmospheric deposition (M AD ). On the export side, 42% was lost as X GB , 37% with incineration of rice residues and wood fuel (X GI ), 13% with river discharge (X D ) and 9% with rice surplus export (X R ). A large portion of X GB , and consequently, a small portion of X D could be explained by the high rate of denitrification resulting from the high temperature and humid climate, and are thought to be common features of tropical watersheds where paddy fields are found.  相似文献   

14.
Fernández Valiente  E.  Ucha  A.  Quesada  A.  Leganés  F.  Carreres  R. 《Plant and Soil》2000,221(1):107-112
This study investigate the potential contribution of nitrogen fixation by indigenous cyanobacteria to rice production in the rice fields of Valencia (Spain). N2-fixing cyanobacteria abundance and N2 fixation decreased with increasing amounts of fertilizers. Grain yield increased with increasing amounts of fertilizers up to 70 kg N ha-1. No further increase was observed with 140 kg N ha-1. Soil N was the main source of N for rice, only 8–14% of the total N incorporated by plants derived from 15N fertilizer. Recovery of applied 15N-ammonium sulphate by the soil–plant system was lower than 50%. Losses were attributed to ammonia volatilization, since only 0.3–1% of applied N was lost by denitrification. Recovery of 15N from labeled cyanobacteria by the soil–plant system was higher than that from chemical fertilizers. Cyanobacterial N was available to rice plant even at the tillering stage, 20 days after N application. This revised version was published online in June 2006 with corrections to the Cover Date.  相似文献   

15.
A sterile hydroponic culture system suitable for studying nitrogen (N) uptake ofLagerstroemia indica L.in vitro was developed. Four different treatments were assayed: with and without activated charcoal (AC and NAC, respectively), with and without 50 μM of 6-benzyladenine (+BA and −BA, respectively). Medium pH, electrical conductivity (EC), NO3 and NH4 + concentrations were measured weekly. At the end of the culture, propagules were sampled and SPAD indices, and shoot and root fresh weights were determined. Explants grown in media with activated charcoal were able to take up both NO3 and NH4 +, although NH4 + uptake was lower. Subsequently the pH of the media was maintained between 5.5–6.0. In treatments with no addition of activated charcoal, NH4 + uptake was preferential and the pH dropped to 3.1. Explants in these conditions were unable to raise the pH by taking up NO3 , especially when root morphogenesis was inhibited by addition of BA. Supply of this PGR produced root growth inhibition, which was almost complete in the treatment without activated charcoal. This component significantly reduced the inhibitory effect of 50 μM BA on root growth. This revised version was published online in June 2006 with corrections to the Cover Date.  相似文献   

16.
Summary Plants from agricultural and natural upland ecosystem were investigated for15N content to evaluate the role of symbiotic N2-fixation in the nitrogen nutrition of soybean. Increased yields and lower δ15N values of nodulating soybeansvs, non-nodulating isolines gave semi-quantitative estimates of N2 fixation. A fairly large discrepancy was found between estimations by δ15N and by N yield at 0 kg N/ha of fertilizer. More precise estimates were made by following changes in plant δ15N when fertilizer δ15N was varied near15N natural abundance level. Clearcut linear relationships between δ15N values of whole plants and of fertilizer were obtained at 30 kg N/ha of fertilizer for three kinds of soils. In experimental field plots, nodulating soybeans obtained 13±1% of their nitrogen from fertilizer, 66±8% from N2 fixation and 21±10% from soil nitrogen in Andosol brown soil; 30%, 16% and 54% in Andosol black soil; 7%, 77% and 16% in Alluvial soil, respectively. These values for N2 fixation coincided with each corresponding estimation by N yield method. Other results include: 1)15N content in upland soils and plants was variable, and may reflect differences in the mode of mineralization of soil organics, and 2) nitrogen isotopic discrimination during fertilizer uptake (δ15N of plant minus fertilizer) ranged from −2.2 to +4.9‰ at 0–30 kg N/ha of fertilizer, depending on soil type and plant species. The proposed method can accurately and relatively simply establish the importance of symbiotic nitrogen fixation for soybeans growing in agricultural settings.  相似文献   

17.
In short-term water culture experiments with different 15N labeled ammonium or nitrate concentrations, citrus seedlings absorbed NH4 + at a higher rate than NO3 . Maximum NO3 uptake by the whole plant occurred at 120 mg L–1 NO3 -N, whereas NH4 + absorption was saturated at 240 mg L–1 NH4 +-N. 15NH4 + accumulated in roots and to a lesser degree in both leaves and stems. However, 15NO3 was mostly partitioned between leaves and roots.Adding increasing amounts of unlabeled NH4 + (15–60 mg L–1 N) to nutrient solutions containing 120 mg L–1 N as 15N labeled nitrate reduced 15NO3 uptake. Maximum inhibition of 15NO3 uptake was about 55% at 2.14 mM NH4 + (30 mg L–1 NH4 +-N) and it did not increase any further at higher NH4 + proportions.In a long-term experiment, the effects of concentration and source of added N (NO3 or NH4 +) on nutrient concentrations in leaves from plants grown in sand were evaluated. Leaf concentration of N, P, Mg, Fe and Cu were increased by NH4 + versus NO3 nutrition, whereas the reverse was true for Ca, K, Zn and Mn.The effects of different NO3 -N:NH4 +-N ratios (100:0, 75:25, 50:50, 25:75 and 0:100) at 120 mg L–1 total N on leaf nutrient concentrations, fruit yield and fruit characteristics were investigated in another long-term experiment with plants grown in sand cultures. Nitrogen concentrations in leaves were highest when plants were provided with either NO3 or NH4 + as a sole source of N. Lowest N concentration in leaves was found with a 75:25 NO3 -N/NH4 +-N ratio. With increasing proportions of NH4 + in the N supply, leaf nutrients such as P, Mg, Fe and Cu increased, whereas Ca, K, Mn and Zn decreased. Yield in number of fruits per tree was increased significantly by supplying all N as NH4 +, although fruit weight was reduced. The number of fruits per tree was lowest with the 75:25 NO3 -N:NH4 +-N ratio, but in this treatment fruits reached their highest weight. Rind thickness, juice acidity, and colour index of fruits decreased with increasing NH4 + in the N supply, whereas the % pulp and maturity index increased. Percent of juice in fruits and total soluble solids were only slightly affected by NO3 :NH4 + ratio.  相似文献   

18.
氮沉降对温带森林土壤甲烷氧化菌的影响   总被引:1,自引:0,他引:1  
张丹丹  莫柳莹  陈新  张丽梅  徐星凯 《生态学报》2017,37(24):8254-8263
大量研究显示氮沉降影响森林甲烷吸收量,但其中的微生物驱动机制仍缺乏研究。基于长白山典型温带森林长期氮沉降模拟实验平台样地,采用定量PCR和克隆测序技术,研究了长期施加不同形态氮((NH_4)_2SO_4、NH_4Cl和KNO_3)处理下森林土壤甲烷氧化菌的数量和群落组成随季节变化的特征。结果表明,夏季,森林土壤甲烷氧化菌pmo A基因丰度在不同施氮处理之间无显著性差异(每克干土1.54×10~6-3.20×10~6拷贝数);秋季,pmo A基因丰度在施加NH_4Cl和(NH_4)_2SO_4处理小区(每克干土1.93×10~5-7.6×10~5拷贝数)与对照(每克干土(4.03×10~6±1.2×10~6)拷贝数)相比有所降低,尤其在(NH_4)_2SO_4处理小区(每克干土(4.61×10~5±2.61×10~5)拷贝数)显著降低;无论夏季还是秋季,施加不同形态氮处理土壤甲烷氧化菌均以Type I型为主(相对丰度在70.6%-85.4%之间),并以Methylobacter-group(Type I)为优势类群,占Type I型的55.1%-91.7%;Methylobacter-group(Type I)的相对丰度在夏季不同形态氮处理土壤样品中无显著差异,但秋季样品中在施加(NH_4)_2SO_4(52.7%±6.5%)和NH_4Cl(56.1%±8.9%)的处理显著低于对照土壤(77.0%±2.9%),Methylococcus-group(Type I)的相对丰度则在(NH_4)_2SO_4和NH_4Cl处理土壤呈增加的趋势。这些结果表明铵态氮肥添加对温带森林土壤甲烷氧化菌的生长具有抑制作用并导致其群落结构发生改变,受夏季温度和水分的影响,这种抑制作用在秋季表现更明显,而NO_3~--N添加对土壤甲烷氧化菌的群落组成和丰度无显著影响。这些结果解释了以往观测到的施铵态氮肥显著降低秋季温带林地土壤甲烷净吸收量,而在夏季无显著影响的观测结果,解释了长期氮沉降影响森林土壤甲烷吸收的微生物机制。  相似文献   

19.
Di  H.J.  Cameron  K.C.  Moore  S.  Smith  N.P. 《Plant and Soil》1999,210(2):189-198
The objective of this study was to compare the N leaching loss and pasture N uptake from autumn-applied dairy shed effluent and ammonium fertilizer (NH4Cl) labeled with 15N, using intact soil lysimeters (80 cm diameter, 120 cm depth). The soil used was a sandy loam, and the pasture was a mixture of perennial ryegrass (Lolium perenne) and white clover (Trifolium repens). The DSE and NH4Cl were applied twice annually in autumn (May) and late spring (November), each at 200 kg N ha-1. The N applied in May 1996 was labeled with 15N. The lysimeters were either spray or flood irrigated during the summer. The autumn-applied DSE resulted in lower N leaching losses compared with NH4Cl. However, the N applied in the autumn had a higher potential for leaching than N applied in late spring. Between 4.5–8.1% of the 15N-labeled mineral N in the DSE and 15.1–18.8% of the 15N-labeled NH4Cl applied in the autumn were leached within a year of application. Of the annual N leaching losses in the DSE treatments (16.0–26.9 kg N ha-1), a fifth (20.3–22.9%) was from the mineral N fraction of the DSE applied in the autumn, with the remaining larger proportion from the organic fraction of the DSE, soil N and N applied in spring. In the NH4Cl treatments, more than half (53.8–64.8%) of the annual N leaching loss (55.9–57.6 kg N ha-1) was derived from the autumn-applied NH4Cl. DSE was as effective as NH4Cl in stimulating pasture production. Since only 4.4–4.5% of the annual herbage N uptake in the DSE treatment and 12.3–13.3% in the NH4Cl treatment were derived from the autumn-applied mineral N, large proportions of the annual herbage N uptake must have been derived from the N applied in spring, the organic N fraction in the DSE, soil N and N fixed by clover. The recoveries of 15N in the herbage were similar between the DSE and the NH4Cl treatments, but those in the leachate were over 50% less from the DSE than from the NH4Cl treatment. The lower leaching loss of 15N in the DSE treatment was attributed to the stimulated microbial activities and increased immobilization following the application of DSE. This revised version was published online in June 2006 with corrections to the Cover Date.  相似文献   

20.
Summary The fate of 100 kg N ha–1 applied as15N-urea and its modified forms was followed in 4 successive field-grown wetland rice crops in a vertisol. The first wet season crop recovered about 27 to 36.6% of the applied N depending upon the N source. In subsequent seasons the average uptake was very small and it gradually decreased from 1.4 to 0.5 kg N ha–1 although about 18 to 20, 12 to 17 and 14 to 18 kg ha–1 residual fertilizer N was available in the root zone after harvest of first, second and third crops, respectively. The average uptake of the residual fertilizer N was only 7.6% in the second crop and it decreased to 4.5% in the third and to 3.2% in the fourth crop although all these crops were adequately fertilized with unlabelled urea. The basal application of neem coated urea was more effective in controlling the leaching loss of labelled NH4+NO3–N than split application of uncoated urea. In the first 3 seasons in which15N was detectable, the loss of fertilizer N through leaching as NH4+NO3–N amounted to 0.5 kg ha–1 from neem-coated urea, 1.5 kg from split urea and 4.1 kg from coal tar-coated urea. At the end of 4 crops, most of the labelled fertilizer N (about 69% on average) was located in the upper 0–20 cm soil layer showing very little movement beyond this depth. In the profile sampled upto 60 cm depth, totally about 13.8 kg labelled fertilizer N ha–1 from neem-coated urea, 12.7 kg from coal-tar coated urea, and 11.8 kg from split urea were recovered. The average recovery of labelled urea-N in crops and soil during the entire experimental period ranged between 42 and 51%. After correcting for leaching losses, the remaining 47 to 56% appeared to have been lost through ammonia volatilization and denitrification.  相似文献   

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