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1.
大气CO2和O3浓度升高对银杏构件生长的影响   总被引:1,自引:0,他引:1  
采用开顶箱模拟试验,探讨了大气CO2和O3浓度升高对银杏构件生长的影响。结果表明:高浓度O3抑制银杏主枝和侧枝生长(P〈0.01);高浓度CO2对银杏粗生长影响不显著(P〉0.05),但在高浓度O3和CO2、O3复合气体条件,银杏粗生长受到严重抑制(P〈0.01);高浓度CO2可促进银杏叶片面积和干物质的增加,并能提高叶片含水量和抗干旱能力,但在高浓度CO2、O3复合气体条件下,叶片面积增加不显著(P〉0.05),而干物质增加极显著(P〈0.01);O3对银杏叶片构件生长有明显抑制作用,叶面积大小和干物质量明显低于对照株(P〈0.05)。  相似文献   

2.
郭嘉  户其亮  朱建国  张卫建 《生态学报》2009,29(3):1300-1308
稻田水体中细菌(尤其是其中的大肠菌群)数量的多少及活性深刻影响着水体质量和物质循环,然而大气CO2浓度升高对它们的影响至今鲜有报道.为此,借助国际上唯一的稻麦复种FACE(free air CO2 enrichment)试验(位于江苏省江都市,始于2004年),于2006年对稻田水体中细菌数量、大肠菌群数量、总有机碳量和总氮量等进行了动态监测.结果表明,大气 CO2浓度升高显著提高了以上各指标在稻田水体中的含量(P <0.01),在整个水稻生育期,与对照相比,水体中的细菌数量、大肠菌群数量、总有机碳量和总氮量平均分别提高了45.9%、68.8%、31.2%和25.9%,不同生育期之间上述各指标存在显著差异(P<0.01).可见,大气CO2浓度升高不仅可通过改变稻田水体质量的方式来影响水稻的安全生产,而且还可能通过田间排水尤其是水稻生长前期的暴雨导致的洪涝来加重稻田生态系统向周边居民井水和其它水域的细菌和大肠菌群的输出量,从而可能影响周边水体质量及人体健康.  相似文献   

3.
大气CO2浓度升高对不同施氮土壤酶活性的影响   总被引:7,自引:3,他引:7  
利用中国唯一的无锡FACE(Free-air CO2 enrichment,开放式空气CO2浓度升高)平台,研究了大气CO2浓度升高对土壤β-葡糖苷酶、转化酶、脲酶、酸性磷酸酶、-氨基葡糖苷酶的影响。研究发现,不同氮肥处理下大气CO2浓度升高对某些土壤酶活性的影响不同。在低氮施肥处理中,大气CO2浓度升高显著降低-葡糖苷酶活性,但是在高氮施肥处理下,大气CO2浓度升高显著增加β-葡糖苷酶活性。在低氮和常氮施肥处理中大气CO2浓度升高显著增加了土壤脲酶活性,但在高氮水平下影响不显著。在低氮、常氮施肥处理中,大气CO2浓度升高对土壤酸性磷酸酶活性没有影响,而在高氮施肥处理中显著增强了土壤中磷酸酶活性。大气CO2浓度升高对土壤转化酶活性和-氨基葡糖苷酶的活性有增加趋势,但影响不显著。研究还发现,在不同的CO2浓度下,土壤酶活性对不同氮肥处理的响应也不同。在正常CO2浓度下,土壤中β-葡糖苷酶活性随着氮肥施用量的增加而降低,而在大气CO2浓度升高条件下,却随着氮肥施用量的增加而增加。在大气CO2浓度升高条件下,高氮施肥显著增加了转化酶和酸性磷酸酶活性,而在正常CO2浓度下,影响不显著。在大气CO2浓度升高条件下,氮肥处理对脲酶活性的影响不大,但在正常CO2浓度下,脲酶活性随着氮肥施用量的增加而增加。氮肥对β-氨基葡糖苷酶活性的影响不明显。  相似文献   

4.
范桂枝  蔡庆生 《植物学报》2005,22(4):486-493
光合作用对大气中CO2浓度升高适应的可能原因主要表现在以下几个方面: 由于CO2浓度升高,碳水化合物过量积累, 光合电子传递链中质体醌与过氧化氢(H2O2)的氧化还原信号对光合作用发生反馈抑制; 核酮糖1,5-二磷酸羧化/加氧酶(Rubisco)的含量及其活性下降; 气孔状态发生变化。此外, 植物体内C/N平衡、生长调节物质和己糖激酶对光合基因表达水平的调控等多个方面会对光合适应产生影响。  相似文献   

5.
 通过对不同土壤水分状况、不同CO2浓度条件下春小麦叶片气孔的观测结果表明:干旱和CO2浓度升高不仅影响叶片气孔密度,而且也影响其分布。随干旱程度的加剧,气孔密度有明显的上升趋势,气孔在叶片上的分布趋向均匀;随CO2浓度的升高,气孔密度有明显的下降趋势,其分布也趋向均匀。水分状况和CO2浓度相同时,气孔密度及分布受不同温度的影响。  相似文献   

6.
大气中不断升高的CO2浓度以及人类饮食的营养质量是目前我们面临的两个重大问题.目前,大气中CO2浓度已达到380 μmol·mo1-1,预测到2050年大气CO2浓度将达到550 μmol·mol-1.农产品的品质不仅取决于遗传基因,而且受生长环境条件的影响.大量研究表明,农作物的生长发育和产量形成都对CO2浓度升高做出了响应,而且这种变化对农产品的品质也产生了重要影响.本文对目前国内外模拟CO2浓度升高对农产品品质影响研究中采用的常见方法进行了比较,并综述了近年来在CO2浓度升高对水稻、小麦、大豆和其他一些蔬菜类农产品品质影响方面的研究进展.大量试验结果表明,CO2浓度升高条件下,大宗作物籽粒中蛋白质含量下降,微量元素总体上有下降趋势,而蔬菜类农产品的品质有一定程度改善.最后,本文根据目前研究现状对一些问题进行了讨论并提出了今后的研究方向.  相似文献   

7.
大气CO2浓度升高对植物根系的影响   总被引:3,自引:0,他引:3  
植物长期生长在CO2浓度不断升高的环境中,其结构和功能都将受到影响,这种影响不仅表现在植物的地上部分,同时也表现在植物的地下部分(根系),尤其是细根的长度、直径、产量、周转以及根与枝的分配模式等方面。植物根系结构和功能的改变影响植物地上部分和生态系统物质循环中的碳动态及土壤中碳库的变化。目前有关大气CO2浓度升高对根系动态影响的研究报道主要包括大气CO2浓度升高对根系结构(直径、分枝、长度、数量等)和根系生理(周转率、产量、碳分配模式等)的影响2个方面。目前,该领域研究还存在一些不足,例如在CO2浓度升高条件下,对植物根系内部的调控机制,以及由其引起的物质循环和能量流动的动态变化的了解较少;至今没有令人信服的证据说明大气CO2浓度升高使根系周转升高还是降低。今后应加强研究在CO2浓度升高条件下根系的周转变化和光合产物分配模式变化,CO2浓度升高和外界环境因素的共同作用对根系的影响,以及采用不同研究方法和研究对象在不同立地条件下开展升高CO2浓度对根系影响的对比研究等。  相似文献   

8.
植物对大气CO2浓度升高的光合适应机理   总被引:9,自引:2,他引:9  
光合作用对大气中CO2浓度升高适应的可能原因主要表现在以下几个方面:由于CO2浓度升高,碳水化合物过量积累,光合电子传递链中质体醌与过氧化氢(H2O2)的氧化还原信号对光合作用发生反馈抑制;核酮糖1,5-二磷酸羧化/加氧酶(Rubisco)的含量及其活性下降;气孔状态发生变化.此外,植物体内C/N平衡、生长调节物质和己糖激酶对光合基因表达水平的调控等多个方面会对光合适应产生影响.  相似文献   

9.
利用开顶箱模拟大气O3与CO2浓度升高,对油松进行了连续4个月的熏蒸实验,探讨了油松针叶抗氧化系统化系统的响应.结果表明:1)高浓度O3显著增加了油松针叶过氧化氢的积累,到处理后期过量的过氧化氢显著地抑制了抗氧化酶活性,如SOD和APX,并且抗坏血酸被耗竭,加剧了膜质过氧化,最终导致了严重氧化伤害;2)高浓度CO2处理中油松针叶抗氧化酶活性普遍低于对照,ASA含量显著高于对照,可能是高CO2浓度促进ASA合成,或者是ASA的消耗减少,到处理后期使H2O2含量比对照降低了15.5%,从而减轻了膜质过氧化产物丙二醛含量,减轻了氧化伤害;3)与O3单因素相比,在协同处理中油松针叶具有较高的抗氧化酶活性和ASA含量,说明高CO2浓度减轻了高O3对抗氧化酶活性的抑制作用,并且提高了针叶内ASA含量,增强了针叶的抗氧化能力,有效地控制了ROS的产生与清除平衡,缓解了高O3带来的氧化伤害.  相似文献   

10.
通过对不同土壤水分状况、不同 CO2 浓度条件下春小麦叶片气孔的观测结果表明 :干旱和 CO2 浓度升高不仅影响叶片气孔密度 ,而且也影响其分布。随干旱程度的加剧 ,气孔密度有明显的上升趋势 ,气孔在叶片上的分布趋向均匀 ;随 CO2 浓度的升高 ,气孔密度有明显的下降趋势 ,其分布也趋向均匀。水分状况和 CO2 浓度相同时 ,气孔密度及分布受不同温度的影响  相似文献   

11.
非点源污染物在沟渠湿地中的累积和植物吸收净化   总被引:21,自引:0,他引:21  
对有机质和总氮在沟渠湿地底泥中的垂直分布和水平分布的研究表明,40 cm以下深度的芦苇(Phragmites communis)和茭草(Zizania latifolia)湿地底泥对有机质和总氮有显著的持留和累积作用;但表层底泥中含量随季节变化大,最高与最低值相差近2倍以上.有机质和总氮之间有极显著的相关关系,在芦苇和茭草湿地底泥中的相关系数分别为0.9876和0.9335.水体中总氮与NH4+-N和NO3-N也显著相关,表明总氮的主要成分是有机氮,其矿化作用是无机氮的重要来源.每年秋季芦苇收割以后,可带走氮818 kg·hm-2和磷103.6 kg·hm-2,茭草可带走氮131 kg·hm-2和磷28.9 kg·hm-2.茭白对氮的吸收能力高,试验表明,利用茭白取代野生植物,既能取得很好的净化效果,又可被农民主动回收,解决植物的二次污染问题.  相似文献   

12.
13.
北半球近地大气O3浓度在最近几十年里持续升高,对陆地生态系统产生深远的影响。本文选取5年生银杏(Ginkgo biloba)为研究对象,利用开顶式气室(OTCs)开展了3个不同浓度的O3(自然对照浓度约40 nmol·mol-1、处理浓度80和120 nmol·mol-1)熏蒸试验,持续熏蒸2个生长季(2012—2013年)后,于2013年11年月初收集其凋落叶,测定并分析不同处理下银杏凋落叶化学成分的变化。结果表明:与对照相比,高浓度O3处理组银杏凋落叶的N、K含量均显著升高,总酚含量以及C/N、木质素/N降低;而C、P、木质素含量以及C/P并未呈现出显著差异。可溶性糖、缩合单宁含量在两高浓度O3处理下变化趋势并不一致:与对照相比,可溶性糖含量仅在120 nmol·mol-1处理下表现出显著差异,降低38%;缩合单宁含量在80 nmol·mol-1处理下显著升高(343%),而在120 nmol·mol-1处理下无显著变化。木本植物凋落物的化学组成在O3熏蒸下会发生一定变化,这种变化可能会对树木凋落物在O3污染地区的分解及区域气候变化下森林生态系统的物质循环,特别是碳循环产生重要影响。  相似文献   

14.
阮亚男  何兴元  陈玮  徐胜  徐文铎 《生态学报》2007,27(3):1106-1112
以生长在沈阳市区内的银杏为试材,使用开顶箱模拟法对倍增CO2浓度(700μmolmol-1)和正常空气CO2浓度(≈350μmolmol-1)条件下银杏生长参数,超氧阴离子自由基(O2^-.)产生速率,丙二醛(MDA)含量,抗坏血酸(ASA)含量,超氧化物歧化酶(SOD)、抗坏血酸过氧化物酶(APX)及谷胱甘肽还原酶(GR)活性动态变化进行分析,探讨高浓度CO2对银杏膜脂过氧化与抗氧化酶活性的影响。结果表明,在短期(60d)内CO2浓度倍增使银杏细胞内O2^-.产生速率与H2O2含量减少,而ASA含量与SOD、APX、GR活性升高。与对照相比,大多数测定显示出显著差别。但较长期(70d以上)CO2浓度倍增处理则使试验结果发生逆转,活性氧O2-.产生速率略有升高,SOD、APX、GR活性略有下降,ASA含量仍略高于对照(但与对照相比差异并不显著),长期CO2浓度倍增处理可能使试验结果发生逆转。  相似文献   

15.
By altering myriad aspects of leaf chemistry, increasing concentrations of CO2 and O3 in the atmosphere derived from human activities may fundamentally alter the relationships between insect herbivores and plants. Because exposure to elevated CO2 can alter the nutritional value of leaves, some herbivores may increase consumption rates to compensate. The effects of O3 on leaf nutritional quality are less clear; however, increased senescence may also reduce leaf quality for insect herbivores. Additionally, changes in secondary chemistry and the microclimate of leaves may render plants more susceptible to herbivory in elevated CO2 and O3. Damage to soybean (Glycine max L.) leaves and the size and composition of the insect community in the plant canopy were examined in large intact plots exposed to elevated CO2 (~550 μmol mol−1) and elevated O3 (1.2*ambient) in a fully factorial design with a Soybean Free Air Concentration Enrichment system (SoyFACE). Leaf area removed by folivorous insects was estimated by digital photography and insect surveys were conducted during two consecutive growing seasons, 2003 and 2004. Elevated CO2 alone and in combination with O3 increased the number of insects and the amount of leaf area removed by insect herbivores across feeding guilds. Exposure to elevated CO2 significantly increased the number of western corn rootworm (Diabrotica virgifera) adults (foliage chewer) and soybean aphids (Aphis glycines; phloem feeder). No consistent effect of elevated O3 on herbivory or insect population size was detected. Increased loss of leaf area to herbivores was associated with increased carbon-to-nitrogen ratio and leaf surface temperature. Soybean aphids are invasive pests in North America and new to this ecosystem. Higher concentrations of CO2 in the atmosphere may increase herbivory in the soybean agroecosystem, particularly by recently introduced insect herbivores. Handling editor: Gary Felton.  相似文献   

16.
Rising atmospheric CO2 concentrations is expected to stimulate photosynthesis and carbohydrate production, while inhibiting photorespiration. By contrast, nitrogen (N) concentrations in leaves generally tend to decline under elevated CO2 (eCO2), which may reduce the magnitude of photosynthetic enhancement. We tested two hypotheses as to why leaf N is reduced under eCO2: (a) A “dilution effect” caused by increased concentration of leaf carbohydrates; and (b) inhibited nitrate assimilation caused by reduced supply of reductant from photorespiration under eCO2. This second hypothesis is fully tested in the field for the first time here, using tall trees of a mature Eucalyptus forest exposed to Free‐Air CO2 Enrichment (EucFACE) for five years. Fully expanded young and mature leaves were both measured for net photosynthesis, photorespiration, total leaf N, nitrate () concentrations, carbohydrates and reductase activity to test these hypotheses. Foliar N concentrations declined by 8% under eCO2 in new leaves, while the fraction and total carbohydrate concentrations remained unchanged by CO2 treatment for either new or mature leaves. Photorespiration decreased 31% under eCO2 supplying less reductant, and in situ reductase activity was concurrently reduced (?34%) in eCO2, especially in new leaves during summer periods. Hence, assimilation was inhibited in leaves of E. tereticornis and the evidence did not support a significant dilution effect as a contributor to the observed reductions in leaf N concentration. This finding suggests that the reduction of reductase activity due to lower photorespiration in eCO2 can contribute to understanding how eCO2‐induced photosynthetic enhancement may be lower than previously expected. We suggest that large‐scale vegetation models simulating effects of eCO2 on N biogeochemistry include both mechanisms, especially where is major N source to the dominant vegetation and where leaf flushing and emergence occur in temperatures that promote high photorespiration rates.  相似文献   

17.
  • 1 Trembling aspen Populus tremuloides Michaux is an important forest species in the Great Lakes region and displays tremendous genetic variation in foliar chemistry. Elevated carbon dioxide (CO2) and ozone (O3) may also influence phytochemistry and thereby alter the performance of insect herbivores such as the aspen leaf beetle Chrysomela crotchi Brown.
  • 2 The present study aimed to relate genetic‐ and atmospheric‐based variation in aspen phytochemistry to C. crotchi performance (larval development time, adult mass, survivorship). The experiment was conducted at the Aspen Free‐Air CO2 Enrichment (FACE) site in northern Wisconsin. Beetles were reared on three aspen genotypes under elevated CO2 and/or O3. Leaves were collected to determine chemical characteristics.
  • 3 The foliage exhibited significant variation in nitrogen, condensed tannins and phenolic glycosides among genotypes. CO2 and O3, however, had little effect on phytochemistry. Nonetheless, elevated CO2 decreased beetle performance on one aspen genotype and had inconsistent effects on beetles reared on two other genotypes. Elevated O3 decreased beetle performance, especially for beetles reared on an O3‐sensitive genotype. Regression analyses indicated that phenolic glycosides and nitrogen explain a substantial amount (27–45%) of the variation in herbivore performance.
  • 4 By contrast to the negative effects that are typically observed with generalist herbivores, aspen leaf beetles appear to benefit from phenolic glycosides, chemical components that are largely genetically‐determined in aspen. The results obtained in the present study indicate that host genetic variation and atmospheric concentrations of greenhouse gases will be important factors in the performance of specialist herbivores, such as C. crotchi, in future climates.
  相似文献   

18.
In midday ginkgo ( Ginkgo biloba L. ) leaves have to bear photon flux density over 1 400 μmol·m-2·s-l in combination with high temperatures around 35℃ at natural habitat. They show typical midday depression of stomatal conductance and of CO2 assimilation rate. The zeaxanthin changes with light intensity during the day. The influence of the combination of strong light and temperature on photoinhibition was also examined in the laboratory. A low CO2 internal conductance (31 mmol· m- 2·s- 1 ) was found in ginkgo leaves, which had been exposed to excessive light at temperature between 15 ℃ and 35 ℃ with reduced CO2 (80 μL·L-l) or oxygen (2%) for 2 h, causing a low CO2 concentration at the carboxylation site and a high proportion of photorespimtion. The ratio of electron transport to CO2 fixation was rather high in ginkgo ( 16 e- /CO2 at 25 ℃ ) as compared with other plants. It increased with temperature also in 2% 02 which could not be explained solely as due to change of photorespimtion. The reduction of oxygen in 340 or 80 μL·L- 1 CO2 had no effect on the extent of photoinhibition at all temperatures, which indicated that eleetron flow caused by photorespiration in excess light was negligible in protective effect in ginkgo leaves. However, a decreased CO2 coneentration increased photoinhibition, especially at high temperature. It is concluded that the dissipation of excessive excitation energy in the PS II antennae through the xanthophyll cycle may be the major protective mechanism to preventing from the deteriorated effects of strong light in ginkgo leaves.  相似文献   

19.
Two field-growing silver birch (Betula pendula Roth) clones (clone 4 and 80) were exposed to elevated CO2 and O3 for three growing seasons (1999–2001). The phenolic compounds of naturally abscised leaf litter were analyzed in order to determine the possible CO2- and O3-induced changes in the litter quality. The potential litter-mediated CO2 and O3 effects on litter-feeding soil macrofauna (detritivore) performance were assessed in microcosm experiments, i.e., the relative growth rates (RGR) of Lumbricus terrestris and Porcellio scaber, the relative consumption rates (RCR) of P. scaber, and mortality of the test animals were measured. The leaf litter grown under elevated CO2 had increased concentrations (weight per mass unit) and contents (weight per leaf) of phenolic acids, flavonol glycosides, condensed tannins and total measured phenolics. Elevated O3 increased the concentrations of 3,4’-dihydroxypropiophenone 3-β-d-glucoside (DHPPG) and flavonoid aglycones but only under ambient CO2. However, elevated O3 effects on the content of some low-molecular-weight phenolic (LMWP) compounds (i.e. phenolic acids, DHPPG, flavonoid aglycones) and total LMWP changed over time emphasizing the importance of conducting long-term (>3 years) exposure studies. In general, RGR of young L. terrestris was affected by the litter quality changes induced by elevated CO2 and O3, as the animal growth rates were reduced when they were fed with CO2- and O3-exposed leaf litter of clone 80 in Experiment 1. P. scaber RCR or RGR responses to CO2- and O3-induced changes in litter quality were more variable and inconsistent, and neither were there any litter-mediated CO2 and O3 effects on animal mortality in these microcosm experiments. In conclusion, elevated CO2 has the potential to alter silver birch leaf litter quality, but the possible O3 effects on phenolic compounds and litter-mediated CO2 and O3 effects on detritivores are more difficult to validate.  相似文献   

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