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1.
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·mol-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   

2.
采用13C-CO2进行连续标记,研究水稻分蘖期和孕穗期光合碳在植株-土壤系统中的分配及其对大气CO2浓度升高(800 μL·L-1)和施氮(100 mg·kg-1)的响应.结果表明: CO2浓度升高显著提高分蘖期根系生物量和孕穗期地上部生物量,并使生物量根冠比在分蘖期增加,而在孕穗期减小.CO2浓度升高条件下,施氮使水稻地上部分生物量增加,却显著降低了孕穗期水稻根系生物量.CO2浓度升高使光合13C在孕穗期向土壤的输入显著增加,然而施肥并没有促进由CO2浓度升高驱动的光合13C在土壤中的积累,而且还降低了土壤中的光合13C的分配比例.综上,CO2浓度升高显著提高了稻田土壤光合碳输入,促进稻田有机碳周转;施氮促进了水稻地上部的生长,却降低了光合碳向地下的分配比例.  相似文献   

3.
大气CO2浓度升高对土壤氮素转化过程产生重要影响,研究其变化有助于更好地预测陆地生态系统的固碳潜力.氮同位素自然丰度作为生态系统氮素循环过程的综合指标能够有效地指示CO2浓度升高对土壤氮素转化过程的影响.本研究采用开顶箱CO2 熏蒸法研究连续10年的大气CO2 浓度升高对我国东北地区蒙古栎及其土壤和微生物生物量碳、氮同位素自然丰度的影响.结果表明: 大气CO2浓度升高改变了土壤氮循环过程,增加了土壤微生物和植物叶片δ15N;促进了富13C土壤有机碳分解,中和了贫13C植物光合碳输入的效果,导致土壤可溶性有机碳和微生物碳δ13C在CO2升高条件下没有发生显著变化.这些结果表明,CO2浓度升高很可能促进了土壤有机质矿化过程,并加剧了系统氮限制的状态.  相似文献   

4.
大气CO2浓度升高对稻田根际土壤甲烷氧化细菌丰度的影响   总被引:1,自引:0,他引:1  
甲烷氧化细菌是目前已知的稻田甲烷氧化唯一生物,在减少稻田甲烷排放、降低大气甲烷浓度方面发挥着重要作用.利用中国稻/麦轮作FACE(Free Air Carbon-dioxide Enrichment)试验平台,采用实时荧光定量PCR技术,研究了大气CO2浓度升高下,典型水稻生长期根际土壤甲烷氧化细菌数量的变化规律,及其对不同施肥处理(高氮HN和常氮LN)的响应.2009和2010连续2a的观测结果表明,大气CO2浓度升高促进了2009年秧苗期和分蘖期,2010年秧苗期、拔节期和灌浆期甲烷氧化细菌的生长;并可能对2010年常氮条件下成熟期甲烷氧化细菌产生了较显著(P<0.1)抑制;进一步针对甲烷氧化细菌主要类群的分析表明,高氮条件下大气CO2浓度升高提高了稻田根际土壤中Ⅰ型甲烷氧化细菌的丰度.  相似文献   

5.
CO2浓度升高对凤梨叶片生长和光合特性的影响   总被引:14,自引:0,他引:14  
研究了CO2浓度升高对开顶式气室中凤梨叶片的生长与光合生理的影响。结果表明:高CO2浓度(1000±100μmolmol-1)下生长的凤梨植株的株高、叶面积、鲜重和干重均高于对照(360±30μmolmol-1),处理90d时分别为对照的120.19%、119.22%、177.91%和161.04%;凤梨叶片的净光合速率也增加了136%-259%,且促进了叶片中可溶性糖和淀粉的积累,但叶绿素含量则下降了33.91%。高CO2浓度处理的凤梨叶片中RuBP羧化酶活性没有明显变化,乙醇酸氧化酶活性则明显下降。  相似文献   

6.
张蕊  赵钰  何红波  张旭东 《生态学杂志》2017,28(7):2379-2388
大气CO2浓度升高影响植物光合作用过程和生物量积累,改变植物地上和地下生物量的动态分配.土壤有机质的形成和周转依赖于植物组分的输入,因此,CO2浓度升高所造成的植物生理和代谢的变化对土壤碳库收支平衡具有重要影响.采用稳定碳同位素(13C)技术研究土壤-植物系统的碳循环可阐明大气CO2浓度升高条件下光合碳在植物各器官的分配特征和时间动态,明确光合碳在土壤中的积累、分解与迁移转化过程以及对土壤有机碳库周转的影响.本文综述了基于13C自然丰度法或13C示踪技术研究大气CO2浓度升高对土壤-植物系统碳循环的影响,主要包括:1)对植物光合作用的同位素分馏的影响;2)对植物光合碳(新碳)分配动态的影响;3)对土壤有机碳新老碳库动态以及微生物转化过程的影响.明确上述过程及其调控机制可为预测CO2浓度升高对陆地生态系统碳循环及源汇效应的长期影响奠定基础.  相似文献   

7.
利用中国稻/麦轮作FACE(Free-Air Carbon=Dioxide Enrichment)试验平台,研究大气CO2浓度升高200 μmol·mol-1(周围大气中CO2浓度约370 μmol·mol-1)对稻季各生育期不同深度土壤溶液NH4+-N和NO3--N浓度的影响.结果表明:高CO2浓度条件下耕层土壤溶液NH4+-N浓度在水稻生育前期有所增加,但在生育后期明显下降;大气CO2浓度升高增加了稻季5、15、30、60和90 cm处土壤溶液NO3--N浓度,分别比对照平均提高了46.5%、36.8%、23.3%、103.7%和42.7%,在60和90 cm处差异分别达到统计上的极显著和显著水平.  相似文献   

8.
采用盆栽控制试验对黄土丘陵区白羊草在不同CO2浓度(400和800 μmol·mol-1)和施氮水平(0、2.5、5.0 g N·m-2·a-1)条件下根际和非根际土壤水溶性有机碳(DOC)和水溶性有机氮(DON)的变化特征进行研究.结果表明: CO2浓度升高对白羊草根际和非根际土壤DOC、水溶性总氮(DTN)、DON、水溶性铵态氮(NH4+-N)、水溶性硝态氮(NO3--N)含量均无显著影响.施氮显著提高了根际和非根际土壤DTN、NO3--N含量和根际土壤DON含量,显著降低了根际土壤DOC/DON.在各处理条件下,根际土壤DTN、NO3--N和DON含量均显著低于非根际土壤,根际土壤DOC/DON显著高于非根际土壤.短期CO2浓度升高对黄土丘陵区土壤水溶性有机碳、氮含量无显著影响,而氮沉降的增加在一定程度上改善了土壤中水溶性氮素缺乏的状况,但并不足以满足植被对水溶性氮素的需求.  相似文献   

9.
大气CO2浓度升高与森林群落结构的可能性变化   总被引:5,自引:1,他引:5  
赵平  彭少麟 《生态学报》2000,20(6):1090-1096
大气CO2浓度升高的所引起的森林生态系统稳定性的变化会导致森林在结构和功能上的变动,概述了大气CO2浓度升高和陆地森林生态系统可能性变化之间的相互关系的研究情况。由于大气CO2浓度升高出现了额外多的C,供应,讨论了以这些额外多的C经大气-植物-土壤途径的流动走向,来研究大气CO2浓度的升高,与森林结构的相互作用,探讨了大气CO2浓度升高对森林植物生长、冠层结构、引发的生物量增量的分配、凋落物质量和  相似文献   

10.
大气CO2浓度升高和N沉降以及二者之间的耦合作用对陆地森林生态系统的影响是当前国际生态学界关注的热点之一。该实验运用大型开顶箱(open-top chamber, OTC)研究: 1)高CO2浓度(700 μmol×mol-1) +高N沉降(100 kg N×hm-2×a-1) (CN); 2)高CO2浓度(700 μmol×mol-1)和背景N沉降(CC); 3)高N沉降(100 kg N×hm-2×a-1)和背景CO2浓度(NN); 4)背景CO2和背景N沉降(CK) 4种处理对南亚热带主要乡土树种木荷(Schima superba)、红锥(Castanopsis hystrix)、肖蒲桃(Acmena acuminatissima)、红鳞蒲桃(Syzygium hancei)、海南红豆(Ormosia pinnata)叶片元素含量的影响。研究结果表明, 大气CO2浓度升高对5种乡土树种叶片元素含量有较大的影响, 除海南红豆叶片的Ca含量外, 其他树种的叶片元素含量在高CO2浓度处理下都显著升高(p < 0.05); 而在N沉降处理下, 5个树种的叶片K和Ca含量都降低。大气CO2浓度升高与N沉降处理对5种乡土树种植物叶片元素含量影响的交互作用不是很明显, 仅仅木荷和红鳞蒲桃的叶片Ca和Mn以及海南红豆的叶片Mn含量在大气CO2浓度上升和N沉降交互处理下显著下降, 而肖蒲桃的叶片P含量在大气CO2浓度上升和N沉降交互处理下显著上升。  相似文献   

11.
12.
Reduced soil N availability under elevated CO2 may limit the plant's capacity to increase photosynthesis and thus the potential for increased soil C input. Plant productivity and soil C input should be less constrained by available soil N in an N2‐fixing system. We studied the effects of Trifolium repens (an N2‐fixing legume) and Lolium perenne on soil N and C sequestration in response to 9 years of elevated CO2 under FACE conditions. 15N‐labeled fertilizer was applied at a rate of 140 and 560 kg N ha?1 yr?1 and the CO2 concentration was increased to 60 Pa pCO2 using 13C‐depleted CO2. The total soil C content was unaffected by elevated CO2, species and rate of 15N fertilization. However, under elevated CO2, the total amount of newly sequestered soil C was significantly higher under T. repens than under L. perenne. The fraction of fertilizer‐N (fN) of the total soil N pool was significantly lower under T. repens than under L. perenne. The rate of N fertilization, but not elevated CO2, had a significant effect on fN values of the total soil N pool. The fractions of newly sequestered C (fC) differed strongly among intra‐aggregate soil organic matter fractions, but were unaffected by plant species and the rate of N fertilization. Under elevated CO2, the ratio of fertilizer‐N per unit of new C decreased under T. repens compared with L. perenne. The L. perenne system sequestered more 15N fertilizer than T. repens: 179 vs. 101 kg N ha?1 for the low rate of N fertilization and 393 vs. 319 kg N ha?1 for the high N‐fertilization rate. As the loss of fertilizer‐15N contributed to the 15N‐isotope dilution under T. repens, the input of fixed N into the soil could not be estimated. Although N2 fixation was an important source of N in the T. repens system, there was no significant increase in total soil C compared with a non‐N2‐fixing L. perenne system. This suggests that N2 fixation and the availability of N are not the main factors controlling soil C sequestration in a T. repens system.  相似文献   

13.
The growth and chemical composition of most plants are influenced by elevated CO2, but accompanying effects on soil organic matter pools and mineralization are less clearly defined, partly because of the short‐term nature of most studies. Herein we describe soil properties from a naturally occurring cold CO2 spring (Hakanoa) in Northland, New Zealand, at which the surrounding vegetation has been exposed to elevated CO2 for at least several decades. The mean annual temperature at this site is ≈ 15.5 °C and rainfall ≈ 1550 mm. The site was unfertilized and ungrazed, with a vegetation of mainly C3 and C4 grasses, and had moderate levels of ‘available’ P. Two soils were present ? a gley soil and an organic soil – but only the gley soil is examined here. Average atmospheric CO2 concentrations at 17 sampling locations in the gley soil area ranged from 372 to 670 ppmv. In samples at 0–5 cm depth, pH averaged 5.4; average values for organic C were 150 g, total N 11 g, microbial C 3.50 g, and microbial N 0.65 g kg?1, respectively. Under standardized moisture conditions at 25 °C, average rates of CO2‐C production (7–14 days) were 5.4 mg kg?1 h?1 and of net mineral‐N production (14 ?42 days) 0.40 mg kg?1 h?1. These properties were all correlated positively and significantly (P < 0.10) with atmospheric CO2 concentrations, but not with soil moisture (except for CO2‐C production) or with clay content; they were, however, correlated negatively and mainly significantly with soil pH. In spite of uncertainties associated with the uncontrolled environment of naturally occurring springs, we conclude that storage of C and N can increase under prolonged exposure to elevated CO2, and may include an appreciable labile fraction in mineral soil with an adequate nutrient supply.  相似文献   

14.
15.
Soil organic matter (SOM) dynamics ultimately govern the ability of soil to provide long‐term C sequestration and the nutrients required for ecosystem productivity. Predicting belowground responses to elevated CO2 requires an integrated understanding of SOM transformations and the microbial activity that governs them. It remains unclear how the microorganisms upon which these transformations depend will function in an elevated CO2 world. This study examines SOM transformations and microbial metabolism in soils from the Duke Free Air Carbon Enrichment site in North Carolina, USA. We assessed microbial respiration and net nitrogen (N) mineralization in soils with and without elevated CO2 exposure during a 100‐day incubation. We also traced the depleted C isotopic signature of the supplemental CO2 into SOM and the soils' phospholipid fatty acids (PLFA), which serve as biomarkers for living cells. Cumulative net N mineralization in elevated CO2 soils was 50% that in control soils after a 100‐day incubation. Respiration was not altered with elevated CO2. C : N ratios of bulk SOM did not change with elevated CO2, but incubation data suggest that the C : N ratios of mineralized organic matter increased with elevated CO2. Values of SOM δ13C were depleted with elevated CO2 (?26.7±0.2 vs. ?30.2±0.3‰), reflecting the depleted signature of the supplemental CO2. We compared δ13C of individual PLFA with the δ13C of SOM to discern incorporation of the depleted C isotopic signature into soil microbial groups in elevated CO2 plots. PLFA i15:0, a15:0, and 10Met18:0 reflected significant incorporation of recently produced photosynthate, suggesting that the bacterial groups defined by these biomarkers are active metabolizers in elevated CO2 soils. At least one of these groups (actinomycetes, 10Met18:0) specializes in metabolizing less labile substrates. Because control plots did not receive an equivalent 13C tracer, we cannot determine from these data whether this group of organisms was stimulated by elevated CO2 compared with these organisms in control soils. Stimulation of this group, if it occurred in the elevated CO2 plot, would be consistent with a decline in the availability of mineralizable organic matter with elevated CO2, which incubation data suggest may be the case in these soils.  相似文献   

16.
通过测定小麦拔节期叶片的光合气体交换参数和光强-光合速率(Pn)响应曲线,研究了氮素对长期高大气CO2浓度(760 μmol·mol-1)下小麦叶片光合作用的影响.结果表明:在长期高大气CO2浓度下,增施氮肥能提高小麦叶片Pn、蒸腾速率(Tr)和瞬时水分利用效率(WUEi);与正常大气CO2浓度相比,高大气CO2浓度下小麦叶片的Pn和WUEi增加,气孔导度(Gs)和胞间CO2浓度(Ci)降低.随光合有效辐射的增强,高大气CO2浓度下小麦叶片的Pn和WUEi均高于正常大气CO2浓度处理,Gs则较低,而Ci和Tr无显著变化.高氮水平下小麦叶片Gs与Pn、Tr、WUEi呈线性正相关,Gs与Ci在正常大气CO2浓度下呈线性负相关,但高大气CO2浓度下二者无相关性;低氮水平下小麦叶片的Gs与Pn、WUEi无相关性,而与Ci和Tr呈线性正相关,表明高大气CO2浓度下低氮水平的小麦叶片Pn由非气孔因素限制.  相似文献   

17.
The influence of N availability on C sequestration under prolonged elevated CO2 in terrestrial ecosystems remains unclear. We studied the relationships between C and N dynamics in a pasture seeded to Lolium perenne after 8 years of elevated atmospheric CO2 concentration (FACE) conditions. Fertilizer‐15N was applied at a rate of 140 and 560 kg N ha2?1 y2?1 and depleted 13C‐CO2 was used to increase the CO2 concentration to 60 Pa pCO2. The 13C–15N dual isotopic tracer enabled us to study the dynamics of newly sequestered C and N in the soil by aggregate size and fractions of particulate organic matter (POM), made up by intra‐aggregate POM (iPOM) and free light fraction (LF). Eight years of elevated CO2 did not increase total C content in any of the aggregate classes or POM fractions at both rates of N application. The fraction of new C in the POM fractions also remained largely unaffected by N fertilization. Changes in the fractions of new C and new N (fertilizer‐N) under elevated CO2 were more pronounced between POM classes than between aggregate size classes. Hence, changes in the dynamics of soil C and N cycling are easier to detect in the POM fractions than in the whole aggregates. Within N treatments, fractions of new C and N in POM classes were highly correlated with more new C and N in large POM fractions and less in the smaller POM fractions. Isotopic data show that the microaggregates were derived from the macro‐aggregates and that the C and N associated with the microaggregates turned over slower than the C and N associated with the macroaggregates. There was also isotopic evidence that N immobilized by soil microorganisms was an important source of N in the iPOM fractions. Under low N availability, 3.04 units of new C per unit of fertilizer N were sequestered in the POM fractions. Under high N availability, the ratio of new C sequestered per unit of fertilizer N was reduced to 1.47. Elevated and ambient CO2 concentrations lead to similar 15N enrichments in the iPOM fractions under both low and high N additions, clearly showing that the SOM‐N dynamics were unaffected by prolonged elevated CO2 concentrations.  相似文献   

18.
Leaf 15N signature is a powerful tool that can provide an integrated assessment of the nitrogen (N) cycle and whether it is influenced by rising atmospheric CO2 concentration. We tested the hypothesis that elevated CO2 significantly changes foliage δ15N in a wide range of plant species and ecosystem types. This objective was achieved by determining the δ15N of foliage of 27 field‐grown plant species from six free‐air CO2 enrichment (FACE) experiments representing desert, temperate forest, Mediterranean‐type, grassland prairie, and agricultural ecosystems. We found that within species, the δ15N of foliage produced under elevated CO2 was significantly lower (P<0.038) compared with that of foliage grown under ambient conditions. Further analysis of foliage δ15N by life form and growth habit revealed that the CO2 effect was consistent across all functional groups tested. The examination of two chaparral shrubs grown for 6 years under a wide range of CO2 concentrations (25–75 Pa) also showed a significant and negative correlation between growth CO2 and leaf δ15N. In a select number of species, we measured bulk soil δ15N at a depth of 10 cm, and found that the observed depletion of foliage δ15N in response to elevated CO2 was unrelated to changes in the soil δ15N. While the data suggest a strong influence of elevated CO2 on the N cycle in diverse ecosystems, the exact site(s) at which elevated CO2 alters fractionating processes of the N cycle remains unclear. We cannot rule out the fact that the pattern of foliage δ15N responses to elevated CO2 reported here resulted from a general drop in δ15N of the source N, caused by soil‐driven processes. There is a stronger possibility, however, that the general depletion of foliage δ15N under high CO2 may have resulted from changes in the fractionating processes within the plant/mycorrhizal system.  相似文献   

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