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1.
Scots pine (Pinus sylvestris L.) seedlings were grown for 3years in the ground in open top chambers and exposed to twoconcentrations of atmospheric CO2(ambient or ambient + 400 µmol mol-1) without addition of nutrients and water. Biomassproduction (above-ground and below-ground) and allocation, aswell as canopy structure and tissue nitrogen concentrationsand contents, were examined by destructive harvest after 3 years.Elevated CO2increased total biomass production by 55%, reducedneedle area and needle mass as indicated, respectively, by lowerleaf area ratio and leaf mass ratio. A relatively smaller totalneedle area was produced in relation to fine roots under elevatedCO2. The proportion of dry matter in roots was increased byelevated CO2, as indicated by increased root-to-shoot ratioand root mass ratio. Within the root system, there was a significantshift in the allocation towards fine roots. Root litter constituteda much higher fraction of fine roots in trees grown in the elevatedCO2than in those grown in ambient CO2. Growth at elevated CO2causeda significant decline in nitrogen concentration only in theneedles, while nitrogen content significantly increased in branchesand fine roots (with diameter less than 1 mm). There were nochanges in crown structure (branch number and needle area distribution).Based upon measurements of growth made throughout the 3 years,the greatest increase in biomass under elevated CO2took placemainly at the beginning of the experiment, when trees grownin elevated CO2had higher relative growth rates than those grownunder ambient CO2; these differences disappeared with time.Symptoms of acclimation of trees to growth in the elevated CO2treatmentwere observed and are discussed. Copyright 2000 Annals of BotanyCompany Elevated CO2, Pinus sylvestris, biomass production, allocation, fine roots, root litter, crown structure, nitrogen, C/N ratio  相似文献   

2.
We used a modified functional balance (FB) model to predictgrowth response of Helianthus annuus L. to elevated CO2. Modelpredictions were evaluated against measurements obtained twiceduring the experiment. There was a good agreement between modelpredictions of relative growth rate (RGR) responses to elevatedCO2and observations, particularly at the second harvest. Themodel was then used to compare the relative effects of biomassallocation to roots, nitrogen (N) uptake and photosyntheticN-use efficiency (PNUE) in determining plant growth responseto elevated CO2. The model predicted that a rather substantialincrease in biomass allocation to root growth had little effecton whole plant growth response to elevated CO2, suggesting thatplasticity in root allocation is relatively unimportant in determininggrowth response. Average N uptake rate at elevated comparedto ambient CO2was decreased by 21–29%. In contrast, elevatedCO2increased PNUE by approx. 50% due to a corresponding risein the CO2-saturation factor for carboxylation at elevated CO2.The model predicted that the decreased N uptake rate at elevatedCO2lowered RGR modestly, but this effect was counterbalancedby an increase in PNUE resulting in a positive CO2effect ongrowth. Increased PNUE may also explain why in many experimentselevated CO2enhances biomass accumulation despite a significantdrop in tissue nitrogen concentration. The formulation of theFB model as presented here successfully predicted plant growthresponses to elevated CO2. It also proved effective in resolvingwhich plant properties had the greatest leverage on such responses.Copyright 2000 Annals of Botany Company Elevated CO2, functional balance model, Helianthus annuus L., N uptake, photosynthetic nitrogen use efficiency, root:shoot ratio  相似文献   

3.
The effects of elevated CO2and temperature on the growth, resourceacquisition and resource allocation of small birch seedlings(Betula pendula Roth.) were examined under conditions of non-limitingsoil, water and nutrient supply. Seedlings were planted in potsand placed in controlled environment chambers either under normalambient conditions (CON), or in the presence of elevated CO2(approx.700 µmol mol-1; Elev. C), elevated temperature (approx.3 °C above the outside ambient temperature; Elev. T) ora combination of elevated CO2and elevated temperature (Elev.C + T). Both Elev. C and Elev. T significantly increased biomassaccumulation, but the extent of the increase depended greatlyon the stage of development of the seedlings. Furthermore, thetheoretically expected positive effect of the warmer temperatureon the CO2-induced stimulation of growth was not observed. Byanalysing resource acquisition (i.e. CO2 , nitrogen and wateruptake), seedling development, leaf area production and theallocation pattern, it was deduced that the CO2-stimulated increasein biomass resulted mainly from the initial ‘fertilization’effect of CO2while the temperature-induced increase in biomassstemmed from higher net carbon intake during the middle andlatter parts of the growing season achieved by virtue of theincreased leaf area and larger photosynthetic capacity. Thelack of positive stimulation by temperature under Elev. C +T may be related in part to (1) CO2-induced acceleration ofseedling development, which led to a small or no response toCO2enrichment and lower leaf area production during the latterpart of the growth season, and (2) a cumulative delay in theresponse of growth to the warmer temperature, which did notincrease net carbon intake when the seedlings were at a juvenilestage. Neither Elev. C nor Elev. T altered the root:shoot ratioduring early growth, but Elev. C increased it during the latterpart of the growth season while Elev. T decreased it, possiblyon account of a change in leaf area retention. Finally, thenitrogen and water use efficiencies of seedlings at differentstages of development are discussed. Copyright 2001 Annals ofBotany Company Photosynthesis, growth, resource acquisition and allocation, elevated CO2and temperature, Betula pendula Roth  相似文献   

4.
Single clonal plants of white clover (Trifolium repens L) grownfrom explants in a Perlite rooting medium, and dependent fornitrogen on N2 fixation in root nodules, were grown for severalweeks in controlled environments which provided two regimesof CO2, and temperature 23/18 °C day/night temperaturesat 680 µmol mol–1 CO2, (C680), and 20/15 °Cday/night temperatures at 340 µmol mol–1 CO2 (C340)After 3–4 weeks of growth, when the plants were acclimatedto the environmental regimes, leaf and whole-plant photosynthesisand respiration were measured using conventional infra-red gasanalysis techniques Elevated CO2 and temperature increased ratesof photosynthesis of young, fully expanded leaves at the growthirradiance by 17–29%, despite decreased stomatal conductancesand transpiration rates Water use efficiency (mol CO2 mol H2O–1)was also significantly increased Plants acclimated to elevatedCO2, and temperature exhibited rates of leaf photosynthesisvery similar to those of C340 leaves ‘instantaneously’exposed to the C680 regime However, leaves developed in theC680 regime photosynthesised less rapidly than C340 leaves whenboth were exposed to a normal CO2, and temperature environmentIn measurements where irradiance was varied, the enhancementof photosynthesis in elevated CO2 at 23 °C increased graduallyfrom approx 10 % at 100 µmol m–1 s–1 to >27 % at 1170 µmol m–2 s–1 In parallel, wateruse efficiency increased by 20–40 % at 315 µmolm–2 s–1 In parallel, water use efficiency increasedby 20–40 % at 315 µmol m–2 s–1 In parallel,water use efficiency increased by 20–40 % at 315 µmolm–2 s–1 In parallel, water use efficiency increasedby 20–40 % at 315 µmol m–2 s–1 to approx100 % at the highest irradiance Elevated CO2, and temperatureincreased whole-plant photosynthesis by > 40 %, when expressedin terms of shoot surface area or shoot weight No effects ofelevated CO2 and temperature on rate of tissue respiration,either during growth or measurement, were established for singleleaves or for whole plants Dependence on N2, fixation in rootnodules appeared to have no detrimental effect on photosyntheticperformance in elevated CO2, and temperature Trifolium repens, white clover, photosynthesis, respiration, elevated CO2, elevated temperature, water use efficiency, N2 fixation  相似文献   

5.
Rumex obtusifolius plants were grown for several months in daylitenvironment chambers (Solardomes) force-ventilated with aircontaining 350 or 600 µ;mol mol–1 C02. ElevatedCO2 was found to accelerate the natural ontogenic decline inphotosynthesis, but did not reduce leaf duration. In both CO2treatments photosynthetic rates declined progressively withincreasing leaf age, the decline being greater for plants grownin elevated C02 such that rates became lower than in ambientCO2. The degree of CO2-induced photosynthetic down-regulationas determined by A/C1 analysis was found to be dependent onleaf age. The major contribution to the decline in photosynthesiswas likely to be a reduction in Rubisco activity as changesin stomataland mesophyll limitations were small. Instantaneouswater use efficiency (WUE1) was greater for plants in elevatedCO2, but these values declined rapidly with leaf age, whereasin ambient CO2 values were always lower, but were maintainedfor longer. Growth analysis indicated an increased root:-shootratio for plants grown in elevated CO2, this occurring almostentirely as a result of increased root growth. Greater rootproliferation and increased WUE1, are characteristics whichshould give this persistent and troublesome weed an increasedcompetitive advantage under projected conditions of climatechange Key words: tusifoliu, elevated CO2, gas exchange, leaf age, senescence  相似文献   

6.
Plants of Phaseolus vulgaris were grown from seed in open-topgrowth chambers at the present (P, 350 µmol mol–1)atmospheric CO2 concentration and at an elevated (E, 700 µmolmol–1) CO2 concentration, and at low (L, without additionalnutrient solution) and high (H, with additional nutrient solution)nutrient supply for 28 d The effects of CO2 and nutrient availabilitywere examined on growth, morphological and biochemical characteristics Leaf area and dry mass were significantly increased by CO2 enrichmentand by high nutrient supply Stomatal density, stomatal indexand epidermal cell density were not affected by elevated CO2concentration or by nutrient supply Leaf thickness respondedpositively to CO2 increasing particularly in mesophyll areaas a result of cell enlargement Intercellular air spaces inthe mesophyll decreased slightly in plants grown in elevatedCO2 Leaf chlorophyll content per unit area or dry mass was significantlylower in elevated CO2 grown plants and increased significantlywith increasing nutrient availability The content of reducingcarbohydrates of leaves, stem, and roots was not affected byCO2 but was significantly increased by nutrient addition inall plant parts Starch content in leaves and stem was significantlyincreased by elevated CO2 concentration and by high nutrientsupply Phaseolus vulgaris, elevated atmospheric CO2, CO2-nutrient interaction, stomatal density, leaf anatomy, chlorophyll, carbohydrates, starch  相似文献   

7.
Forest carbon balance under elevated CO2   总被引:10,自引:2,他引:8  
Free-air CO2 enrichment (FACE) technology was used to expose a loblolly pine (Pinus taeda L.) forest to elevated atmospheric CO2 (ambient + 200 µl l-1). After 4 years, basal area of pine trees was 9.2% larger in elevated than in ambient CO2 plots. During the first 3 years the growth rate of pine was stimulated by ~26%. In the fourth year this stimulation declined to 23%. The average net ecosystem production (NEP) in the ambient plots was 428 gC m-2 year-1, indicating that the forest was a net sink for atmospheric CO2. Elevated atmospheric CO2 stimulated NEP by 41%. This increase was primarily an increase in plant biomass increment (57%), and secondarily increased accumulation of carbon in the forest floor (35%) and fine root increment (8%). Net primary production (NPP) was stimulated by 27%, driven primarily by increases in the growth rate of the pines. Total heterotrophic respiration (Rh) increased by 165%, but total autotrophic respiration (Ra) was unaffected. Gross primary production was increased by 18%. The largest uncertainties in the carbon budget remain in separating belowground heterotrophic (soil microbes) and autotrophic (root) respiration. If applied to temperate forests globally, the increase in NEP that we measured would fix less than 10% of the anthropogenic CO2 projected to be released into the atmosphere in the year 2050. This may represent an upper limit because rising global temperatures, land disturbance, and heterotrophic decomposition of woody tissues will ultimately cause an increased flux of carbon back to the atmosphere.  相似文献   

8.
Potted white pine (Pinus strobus L.) seedlings were grown ingravel either in outdoor cold frames or in growth chambers.They were watered every second day with a salt solution containingdifferent amounts of nitrogen and phosphorus. After 13 weeksof growth individual seedlings were illuminated separately for8 h in the presence of 14CO2 and the rates of their apparentphotosynthesis, respiration, and translocation of recent 14C-photosynthateto their roots were observed. Roots were extracted with 80 percent ethanol and the nature of various 14C compounds in theextract was determined by paper chromatography. The best over-all growth of plants, mycorrhizal development,apparent photosynthesis, and translocation of recent photosynthateto the roots were observed in plants grown at the intermediatelevels of N and P nutrition. Sucrose was always the dominant form in which recently translocated14C occurred in the roots, although with increased nitrogensupply there was increased hydrolysis of sucrose to hexosesand appearance of 14C in the amino- and organic acids.  相似文献   

9.
Stands of spring wheat grown in open-top chambers (OTCs) wereused to assess the individual and interactive effects of season-longexposure to elevated atmospheric carbon dioxide (CO2 and ozone(O3) on the photosynthetic and gas exchange properties of leavesof differing age and position within the canopy. The observedeffects were related to estimated ozone fluxes to individualleaves. Foliar chlorophyll content was unaffected by elevatedCO2 but photosynthesis under saturating irradiances was increasedby up to 100% at 680 µmol mol–1 CO2 relative tothe ambient CO2 control; instantaneous water use efficiencywas improved by a combination of increased photosynthesis andreduced transpiration. Exposure to a seasonal mean O3 concentration(7 h d–1) of 84 nmol mol–1 under ambient CO2 acceleratedleaf senescence following full expansion, at which time chlorophyllcontent was unaffected. Stomatal regulation of pollutant uptakewas limited since estimated O3 fluxes to individual leaves werenot reduced by elevated atmospheric CO2, A common feature ofO3-treated leaves under ambient CO2 was an initial stimulationof photosynthesis and stomatal conductance for up to 4 d and10 d, respectively, after full leaf expansion, but thereafterboth variables declined rapidly. The O3-induced decline in chlorophyllcontent was less rapid under elevated CO2 and photosynthesiswas increased relative to the ambient CO2 treatment. A/Ci analysessuggested that an increase in the amount of in vivo active RuBisCOmay be involved in mitigating O3-induced damage to leaves. Theresults obtained suggest that elevated atmospheric CO2 has animportant role in restricting the damaging effects of O3 onphotosynthetic activity during the vegetative growth of springwheat, and that additional direct effects on reproductive developmentwere responsible for the substantial reductions in grain yieldobtained at final harvest, against which elevated CO2 providedlittle or no protection. Key words: Elevated CO2 and O3, gas exchange, O3 flux, stomata, chlorophyll, Triticum aestivum  相似文献   

10.
Sugar beet (Beta vulgaris L., cultivar Celt) plants were grownunder simulated field conditions in pots and supplied with adequateor deficient nitrogen (HN and LN, respectively) combined withtwo CO2 concentrations, ambient (c. 350µmol mol–1C02—AC), or elevated CO2 (c. 600 µmol mol–1CO2—HC). Chloroplast structure in mesophyll palisade cellsof mature leaves (leaf number 19 in HN and 9 in LN), sampledat midday on 16 August 1993 was studied by transmission electronmicroscopy and quantified stereologically. The ultrastructureof palisade parenchyma chloroplasts was affected by the elevatedCO2 concentration and strikingly affected by nitrogen supply.Chloroplast diameter (cross-sectional length) was slightly,but not significantly, greater in HC than AC treatments withinan N treatment, but was smaller in LN than HN; chloroplast cross-sectionalarea also increased with HC in both N treatments, but only significantlyso in LN. Elevated CO2 reduced the proportion of total thylakoids(significant at 5% and 0.1% in HN and LN, respectively) dueto decreased granal thylakoids, but the proportion of inter-granal(stromal) thylakoid membranes was not affected compared to chloroplastsfrom plants grown with ambient CO2. Chloroplast stroma increasedas a proportion of chloroplast volume with elevated comparedto ambient CO2 with HN but not LN. Starch inclusions were notsignificantly different with elevated compared to ambient CO2at HN, but the proportion of starch increased considerably atelevated compared to ambient C02 at LN, indicating an over-productionof assimilates. Plastoglobuli in chloroplasts increased withdeficient N, but decreased with elevated CO2. Larger chloroplastswith a greater proportion of stroma, but a smaller proportionof granal thylakoids, suggest increased CO2 assimilating capacityand decreased light harvesting/PSII capacity with elevated CO2. Key words: Chloroplast, ultrastructure, elevated CO2 concentration, nitrogen deficiency, sugar beet, Beta vulgaris  相似文献   

11.
The long-term effects of elevated CO2 and CO2+O3 concentrations on the growth allocation in northern provenances of Norway spruce [Picea abies (L.) Karst.], Scots pine [Pinus sylvestris (L.)] and pubescent birch clones (Betula pubescens Ehrh.) were examined in open-top chambers after a 4-year-long experiment. The total biomass responses of the tree seedlings to increased CO2 and CO2+O3 concentrations were not statistically significant and varied between the provenances and species. The seedlings of northern origin were the least sensitive in their response to treatments. The total biomass of the Norway spruce seedlings slightly decreased in response to CO2 in three provenances. Scots pine from the local provenance had a slight biomass increase after elevated CO2+O3 treatment. The slower-growing birch clone seemed to benefit from elevated CO2, whereas in the faster-growing clone, reductions in biomass accumulation were seen. The combined CO2+O3 treatment reduced the positive effects of elevated CO2, especially in the slower-growing birches. Observations of significant effects were limited to a few parameters. Carbon dioxide treatment decreased needle dry weight of Norway spruce in one northern provenance. The needle and wood dry weight increased (CO2 + O3) in local Scots pine. Significant birch response was limited to increased fine root density (O3 + CO2) in the inland clone. The diverse effects of elevated CO2 and CO2 +O3 on seedling growth and biomass provide evidence that exposure of northern trees to the enhanced variable CO2 and O3 concentrations of the future will have varied effects on the growth of these species. The direction and magnitude of those effects will differ depending on species and origins.  相似文献   

12.
Nutrients such as nitrogen (N) and phosphorus (P) often limit plant growth rate and production in natural and agricultural ecosystems. Limited availability of these nutrients is also a major factor influencing long-term plant and ecosystem responses to rising atmospheric CO2 levels, i.e., the commonly observed short-term increase in plant biomass may not be sustained over the long-term. Therefore, it is critical to obtain a mechanistic understanding of whether elevated CO2 can elicit compensatory adjustments such that acquisition capacity for minerals increases in concert with carbon (C) uptake. Compensatory adjustments such as increases in (a) root mycorrhizal infection, (b) root-to-shoot ratio and changes in root morphology and architecture, (c) root nutrient absorption capacity, and (d) nutrient-use efficiency can enable plants to meet an increased nutrient demand under high CO2. Here we examine the literature to assess the extent to which these mechanisms have been shown to respond to high CO2. The literature survey reveals no consistent pattern either in direction or magnitude of responses of these mechanisms to high CO2. This apparent lack of a pattern may represent variations in experimental protocol and/or interspecific differences. We found that in addressing nutrient uptake responses to high CO2 most investigators have examined these mechanisms in isolation. Because such mechanisms can potentially counterbalance one another, a more reliable prediction of elevated CO2 responses requires experimental designs that integrate all mechanisms simultaneously. Finally, we present a functional balance (FB) model as an example of how root system adjustments and nitrogen-use efficiency can be integrated to assess growth responses to high CO2. The FB model suggests that the mechanisms of increased N uptake highlighted here have different weights in determining overall plant responses to high CO2. For example, while changes in root-to-shoot biomass allocation, r, have a small effect on growth, adjustments in uptake rate per unit root mass, [`(n)]\bar \nu , and photosynthetic N use efficiency, p*, have a significantly greater leverage on growth responses to elevated CO2 except when relative growth rate (RGR) reaches its developmental limit, maximum RGR (RGRmax).  相似文献   

13.
King  J.S.  Thomas  R.B.  Strain  B.R. 《Plant and Soil》1997,195(1):107-119
Rising atmospheric carbon dioxide, nitrogen deposition and warmer temperatures may alter the quantity and quality of plant-derived organic matter available to soil biota, potentially altering rates of belowground herbivory and decomposition. Our objective was to simulate future growth conditions for an early successional (loblolly) and late successional (ponderosa) species of pine to determine if the physical and chemical properties of the root systems would change. Seedlings were grown for 160 days in greenhouses at the Duke University Phytotron at 35 or 70 Pa CO2 partial pressure, ambient or ambient + 5 °C temperature, and 1 or 5 mMNH4O3. Roots from harvested seedlings were analyzed for changes in surface area, specific root length, mass, total nonstructural carbohydrates (TNC), and concentrations of macro-nutrients. Surface area increased in both species under elevated CO2, due primarily to increases in root length, and this response was greatest (+138%) in loblolly pine at high temperature. Specific root length decreased in loblolly pine at elevated CO2 but increases in mass more than compensated for this, resulting in net increases in total length. TNC was unaffected and nutrient concentrations decreased only slightly at elevated CO2, possibly from anatomical changes to the root tissues. We conclude that future growth conditions will enhance soil exploration by some species of pine, but root carbohydrate levels and nutrient concentrations will not be greatly affected, leaving rates of root herbivory and decomposition unaltered.  相似文献   

14.
The effects of NaCl were studied in 6-month-old jack pine (Pinus banksiana Lamb.) seedlings growing in solution culture under hypoxic (approximately 2 mg lу O2) and well-aerated (approximately 8 mg lу O2) conditions. The results showed that hypoxia led to further reduction of stomatal conductance (gs) in plants treated with 45 mM NaCl. This effect was likely due to a reduction in root hydraulic conductance by both stresses. When applied individually or together, neither 45 mM NaCl nor hypoxia affected cell membrane integrity of needles as measured by tissue electrolyte leakage. Hypoxia did not alter shoot Na+ and Clm concentrations in NaCl-treated plants. However, root Na+ concentrations were lower in NaCl-treated hypoxic plants, suggesting that hypoxia affected the ability of roots to store Na+. Hypoxia also induced root electrolyte leakage from NaCl-treated and control plants. The higher root Clm concentrations compared with Na+ and the positive correlation between root Clm concentrations and electrolyte leakage suggest that Clm played a major role in salt injury observed in jack pine seedlings. Roots of well-aerated plants treated for 1 week with NaCl contained almost two-fold higher concentration of total non-structural carbohydrates compared with plants from other experimental treatments and these concentrations decreased in subsequent weeks. We suggest that under prolonged hypoxic conditions, roots lose the ability to prevent Clm uptake resulting in the increase in root Clm concentration, which has damaging effects on root cell membranes.  相似文献   

15.

Background and aims

Accurate predictions of nutrient acquisition by plant roots and mycorrhizas are critical in modelling plant responses to climate change.

Methods

We conducted a field experiment with the aim to investigate root nutrient uptake in a future climate and studied root production by ingrowth cores, mycorrhizal colonization, and fine root N and P uptake by root assay of Deschampsia flexuosa and Calluna vulgaris.

Results

Net root growth increased under elevated CO2, warming and drought, with additive effects among the factors. Arbuscular mycorrhizal colonization increased in response to elevated CO2, while ericoid mycorrhizal colonization was unchanged. The uptake of N and P was not increased proportionally with root growth after 5 years of treatment.

Conclusions

While aboveground biomass was unchanged, the root growth was increased under elevated CO2. The results suggest that plant production may be limited by N (but not P) when exposed to elevated CO2. The species-specific response to the treatments suggests different sensitivity to global change factors, which could result in changed plant competitive interactions and belowground nutrient pool sizes in response to future climate change.  相似文献   

16.
Soybeans were grown for three seasons in open-top field chambersto determine (1) whether elevated CO2 (360 versus 700 µmolmol–1) alleviates some of the yield loss due to pollutantO3, (2) whether the partial stomatal closure resulting fromchronic O3 exposure (charcoal-filtered air versus 1.5 ambientconcentrations) is a cause or result of decreased photosynthesis,and (3) possible implications of CO2/O3 interactions to climatechange studies using elevated CO2. Leaf conductance was reducedby elevated CO2, regardless of O3 level, or by exposure to O3alone. As.a result of these effects on conductance, high CO2reduced estimated midday O3 flux into the leaf by an averageof 50% in charcoal-filtered air and 35% in the high O3 treatment.However, while exposure to O3 reduced seed yields by 41% atambient CO2 levels, the yield reduction was completely amelioratedby elevated CO2. The threshold midday O3 flux for yield lossappears to be 20–30 nmol m–2 s–1 in this study.Although elevated CO2 increased total biomass production, itdid not increase seed yields. A/Ci curves show a large reductionin the stomatal limitation to photosynthesis due to elevatedCO2 but no effect of O3. These data demonstrate that (1) reducedconductance due to O3 is the result, and not the cause, of reducedphotosynthesis, (2) 700 µmol mol–1 CO2 can completelyameliorate yield losses due to O3 within the limits of theseexperiments, and (3) some reports of increased yields underelevated CO2 treatments may, at least in part, reflect the ameliorationof unrecognized suppression of yield by O3 or other stresses. Key words: Stomatal limitation, elevated CO2, O3 flux, Glycine max, yield suppression  相似文献   

17.
Upland grasslands are a major component of natural vegetationwithin the UK. Such grasslands support slow growing relativelystable plant communities. The response of native montane grassspecies to elevated atmospheric carbon dioxide concentrationshas received little attention to date. Of such studies, mosthave only focused on short-term (days to weeks) responses, oftenunder favourable controlled environment conditions. In thisstudy Agrostis caplllaris L.5, Festuca vivipara L. and Poa alpinaL. were grown under semi-natural conditions in outdoor open-topchambers at either ambient (340µmol mol–1) or elevated(680µmol mol–1) concentrations of atmospheric carbondioxide (CO2 for periods from 79 to 189 d, with a nutrient availabilitysimilar to that of montane Agrostis-Fescue grassland in Snowdonia,N. Wales. Whole plant dry weight was increased for A. capillarisand P. alpina, but decreased for F. vivipara, at elevated CO2.Major components of relative growth rate (RGR) contributingto this change at elevated CO2 were transient changes in specificleaf area (SLA) and leaf area ratio (LAR). Despite changes ingrowth rate at 680 µmol mol–1 CO2, partitioningof dry weight between shoot and root in plants of A. capillarisand P. alpina was unaltered. There was a significant decreasein shoot relative to root growth at elevated CO2 in F. viviparawhich also showed marked discoloration of the leaves and increasedsenescence of the foliage. Key words: Allometry, growth analysis, elevated CO2, grasses  相似文献   

18.
Because of their prominent role in global bioproductivity andbecause of their complex structure and function, forests andtree species deserve particular attention in studies on thelikely impact of elevated atmospheric CO2on terrestrial vegetation.Besides a synoptic review of some of the most prominent above-groundresponse processes, particular attention is given to below-groundresponses of trees to elevated atmospheric CO2, while some feedbackprocesses and interactions with various biotic and abiotic factorsare also briefly summarized. At the leaf level there is littleevidence of the long-term loss of sensitivity to CO2that wassuggested by earlier experiments with tree seedlings in pots.Future studies on photosynthesis measurements will probablynot alter our conclusions about acclimation, but should focusmore on respiration under elevated CO2, which is still poorlyunderstood. At the tree level, the increase in growth observedin elevated CO2results from an increase in both leaf area andleaf photosynthetic rate (per unit leaf area). Tree growth enhancementis generally larger at high rates of nutrient supply; when nutrientsupply rates do not meet growth rates, tree nutrient statusdeclines and nutrients become limiting. In many studies at thecanopy level, a shift in whole-tree carbon allocation patterntowards below-ground parts has been associated with increasedatmospheric CO2concentrations. At the ecosystem level, a largeramount of carbon being allocated below-ground could show upby either (1) more root growth and turnover, (2) enhanced activityof root-associated microorganisms, (3) larger microbial biomasspools and enhanced microbial activity, or (4) increased lossesof soil carbon through soil respiration. Fine root productionis generally enhanced, but it is not clear whether this responsewould persist in a forest. As elevated CO2stimulates biomassproduction, litterfall and rhizodeposition also increase. Thisincreased delivery of labile organic matter to the soil couldinfluence soil microbial communities and subsequent decompositionrates, nutrient availability and carbon storage in soil. Thereare, however, contradictory hypothesis about the direction inwhich nutrient availability will be affected. Knowledge of theresponse of these and other ecophysiological processes to elevatedCO2is the key to understanding the functioning of the wholeforest ecosystem. Our current knowledge is sufficiently largewith regard to how the carbon uptake process and individualtree growth respond under atmospheric changes, but more emphasisshould be put in future experiments on the interactions betweenvarious processes, such as the carbon and nitrogen cycles, andon below-ground responses. Copyright 1999 Annals of Botany Company Global climatic changes, elevated CO2, forests, trees, below-ground processes, mycorrhizae, roots, decomposition.  相似文献   

19.
Bunce  James A. 《Annals of botany》1995,75(4):365-368
Previous work has shown that elevated carbon dioxide (CO2) concentrationsin the dark reversibly reduce the rate of CO2 efflux from soybeans.Experiments were performed exposing soybean plants continuallyto concentrations of 350 or 700 cm3 m-3 for 24 h d-1, or to350 during the day and 700 cm3 m-3 at night, in order to determinethe importance of the reduced rate of dark CO2 efflux for plantgrowth. High CO2 applied only at night conserved carbon andincreased dry mass during initial growth compared with the constant350 cm3 m-3 treatment. Long-term net assimilation rate was increasedby high CO2 in the dark, without any increase in daytime leafphotosynthesis. However, leaf area ratio was reduced by thedark CO2 treatment to values equal to those of plants continuallyexposed to the higher concentration. From days 14-21, leaf areawas less for the elevated night-time CO2 treatment than foreither the constant 350 or 700 cm3 m-3 treatments. For the days7-21-period, relative growth rate was significantly reducedby the high night CO2 treatment compared with the 350 cm3 m-3continuous treatment. The results indicate that some functionallysignificant component of respiration was reduced by the elevatedCO2 concentration in the dark.Copyright 1995, 1999 AcademicPress Glycine max L. (Merr.), carbon dioxide, plant growth, respiration  相似文献   

20.
Starting in 1996, individual trees of Scots pine (Pinus sylvestrisL.) aged 30 years, were grown in closed-top chambers and exposedto either normal ambient conditions (CON), elevated CO2(approx.700 µmol mol-1; Elev. C), elevated temperature (approx.2 °C and approx. 6 °C above the outside ambient temperatureduring the ‘growing season’ and ‘off season’,respectively; Elev. T) or a combination of elevated CO2and warmertemperature (Elev. CT). Sap flow was monitored simultaneouslyby the constant-power heat balance method in a total of 16 trees,four for each treatment, over a 32 d period in summer 1998 (afterthe completion of needle expansion and branch elongation). Toquantify the contributions of crown and physical environmentalvariables to total crown transpiration, a ‘sun/shade model’was developed and used to partition the changes in transpirationto different sources. The results of the sap flow measurementsindicate that (1) total daily sap flow (Etree.d) varied from0.15–3.41 kg per tree; (2) the treatment effect on Etree.ddependedgreatly on the weather conditions; (3) the cumulative Etree.dforthe 32 d dropped significantly by 22% relative to CON (P =0.038)under Elev. C and increased significantly by 21% (P =0.043)and 16% (P =0.048) under Elev. T and Elev. CT, respectively.In general, the modelled transpiration gave good agreement withthe sap flow results. The model computations showed that, ona typical sunny day in summer, the effect of treatment on crownstomatal conductance was responsible for approx. 80% of thechange inEtree.d , while the increase in needle area and theeffect on total radiation absorption contributed only a smallpercentage. Furthermore, sunlit needles were responsible forover 60% of change in transpiration. The effect of the treatmentson Etree.dwas larger at high temperature and vapour pressuredeficit but was not sensitive to incident daily radiation. Copyright2000 Annals of Botany Company Transpiration model, sap flow, CO2and temperature elevation, environment-controlled chamber, Pinus sylvestris L.  相似文献   

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