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1.
The increase in carbonic anhydrase (CA) activity and the decreasein apparent Km(CO2) for photosynthesis induced by reducing CO2concentration during the growth of Chlorella vulgaris 11h cellswere followed under different temperatures. Both changes wereaccelerated by raising the temperature and reached an optimumat 32–37?C. When the CO2 concentration was lowered from3 to 0.04%, the rate of photosynthetic O2 evolution at limitingCO2 concentrations increased and reached a stationary levelafter 3 h. Under such conditions, the concentration of CO2 dissolvedin the algal suspension decreased logarithmically (t1/2=10 min)and reached a concentration in equilibrium with 0.04% CO2 inair after ca. 2 h. When high-CO2 cells grown with 3% CO2 in air were transferredto various lower CO2 concentrations, CA activity and apparentKm(CO2) for photosynthesis changed depending on the CO2 concentration.The CO2 concentration which gives one-half the maximum valuefor Km(CO2) and one-half minimum value foi CA activities wasabout 0.5%. The inverse relationship observed for the changesin CA activity and the affinity for CO2 in photosynthesis supportsthe theory that CA loweres the apparent Km(CO2) for photosynthesisin Chlorella vulgaris 11h. (Received August 27, 1984; Accepted February 8, 1985)  相似文献   

2.
Australia's tropical grasslands are dominated by C4grasses,characterized by their unique biochemistry and anatomy. Twonaturalized C4grasses (Panicum coloratum and Cenchrus ciliaris)were used to investigate whether high CO2partial pressure [p(CO2)] influences photosynthetic nitrogen use efficiency andplant nitrogen use efficiency (PNUE and NUE respectively). Plantswere grown for 30 d with four levels of N at p(CO2) of 38 or86 Pa. PNUE was calculated from leaf CO2assimilation rates (A)and leaf N concentrations, and NUE from total leaf N contentand plant dry mass. At each p(CO2), PNUE and NUE were greaterfor C. ciliaris than for P. coloratum due to higher A and drymass combined with lower leaf N concentrations. Elevatedp (CO2)increased PNUE of C. ciliaris only. This effect was due to lowerleaf N concentrations (area basis). At high p(CO2), NUE of C.ciliaris was also greater. This resulted from a 1.6-fold stimulationof dry mass by high p(CO2). Although dry mass of P. coloratumwas increased 1.2-fold by elevated p(CO2), its NUE was unaffected.Leaf transpiration rates were halved at elevated p(CO2), andwe suggest that this factor plays a major role in the growthresponse of C4grasses to high p(CO2). Copyright 2001 Annalsof Botany Company Panicum coloratum, Cenchrus ciliaris, nitrogen use efficiency, elevated CO2, leaf N concentration, growth, photosynthesis  相似文献   

3.
The effects of increased atmospheric carbon dioxide (CO2) of700 µmol mol–1 and increased air temperature of+ 4C were examined in Lolium perenne L. cv. Vigor, growingin semi-controlled greenhouses. Leaf growth, segmental elongationrates (SER), water relations, cell wall (tensiometric) extensibility(%P) and epidermal cell lengths (ECL) were measured in expandingleaves in spring and summer. In elevated CO2, shoot dry weight (SDW) increased in mid-summer.In both seasons, SDW decreased in elevated air temperatureswith this reduction being greater in summer as compared to spring.Specific leaf area (SLA) decreased in elevated CO2 and in CO2 temperature in both seasons. In spring, increased leaf extensionand SER in elevated CO2 were linked with increased ECL, %P andfinal leaf size whilst in summer all were reduced. In high temperature,leaf extension, SER, %P and final leaf size were reduced inboth seasons. In elevated CO2 temperature, leaf extension,SER, %P, and ECL increased in spring, but final leaf size remainedunaltered, whilst in summer all decreased. Mid-morning waterpotential did not differ with CO2 or temperature treatments.Leaf turgor pressure increased in elevated CO2 in spring andremained similar to the control in summer whilst solute potentialdecreased in spring and increased in summer. Contrasting seasonalgrowth responses of L. perenne in response to elevated CO2 andtemperature suggests pasture management may change in the future.The grazing season may be prolonged, but whole season productivitymay become more variable than today. Key words: Lolium perenne, ryegrass, CO2 and temperature, leaf extension, cell wall rheology  相似文献   

4.
Using open-top chambers, four prominent species (Lolium perenne,Cynosurus cristatus, Holcus lanatusandAgrostis capillaris) ofIrish neutral grasslands were grown at ambient and elevated(700 µmol mol-1) atmospheric CO2for a period of 8 months.The effects of interspecific competition on plant responsesto CO2enrichment were investigated by growing the species ina four-species mixture. The results indicate that the speciesdiffer in their ability to respond to elevated CO2. CO2-enrichmenthad the largest effect on the biomass production ofH. lanatus,but substantial stimulations in biomass production were alsofound for the other three species. The CO2-stimulation of biomassproduction forH. lanatuswas accompanied by increased tillering.In addition, reductions in specific leaf area were found forall species. Exposure to elevated CO2increased the communitybiomass of the four-species mixture. This increase can be mainlyattributed to a significant increase in the biomass ofH. lanatusatelevated CO2. No statistically-significant changes in speciescomposition of community biomass were found. However,H. lanatusdidincrease its share of community biomass at each of the harvests,with the other three species, mainlyL. perenne, suffering lossesin their shares at elevated CO2. The results show that: (1)the species varied in their response to elevated CO2; and (2)species composition in natural plant communities is likely tochange at elevated CO2, but these changes may occur rather slowly.Much longer periods of exposure to elevated atmospheric CO2maybe required to permit detection of significant changes in speciescomposition.Copyright 1998 Annals of Botany Company Carbon dioxide (CO2) enrichment, competition, Lolium perenne,Cynosurus cristatus, Holcus lanatus, Agrostis capillaris, biomass, specific leaf area, tillering.  相似文献   

5.
Seedlings of perennial ryegrass (Lolium perenne L. cv. Parcour)and white clover (Trifolium repens L. cv. Karina) grown at fivedifferent plant densities were exposed to ambient (390 ppm)and elevated (690 ppm) CO2 concentrations. After 43 d the effectsof CO2 enrichment and plant density on growth of shoot and root,nitrogen concentration of tissue, and microbial biomass carbon(Cmic) in soil were determined. CO2 enrichment of Lolium perenneincreased shoot growth on average by 17% independent of plantdensity, while effects on root biomass ranged between -4% and+ 107% due to an interaction with plant density. Since tilernumber per plant was unaffected by elevated CO2, the small responseof shoot growth to CO2 enrichment was atributed to low sinkstrength. A significant correlation between nitrogen concentrationof total plant biomass and root fraction of total plant drymatter, which was not changed by CO2 enrichment, indicates thatnitrogen status of the plant controls biomass partitioning andthe effect of CO2 enrichment on root growth. Effects of elevatedCO2 and plant density on shoot and root growth of Trifoliumrepens were not significantly interacting and mean CO2-relatedincrease amounted to 29% and 66%, respectively. However, growthenhancement due to elevated CO2 was strongest when leaf areaindex was lowest. Total amounts of nitrogen in shoots and rootswere bigger at 690 ppm than at 390 ppm CO2. There was a significantincrease in Cmic in experiments with both species whereas plantdensity had no substantial effect. Key words: CO2 enrichment, intraspecific competition, biomass partitioning, Lolium perenne, Trifolium repens, grassland  相似文献   

6.
Two common tallgrass prairie species, Andropogon gerardii, thedominant C4 grass in this North American grassland, and Salviapitcheri, a C3 forb, were exposed to ambient and elevated (twiceambient) CO2 within open-top chambers throughout the 1993 growingseason. After full canopy development, stomatal density on abaxialand adaxial surfaces, guard cell length and specific leaf mass(SLM; mg cm-2) were determined for plants in the chambers aswell as in adjacent unchambered plots. Record high rainfallamounts during the 1993 growing season minimized water stressin these plants (leaf xylem pressure potential was usually >-1·5 MPa in A. gerardii) and also minimized differencesin water status among treatments. In A. gerardii, stomatal densitywas significantly higher (190 ± 7 mm-2; mean ±s.e.) in plants grown outside of the chambers compared to plantsthat developed inside the ambient CO2 chambers (161 ±5 mm-2). Thus, there was a significant 'chamber effect' on stomataldensity. At elevated levels of CO2, stomatal density was evenlower (P < 0·05; 121 ± 5 mm-2). Most stomatawere on abaxial leaf surfaces in this grass, but the ratio ofadaxial to abaxial stomatal density was greater at elevatedlevels of CO2. In S. pitcheri, stomatal density was also significantlylower when plants were grown in the open-top chambers (235 ±10 mm-2 outside vs. 140 ± 6 mm-2 in the ambient CO2 chamber).However, stomatal density was greater at elevated CO2 (218 ±12 mm-2) compared to plants from the ambient CO2 chamber. Theratio of stomata on adaxial vs. abaxial surfaces did not varysignificantly in this herb. Guard cell lengths were not significantlyaffected by growth in the chambers or by elevated CO2 for eitherspecies. Growth within the chambers resulted in lower SLM inS. pitcheri, but CO2 concentration had no effect. In A. gerardii,SLM was lower at elevated CO2. These results indicate that stomataland leaf responses to elevated CO2 are species specific, andreinforce the need to assess chamber effects along with treatmenteffects (CO2) when using open-top chambers.Copyright 1994, 1999Academic Press Andropogon gerardii, elevated CO2, Salvia pitcheri, stomatal density, tallgrass prairie  相似文献   

7.
The effects of CO2 on dormancy and germination were examinedusing seeds of cocklebur (Xanthium pennsylvanicum Wallr.) andgiant foxtail (Setaria faberi Herrm.). The rate of germinationof the giant foxtail seeds as well as cocklebur was promotedby exogenously applied CO2 at a concentration of 30 mmol mol-1regardless of the sowing conditions. However, seeds which failedto germinate in the presence of CO2, entered a secondary phaseof dormancy under unfavourable germination conditions. If CO2was applied to seeds under conditions such as water stress imposedwith a 200 mol m-3 mannitol solution, a hypoxic atmosphere of100 mmol mol-1 O2 or a treatment of 0·1 mol m-3 ABA,development of secondary dormancy was accelerated. These contrastedeffects of CO2 were observed in ecological studies. Under naturalfield conditions germination of buried giant foxtail seeds respondedpositively to CO2 during a period of release from primary dormancyfrom Feb. to May, but CO2 accelerated secondary dormancy commencingin early Jun. In other words, in the presence of CO2, both theenvironmental conditions and the germination states of the seedsclearly showed secondary dormancy-inducing effects. Thus, itseems that CO2 has contrasted effects on regulation of dormancyand germination of seeds depending on the germination conditions.Copyright1995, 1999 Academic Press Xanthium pennsylvanicum, cocklebur, Setaria faberi, giant foxtail, CO2, water stress, hypoxia, ABA, germination, secondary dormancy  相似文献   

8.
Net photosynthetic rates per unit ground area for plant standsof Solanum melongena L. var. esculentum (aubergine) and Amaranthuscaudatus L. var. edulis (grain amaranth) were measured over10 min intervals in an airtight, glass, controlled-environmentcabinet for a range of light flux densities provided by thediurnal variation in daylight. Light response curves for photosynthesisof stands, grown at ambient CO2 concentration, were definedat 400, 800 and 1200 vpm CO2. Light compensation points for these stands were around 20-30J m-2 s-1 and decreased slightly at higher CO2 concentrations.For aubergine, a C3 species, the short-term effects of CO2 enrichmentwere to increase the initial slope as well as the asymptoteof the light response curve, reducing light saturation at moderateto high light flux densities; but for amaranthus, a C4 species,saturation was less apparent and CO2 enrichment scarcely increasedphotosynthesis except at light flux densities above 150 J m-2s-1. The canopies intercepted 93-98% of incident light. The efficiencyof utilization of intercepted light in photosynthesis (µgCO2 J-1) increased from zero at the light compensation pointto a maximum at an optimum light flux density of about 100 Jm-2 s-1 (the optimum rose a little with CO2 enrichment) anddecreased slightly with further increase in light. Maximum utilizationefficiencies at 400 vpm CO2 were 8-9 µg CO2 J-1. Enrichmentto 1200 vpm did not affect the peak utilization efficiency ofthe C4 amaranthus, but increased that aubergine to 12·2µg CO2 J-1 (equivalent to some 14% when using the heatof combustion of plant dry matter to convert to the dimensionlessform). This is among the highest recorded efficiencies of lightutilization for stands, and relates to the exceptionally favourableenvironment, with optimal control of CO2 concentration, humidity,temperature, water supply and mineral nutrition.Copyright 1993,1999 Academic Press Amaranthus caudatus L. var. edulis, Solanum melongena L. var. esculentum, canopy photosynthesis, CO2 enrichment, light interception, light utilization, photosynthetic efficiency  相似文献   

9.
Respiration rates of Lemna gibba fronds and Orobanche aegyptiacaand Lactuca sativa seedlings, were measured with a Clark typeoxygen electrode in the presence or absence of a carbon-dioxideabsorber (KOH) in the gas phase. Measured respiration ratesin the presence of KOH were 17-34% higher than in its absence.The suppression of respiration by high CO2 concentrations, [CO2],was confirmed by parallel studies of CO2 efflux, made by infraredgas spectrometry. These results are consistent with other reportsof reduced rates of respiration at high [CO2]. Measurements of respiration quotients of Lemna and Lactuca weremade at 0 and 100 Pa [CO2]. Results did not support the possibilityof induced dark fixation of CO2 at the ambient atmospheric [CO2]predicted for the next century (35-100 Pa). It is concluded that the numerous reports of respiration measurementsmade with O2 electrodes, in the absence of a CO2 absorber, maycontain a significant errorCopyright 1993, 1999 Academic Press Lemna gibba, Lactuca sativa, Orobanche aegyptiaca, CO2 accumulation, O2 electrode, respiration, dark CO2 fixation, respiration quotient, atmospheric CO2  相似文献   

10.
Physiology and Growth of Wheat Across a Subambient Carbon Dioxide Gradient   总被引:5,自引:0,他引:5  
Two cultivars of wheat (Triticum aestivum L.), 'Yaqui 54' and'Seri M82', were grown along a gradient of daytime carbon dioxideconcentrations ([CO2]) from near 350-200 µmol CO2 mol-1air in a 38 m long controlled environment chamber. Carbon dioxidefluxes and evapotranspiration were measured for stands (plantsand soil) in five consecutive 7·6-m lengths of the chamberto determined potential effects of the glacial/interglacialincrease in atmospheric [CO2] on C3 plants. Growth rates andleaf areas of individual plants and net assimilation per unitleaf area and daily (24-h) net CO2 accumulation of wheat standsrose with increasing [CO2]. Daytime net assimilation (PD, mmolCO2 m-2 soil surface area) and water use efficiency of wheatstands increased and the daily total of photosynthetic photonflux density required by stands for positive CO2 accumulation(light compensation point) declined at higher [CO2]. Nighttimerespiration (RN, mmol CO2 m-2 soil surface) of wheat, measuredat 369-397 µmol mol-1 CO2, apparently was not alteredby growth at different daytime [CO2], but RN /PD of stands declinedlinearly as daytime [CO2] and PD increased. The responses ofwheat to [CO2], if representative of other C3 species, suggestthat the 75-100% increase in [CO2] since glaciation and the30% increase since 1800 reduced the minimum light and waterrequirements for growth and increased the productivity of C3plants.Copyright 1993, 1999 Academic Press Atmospheric carbon dioxide, carbon accumulation, evapotranspiration, light compensation point, net assimilation, respiration, Triticum aestivum, water use efficiency, wheat  相似文献   

11.
Tomato plants were grown in solution culture in a controlledenvironment at 20 ?C with a 12 h photoperiod of 400 µmolquanta m–2 s–1 PAR with either normal ambient CO2,approximately 340 vpm, or with 1000 vpm CO2. The short- andlong-term effects of CO2 enrichment on photosynthesis were determinedtogether with the levels of ribulose-1, 5-bisphosphate carboxylase(RuBPco) E.C. 4.1.1.39 [EC] protein and activity throughout leafdevelopment of the unshaded 5th leaf above the cotyledons. Thehigh CO2 concentration during growth did not appreciably affectthe rate of leaf expansion or final leaf area but did increasethe fresh weight per unit area of leaf. With short-term CO2enrichment, i.e. only during the photosynthesis measurements,the light-saturated photosynthetic rate (Pmax) of young leavesdid not increase while those reaching full expansion more thandoubled their net rate of CO2 fixation. However, with longerterm CO2 enrichment, i.e. growing the crop in high CO2, theplants did not maintain this photosynthetic gain. While theCO2 concentration during growth did not affect the peak in Pmaxmeasured in 300 vpm CO2 or Pmax in 1000 vpm CO2, RuBPco proteinor its activity, the subsequent ontogenetic decline in theseparameters was greatly accelerated by the high CO2 treatment.Compared with plants grown in normal ambient CO2 the high CO2grown leaves, when almost fully expanded, contained only approximatelyhalf as much RuBPco protein and Pmax in 300 vpm CO2 and Pmaxin1000 vpm CO2 were similarly reduced. The loss of RuBPco proteinmay be a major factor associated with the accelerated fall inPmax since it was close to that predicted from the amount andkinetics of RuBPco assuming RuBP saturation. In the oldest leavesexamined grown in high CO2 additional factors may be limitingphotosynthesis since RuBPco kinetics marginally overestimatedPmax in 300 vpm CO2 and the initial slope of photosynthesisin response to intercellular CO2 was also less than expectedfrom the extractable RuBPco. Key words: Lycopersicon esculentum (Mill.) cv. Findon Cross, CO2 enrichment, acclimation to high CO2, photosynthesis, RuBPco protein and activity  相似文献   

12.
Large turves from a ryegrass/white clover based pasture wereexposed to 350 or 700 µl l-1 CO2 for a period of 217 din controlled environment rooms. The temperature was increasedduring the experiment from 10/4 °C day/night to 16/10 °Cand finally to 22/16 °C. The turves were cut to a heightof 2 cm at intervals and growth rates calculated from the regrowth. Growth rates over the duration of the experiment were 8% higherat elevated CO2; the difference between CO2 treatments beingstatistically significant only at the highest temperature. Speciescomposition of the turves at 350 µl l-1 CO2 showed seasonalchanges similar to those measured in the field. The effect ofCO2 was to exaggerate the normal decline of ryegrass at warmertemperatures and increase the proportion of white clover. About30% of the total growth rate was from other species (notablyBromus hordeaceus L. and Poa trivialis L.) and this fractionwas similar between CO2 levels. Root mass was measured at theend of the experiment and was 50% higher at elevated CO2. The modest above-ground response to CO2 was a result of CO2stimulation occurring only at the higher temperature. Becauseof the CO2 x temperature interaction, the effect of CO2 in temperateregions will be seasonal. When this is matched with seasonalgrowth patterns of herbage species, a complex response of pasturecommunities to CO2 is possible. In our case, white clover wasgrowing most strongly during the period of greatest CO2 stimulationand consequently its growth was enhanced more than that of ryegrass;however, the cooler season growth of ryegrass gives it a temporalniche which is little affected by CO2 and this may be importantfor ryegrass stability if it is an inherently poor responderto CO2. The results indicate that for temperate species theeffects of competition at elevated CO2 cannot be easily determinedfrom experiments conducted at a single temperature.Copyright1994, 1999 Academic Press CO2 enrichment, seasonal growth, species composition, turves, Trifolium repens L., Lolium perenne L., climate change  相似文献   

13.
The carbon balance and changes in leaf structure in Clusia minorL., were investigated in controlled conditions with regardto nitrogen supply and responses to low and high photosyntheticallyactive radiation (PAR). Nitrogen deficiency and high PAR ledto the production of smaller leaves with higher specific leafdry weight (SLDW) and higher leaf water content, but with lowerchlorophyll content. Nitrogen and PAR levels at growth alsoaffected CO2 exchange and leaf area. In – N conditions,total daily net CO2 uptake and leaf area accumulation were slightlyless for high-PAR-grown plants. In contrast, high-PAR-grownplants supplied with nitrogen showed about a 4-fold higher totaldaily CO2 uptake and about twice the total leaf area of low-PAR-grownplants. Although total daily net CO2 uptake of +N plants wasonly slightly higher than –N plants under the low PARlevel, –N plants produced almost three times more leafarea but with lower SLDW. Under well-watered conditions, low-PAR-grownplants showed only CO2 evolution during the night and malicacid levels decreased. However, there was considerable night-timeaccumulation of titratable protons due to day/night changesin citric acid levels. High-PAR-grown plants showed net CO2uptake, malate and citrate accumulation during the dark period.However, most of the CO2 fixed at night probably came from respiratoryCO2. Positive night-time CO2 exchange was readily observed forlow-PAR-grown plants when they were transferred to high PARconditions or when they were submitted to water stress. In plantsgrown in high and low PAR, CAM leads to a substantial increasein daily water use efficiency for water-stressed plants, althoughtotal net CO2 uptake decreased.  相似文献   

14.
Xie, Ailiang, Fiona Rankin, Ruth Rutherford, and T. DouglasBradley. Effects of inhaledCO2 and added dead space on idiopathic central sleep apnea. J. Appl.Physiol. 82(3): 918-926, 1997.We hypothesizedthat reductions in arterial PCO2 (PaCO2) below the apnea threshold play akey role in the pathogenesis of idiopathic central sleep apnea syndrome(ICSAS). If so, we reasoned that raisingPaCO2 would abolish apneas in thesepatients. Accordingly, patients with ICSAS were studied overnight onfour occasions during which the fraction of end-tidalCO2 and transcutaneous PCO2 were measured: during room airbreathing (N1), alternating room airand CO2 breathing(N2),CO2 breathing all night(N3), and addition of dead space viaa face mask all night (N4).Central apneas were invariably preceded by reductions infraction of end-tidal CO2. Bothadministration of a CO2-enrichedgas mixture and addition of dead space induced 1- to 3-Torr increasesin transcutaneous PCO2, whichvirtually eliminated apneas and hypopneas; they decreased from43.7 ± 7.3 apneas and hypopneas/h onN1 to 5.8 ± 0.9 apneas andhypopneas/h during N3(P < 0.005), from 43.8 ± 6.9 apneas and hypopneas/h during room air breathing to 5.9 ± 2.5 apneas and hypopneas/h of sleep duringCO2 inhalation during N2 (P < 0.01), and to 11.6% of the room air level while the patients werebreathing through added dead space duringN4 (P < 0.005). Because raisingPaCO2 through two different meansvirtually eliminated central sleep apneas, we conclude that centralapneas during sleep in ICSA are due to reductions inPaCO2 below the apnea threshold.

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15.
Effects of atmospheric CO2 enrichment to a level above 600 parts10–6 on leaf and canopy gas exchange characteristics wereinvestigated in Trifolium repens, using an open system for gasexchange measurement. The cuvettes of the system served as growthchambers, allowing continuous measurement in a semi-controlledenvironment of ±350 and ±600 parts 10–6CO2, respectively. Carbon balance data were compared with cropyield and effects on the canopy level were compared with measuredleaf responses of photosynthesis and stomatal behaviour. Photosyntheticstimulation by high CO2 was stronger at the canopy level (103%on average) than for leaves (90% in full light), as a consequenceof accelerated foliage area development. The latter increasedabsolute water consumption by 16%, despite strong stomatal closure.The overall result was a 63% improvement in canopy water useefficiency (WUE), while leaf WVE increased almost 3-fold insaturating light. The stomatal response was such that, whilethe internal CO2 concentration in the leaf, ch increased withrising atmospherical CO2 concentration, ca, ci/ca was somewhatdecreased. Total canopy resistance, Rc, was generally lowerat high CO2 levels, despite higher leaf resistance. Higher canopyCO2 loss at night and faster light extinction in a larger-sizedhigh CO2 canopy were major drawbacks which prevented a furtherincrease in dry matter production (the harvest index was increasedby a factor 1.83). Key words: CO2 enrichment, canopy CO2 exchange, carbon balance, water use efficiency, leaf and canopy resistance  相似文献   

16.
Agrostis capillaris L.4 Festuca vivipara L. and Poa alpinaL.were grown in outdoor open-top chambers at either ambient (340µmol mol–1) or elevated (680 µmol–1)CO2 for periods from 79 to 189 d. Under these conditions thereis increased growth of A. caplllarls and P. alpina, but reducedgrowth of F. vivipara. Nutrient use efficiency, nutrient productivity(total plant dry weight gain per unit of nutrient) and nutrientallocation of all three grass species were measured in an attemptto understand their individual growth responses further andto determine whether altered nutrient-use efficiencies and productivitiesenable plants exposed to an elevated atmospheric CO2 environmentto overcome potential limitations to growth imposed by soilfertility. Total uptake of nutrients was, in general, greater in plantsof A. capillaris and P. alpina (with the exception of N andK in the latter) when grown at 680 µmol mol–1 CO2.In F. vivipara, however, uptake was considerably reduced inplants grown at the higher CO2 concentration. Overall, a doubling of atmospheric CO2 concentration had littleeffect on the nutrient use efficiency or productivity of A.capillaris. Reductions in tissue nutrient content resulted fromincreased plant growth and not altered nutrient use efficiency.In P. alpina, potassium, magnesium and calcium productivitieswere significantly reduced and photosynthetic nitrogen and phosphorususe efficiencies were doubled at elevated CO2 with respect toplants grown at ambient CO2 F. vivipara grown for 189 d showedthe most marked changes in nutrient use efficiency and nutrientproductivity (on an extracted dry weight basis) when grown atelevated CO2, F. vivipara grown at elevated CO2 however, showedlarge increases in the ratio of non-structural carbohydrateto nitrogen content of leaves and reproductive tissues, indicatinga substantial imbalance between the production and utilizationof assimilate. Key words: Nutrient, allocation, nutrient use efficiency, grasses, nutrient productivity, elevated CO2, cliniate change  相似文献   

17.
To examine the effects of a doubled atmospheric CO2 concentrationand other aspects of global climate change on a common CAM speciesnative to the Sonoran Desert, Agave deserti was grown under370 and 750 µmol CO2 mol–1 air and gas exchangewas measured under various environmental conditions. Doublingthe CO2 concentration increased daily net CO2 uptake by 49%throughout the 17 months and decreased daily transpiration by24%, leading to a 110% increase in water-use efficiency. Underthe doubled CO2 concentration, the activity of ribulose-1,5-bisphosphatecarboxylase/oxygenase (Rubisco) was 11% lower, phosphoenolpyruvatecarboxylase was 34% lower, and the activated:total ratio forRubisco was 25% greater than under the current CO2 concentration.Less leaf epicuticular wax occurred on plants under the doubledCO2 concentration, which decreased the reflectance of photosyntheticphoton flux (PPF); the chlorophyll content per unit leaf areawas also less. The enhancement of daily net CO2 uptake by doublingthe CO2 concentration increased when the PPF was decreased below25 mol m–2 d–1 when water was withheld, and whenday/night temperatures were below 17/12 C. More leaves, eachwith a greater surface area, were produced per plant under thedoubled CO2 concentration. The combination of increased totalleaf surface area and increased daily net CO2 uptake led toan 88% stimulation of dry mass accumulation under the doubledCO2 concentration. A rising atmospheric CO2 concentration, togetherwith accompanying changes in temperature, precipitation, andPPF, should increase growth and productivity of native populationsof A. deserti. Key words: Crassulacean acid metabolism, gas exchange, global climate change, Sonoran Desert  相似文献   

18.
Pascopyrum smithii (C3) andBouteloua gracilis (C4) are importantforage grasses native to the Colorado shortgrass steppe. Thisstudy investigated photosynthetic responses of these grassesto long-term CO2enrichment and temperature in relation to leafnonstructural carbohydrate (TNC) and [N]. Glasshouse-grown seedlingswere transferred to growth chambers and grown for 49 d at twoCO2concentrations (380 and 750 µmol mol-1) at 20 and 35°C, and two additional temperatures (25 and 30 °C) at750 µmol mol-1CO2. Leaf CO2exchange rate (CER) was measuredat a plant's respective growth temperature and at two CO2concentrationsof approx. 380 and 700 µmol mol-1. Long-term CO2enrichmentstimulated CER in both species, although the response was greaterin the C3,P. smithii . Doubling the [CO2] from 380 to 750 µmolmol-1stimulated CER ofP. smithii slightly more in plants grownand measured at 30 °C compared to plants grown at 20, 25or 35 °C. CO2-enriched plants sometimes exhibited lowerCER when compared to ambient-grown controls measured at thesame [CO2], indicating photosynthetic acclimation to CO2growthregime. InP. smithii , such reductions in CER were associatedwith increases in TNC and specific leaf mass, reductions inleaf [N] and, in one instance, a reduction in leaf conductancecompared to controls. InB. gracilis , photosynthetic acclimationwas observed more often, but significant changes in leaf metabolitelevels from growth at different [CO2] were generally less evident.Temperatures considered optimal for growth (C3: 20 °C; C4:35 °C) sometimes led to CO2-induced accumulations of TNCin both species, with starch accumulating in the leaves of bothspecies, and fructans accumulating only inP. smithii. Photosynthesisof both species is likely to be enhanced in future CO2-enrichedand warmer environments, although responses will sometimes beattenuated by acclimation. Acclimation; blue grama (Bouteloua gracilis (H.B.K.) Lag ex Steud.); leaf nitrogen concentration; nonstructural carbohydrates; photosynthesis; western wheatgrass (Pascopyrum smithii (Rydb.) Love)  相似文献   

19.
The effect of salinity on light and dark CO2,-fixation was determinedin cells of A triplex portulacoides and tomato (Lycopersiconesculenturn Mill.) grown in culture. CO2,-fixation of tomatocells was also determined in cultures adapted to mannitol andpolyethylene glycol (PEG). Salinity up to 400 mM NaCI in thecase of A triplex and up to 50 mM in the case of tomato enhancedthe rate of light-induced CO2,-flxation in unadapted cells.Higher salt concentrations led to a marked decline in CO2-flxationin both species. In salt-adapted A triplex cells no declinein the rate of light CO2,-flxation was seen even at 500 mM NaCl.Dark CO2,-fixation was approximately 40% and 80% of the lightfixation in control cell cultures of A triplex and tomato, respectively.No enhancement in dark CO2,-flxation was seen as salinity wasincreased, but a decline was found at similar salt concentrationsthat decreased fixation in the light. Mannitol-and PEG-adaptedtomato cells fixed CO2, at somewhat lower rates than the controlcells in the light but not in the dark. Key words: Salinity, CO2-fixation, cell cultures, Atriplex, tomato  相似文献   

20.
Agrostis capillaris L.5, Festuca vivipara L. and Poaalpina L.were grown in outdoor open-top chambers at either ambient (340 3µmol mol–1) or elevated (6804µmol mol–1)concentrations of atmospheric carbon dioxide (CO2) for periodsfrom 79–189 d. Photosynthetic capacity of source leaves of plants grown atboth ambient and elevated CO2 concentrations was measured atsaturating light and 5% CO2. Dark respiration of leaves wasmeasured using a liquid phase oxygen electrode with the buffersolution in equilibrium with air (21% O2, 0.034% CO2). Photo-syntheticcapacity of P. alpina was reduced by growth at 680 µmolmol–1 CO2 by 105 d, and that of F. vivipara was reducedat 65 d and 189 d after CO2 enrichment began, suggesting down-regulationor acclimation. Dark respiration of successive leaf blades ofall three species was unaltered by growth at 680 relative to340 µmol mol–1 CO2. In F. vivipara, leaf respirationrate was markedly lower at 189 d than at either 0 d or 65 d,irrespective of growth CO2 concentration. There was a significantlylower total non-structural carbohydrate (TNC) concentrationin the leaf blades and leaf sheaths of A. capillaris grown at680µmol mol–1 CO2. TNC of roots of A. capillariswas unaltered by CO2 treatment. TNC concentration was increasedin both leaves and sheaths of P. alpina and F. vivipara after105 d and 65 d growth, respectively. A 4-fold increase in thewater-soluble fraction (fructan) in P. alpina and in all carbohydratefractions in F. vivipara accounted for the increased TNC content. In F. vivipara the relationship between leaf photosyn-theticcapacity and leaf carbohydrate concentration was such that therewas a strong positive correlation between photosynthetic capacityand total leaf N concentration (expressed on a per unit structuraldry weight basis), and total nitrogen concentration of successivemature leaves reduced with time. Multiple regression of leafphotosynthetic capacity upon leaf nitrogen and carbohydrateconcentrations further confirmed that leaf photosynthetic capacitywas mainly determined by leaf N concentration. In P. alpina,leaf photosynthetic capacity was mainly determined by leaf CHOconcentration. Thus there is evidence for down-regulation ofphotosynthetic capacity in P. alpina resulting from increasedcarbohydrate accumulation in source leaves. Leaf dark respiration and total N concentration were positivelycorrelated in P. alpina and F. vivipara. Leaf dark respirationand soluble carbohydrate concentration of source leaves werepositively correlated in A. capillaris. Changes in source leafphotosynthetic capacity and carbohydrate concentration of plantsgrown at ambient or elevated CO2 are discussed in relation toplant growth, nutrient relations and availability of sinks forcarbon. Key words: Elevated CO2, Climate change, grasses, carbohydrate partitioning, photosynthesis, respiration  相似文献   

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