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1.
Photosynthesis and Plant Growth at Elevated Levels of CO2   总被引:5,自引:0,他引:5  
In this review, we discuss the effects of elevated CO2 levelson photosynthesis in relation to the whole plant growth in terrestrialhigher C3 plants. Short-term CO2 enrichment stimulates the rateof photosynthesis. Plant mass is also enhanced by CO2 enrichment.However, the effects of long-term CO2 enrichment on photosynthesisare variable. Generally, the prolonged exposure to CO2 enrichmentreduces the initial stimulation of photosynthesis in many species,and frequently suppresses photosynthesis. These responses areattributed to secondary responses related to either excess carbohydrateaccumulation or decreased N content rather than direct responsesto CO2. Accumulation of carbohydrates in leaves may lead tothe repression of photosynthetic gene expression and excessstarch seems to hinder CO2 diffusion. Therefore, the specieswhich have the sink organs for carbohydrate accumulation donot show the suppression of photosynthesis. The suppressionof photosynthesis by CO2 enrichment is always associated withdecreases in leaf N and Rubisco contents. These decreases arenot due to dilution of N caused by a relative increase in theplant mass but are the result of a decrease in N allocationto leaves at the level of the whole plant, and the decreasein Rubisco content is not selective. Leaf senescence and plantdevelopment are also accelerated by CO2 enrichment. However,they are independent of each other in some species. Thus, variousresponses to CO2 observed at the level of a single leaf resultfrom manifold responses at the level of the whole plant grownunder conditions of CO2 enrichment. (Received July 8, 1999; Accepted August 12, 1999)  相似文献   

2.
Single, seed-grown plants of ryegrass (Lolium perenne L. cv.Melle) were grown for 49 d from the early seedling stage ingrowth cabinets at a day/night temperature of 20/15 C, witha 12 h photoperiod, and a CO2 concentration of either 340 or680µI 1–1 CO2. Following complete acclimation tothe environmental regimes, leaf and whole plant CO2 effluxesand influxes were measured using infra-red gas analysis techniques.Elevated CO2 increased rates of photosynthesis of young, fullyexpanded leaves by 35–46% and of whole plants by morethan 50%. For both leaves and whole plants acclimation to 680µI–1 CO2 reduced rates of photosynthesis in bothCO2 regimes, compared with plants acclimated to 340µll–1. There was no significant effect of CO2 regime onrespiration rates of either leaves or whole plants, althoughleaves developed in elevated CO2 exhibited generally lower ratesthan those developed in 340µI I–1 CO2. Initially the seedling plants in elevated CO2 grew faster thantheir counterparts in 340µI I–1 CO2, but this effectquickly petered out and final plant weights differed by onlyc. 10%. Since the total area of expanded and unexpanded laminaewas unaffected by CO2 regime, specific leaf area was persistently13–40% lower in elevated CO2 while, similarly, root/shootratio was also reduced throughout the experiment. Elevated CO2reduced tissue nitrogen contents of expanded leaves, but hadno effect on the nitrogen contents of unexpanded leaves, sheathsor roots. The lack of a pronounced effect of elevated CO2 on plant growthwas primarily due to the fact that CO2 concentration did notinfluence tiller (branch) numbers. In the absence of an effecton tiller numbers, any possible weight increment was restrictedto the c. 2.5 leaves of each tiller. The reason for the lackof an effect on tillering is not known. Key words: Lolium perenne, ryegrass, elevated CO2, photosynthesis, respiration, growth, development  相似文献   

3.
When Chlorella vulgaris llh cells which had been grown in airenriched with 2–4% CO2 (high-CO2 cells) were bubbled withair containing ca. 400 ppm CO2, illumination at an intensityas low as the light compensation point (350 lux) was sufficientto increase the photosynthetic rate under limiting CO2 concentrations.The same treatment induced carbonic anhydrase (CA) activity.The induction of CA activity and increase in photosyntheticrate at limiting CO2 concentrations were observed in the presenceof 10 µM DCMU which completely inhibits photosynthesis.These results indicate that photosynthetic electron transportis not involved in CA induction in Chlorella vulgaris llh cells.The parallelism between the changes in CA activity and the rateof photosynthesis under limiting CO2 concentrations agree withthe previous conclusion that the transport of CO2 from outsideto the site of CO2 fixation is facilitated by CA and hence lowersthe apparent Km(CO2) for photosynthesis. (Received December 24, 1982; Accepted May 10, 1983)  相似文献   

4.
In a study on metabolic consumption of photosynthetic electronsand dissipation of excess light energy under water stress, O2and CO2 gas exchange was measured by mass spectrometry in tomatoplants using 18O2 and 13CO2. Under water stress, gross O2 evolution(EO), gross O2 uptake (UO), net CO2 uptake (PN), gross CO2 uptake(TPS), and gross CO2 evolution (EC) declined. The ratio PN/EOfell during stress, while the ratios UO/EO and EC/TPS rose.Mitochondrial respiration in the light, which can be measureddirectly by 12CO2 evolution during 13CO2 uptake at 3000 µll–1 13CO2, is small in relation to gross CO2 evolutionand CO2 release from the glycolate pathway. It is concludedthat PSII, the Calvin cycle and mitochondrial respiration aredown-regulated under water stress. The percentages of photosyntheticelectrons dissipated by CO2 assimilation, photorespiration andthe Mehler reaction were calculated: in control leaves morethan 50 % of the electrons were consumed in CO2 assimilation,23 % in photorespiration and 13 % in the Mehler reaction. Undersevere stress the percentages of electrons dissipated by CO2assimilation and the Mehler reaction declined while the percentageof electrons used in photorespiration doubled. The consumptionof electrons in photorespiration may reduce the likelihood ofdamage during water deficit.  相似文献   

5.
Wheat plants were grown in a controlled environment with daytemperatures of 18 ?C and with 500 µ Einsteins m–28–1 of photosynthetically active radiation for 16 h. Beforeanthesis and 2 to 3 weeks after, rates of net photosynthesiswere measured for leaves in 2 or 21% O2 containing 350 vpm CO2at 13, 18, 23, and 28 ?C and with 500 µEinsteins m–2s–1 of photosynthetically active radiation. Also, underthe same conditions of light intensity and temperature, therates of efflux of CO2 into CO2-free air were measured and,for mature flag leaves 3 to 4 weeks after anthesis, gross andnet photosynthesis from air containing 320 vpm 14CO2 of specificactivity 39?7 nCi µmol–1. When the O2 concentration was decreased from 21 to 2% (v/v)the rate of net photosynthesis increased by 32 per cent at thelowest temperature and 54 per cent at the highest temperature.Efflux of CO2 into CO2-free air ranged from 38 per cent of netphotosynthesis at 13 ?C to 86 per cent at 28 ?C. Gross photosynthesis,measured by the 14C assimilated during 40 s, was greater thannet photosynthesis by some 10 per cent at 13 ?C and 17 per centat 28 ?C. These data indicate that photorespiration was relativelygreater at higher temperatures.  相似文献   

6.
Effects of Sodium on Photosynthesis in Panicum coloratum   总被引:2,自引:0,他引:2  
Foliar application of NaCl to sodium-deficient Panicum coloratumstimulated photosynthesis, as did application via roots. Effectsof sodium on photosynthetic responses to internal concentrationsof CO2 under different light intensities and initial productsof 14CO2 fixation suggested that CO2 fixation and aminationof oxalacetate were limited by sodium deficiency. 2 Present address: Institute for Life Science Research, NihonNohyaku Co., Ltd., Kawachi-Nagano, Osaka, 586 Japan.  相似文献   

7.
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   

8.
Photosynthetic rates of outdoor-grown soybean (Glycine max L.Merr. cv. Bragg) canopies increased with increasing CO2 concentrationduring growth, before and after canopy closure (complete lightinterception), when measured over a wide range of solar irradiancevalues. Total canopy leaf area was greater as the CO2 concentrationduring growth was increased from 160 to 990 mm3 dm–3.Photosynthetic rates of canopies grown at 330 and 660 mm3 CO2dm–3 were similar when measured at the same CO2 concentrationsand high irradiance. There was no difference in ribulose bisphosphatecarboxylase/oxygenase (rubisco) activity or ribulose 1,5-bisphosphate(RuBP) concentration between plants grown at the two CO2 concentrations.However, photosynthetic rates averaged 87% greater for the canopiesgrown and measured at 660 mm3 CO2 dm–3. A 10°C differencein air temperature during growth resulted in only a 4°Cleaf temperature difference, which was insufficient to changethe photosynthetic rate or rubisco activity in canopies grownand measured at either 330 or 660 mm3 CO2 dm–3. RuBP concentrationsdecreased as air temperature during growth was increased atboth CO2 concentrations. These data indicate that the increasedphotosynthetic rates of soybean canopies at elevated CO2 aredue to several factors, including: more rapid development ofthe leaf area index; a reduction in substrate CO2 limitation;and no downward acclimation in photosynthetic capacity, as occurin some other species. Key words: CO2 concentration, soybean, canopy photosynthesis  相似文献   

9.
Inorganic carbon transport during photosynthesis of cyanobacteriumAnabaena variabilis grown under ordinary air was investigatedby supplying 14CO2 or H14CO3 solution to three differentstrains. Both CO2 and HCO3 were accumulated within thealgal cells. In the cell suspension from which dissolved inorganiccarbon had been depleted by pre-illumination, CO2 was transportedand accumulated faster than HCO3. When the concentrationof HCO3 injected into the cell suspension of A. variabilisM3 was 25 times as high as that of CO2 (the expected ratio atequilibrium at pH 7.8), the initial rates of fixation of bothinorganic carbon species were practically the same. On the otherhand, when 14CO2 or H14CO3 was added under steady statephotosynthetic conditions, both carbon species were transportedat similar rates. The ratio of fixed to transported carbon measuredafter the initial 5 s was only 23–27% regardless of thecarbon species supplied. This percentage is much lower thanthat reported for Chlorella cells. 1 To whom reprint requests should be addressed (Received June 30, 1986; Accepted December 16, 1986)  相似文献   

10.
The response of photosynthesis in the flag leaf of rice (Oryzasativa) to elevated CO2 or reduced O2 was investigated relativeto other environmental factors using steady-state gas exchangetechniques. We found under moderate conditions of temperatureand photosynthetic flux density (PFD) (26°C and 700µmolquanta m–2s–1 similar to growth conditions) photosynthesisin the flag leaf of rice during heading and grain filling saturatedat near ambient levels of CO2, with a concomitant loss of O2sensitivity, when a high stomatal conductance was maintainedby high humidity (low vapor pressure deficit). Under 18°Cthere was near complete loss of O2 sensitivity of photosynthesisat normal ambient levels of CO2. This is in contrast to thelarge enhancement of photosynthesis by supra-atmospheric levelsof CO2 and sub-atmospheric levels of O2 by suppression of photorespirationwhen there is no limitation on utilizing the initial productof CO2 assimilation (triose-P) as predicted from Ribulose-l,5-bisphosphatecarboxylase/oxygenase (Rubisco) kinetic properties. Thus, lossof sensitivity to CO2 and O2 has been previously explained asa limitation on utilization of triose-P to synthesize carbohydrates.Under high PFD at 25°C, the rate of photosynthesis in ricedeclined over a period of hours around midday, while the intercellularlevels of CO2 remained constant suggesting a limitation on utilizationof photosynthate. Short-term fluctuations in climatic factorsincluding temperature, light and humidity could result in afeedback limitation on photosynthesis in rice which may be exacerbatedby rising CO2. (Received March 12, 1998; Accepted May 14, 1998)  相似文献   

11.
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   

12.
Rates of CO2 and HCC3 fixation in cells of various Chlorellaspecies in suspension were compared from the amounts of 14Cfixed during the 5 s after the injection of a solution containingonly 14CO2 or H14CO3. Results indicated that irrespectiveof the CO2 concentration during growth, Chlorella vulgaris 11h and C. miniata mainly utilized CO2, whereas C. vulgaris C-3,C. sp. K. and C. ellipsoidea took up HCO3 in additionto CO2. Cells of C. pyrenoidosa that had been grown with 1.5%CO2 (high-CO2 cells) mainly utilized CO2, whereas those grownwith air (low-CO2 cells) utilized HCO3 in addition toCO2. Cells that utilized HCO3 had carbonic anhydrase(CA) on their surfaces. The effects of Diamox and CA on the rates of CO2 and HCO3fixation are in accord with the inference that HCO3 wasutilized after conversion to CO2 via the CA located on the cellsurface. CA was found in both the soluble and insoluble fractions;the CA on the cell surface was insoluble. Independent of the modes of utilization, the apparent Km (NaHCO3)for photosynthesis was much lower in low-CO2 cells than in high-CO2ones. The fact that the CA in the soluble fraction in C. vulgarisC-3 was closely correlated with the Km(NaHCO3) indicates thatsoluble CA lowers the Km. 1 Dedicated to the late Professor Joji Ashida, one of the foundersand first president of the Japanese Society of Plant Physiologists. 4 On leave from Research and Production Laboratory of Algology,Bulgarian Academy of Sciences, Sofia. (Received September 14, 1982; Accepted March 1, 1983)  相似文献   

13.
Measuring the Canopy Net Photosynthesis of Glasshouse Crops   总被引:3,自引:0,他引:3  
A null balance method is described for measuring net photosynthesisof mature canopies of cucumber and other protected crops overperiods of 10 min in a single-span glasshouse (c. 9m x 18m inarea). Accuracy of control of the CO2 concentration in the greenhouseatmosphere is within ±10 vpm of the normal ambient level(c. 350 vpm). The amounts of CO2 used in canopy net photosynthesisare measured with linear mass flowmeters accurate to within±0.80g. The total errors incurred in measuring canopynet photosynthesis at an ambient CO2 level are estimated tobe of the order of ± 1·2% in bright light (350W m–2, PAR)and ±3·6% in dull light (100W m–2, PAR). Measurements of the rates of net photosynthesis of a maturecanopy of a cucumber crop were made at near-ambient CO2 concentrationsover a range (0–350 W m–2) of natural light fluxdensities. A model of light absorption and photosynthesis applicableto row crops was used to obtain a net photosynthesis versuslight response curve for the cucumber crop. At a light fluxdensity of 350 W m–2 the fitted value of canopy net photosynthesiswas 2.65 mg CO2 m–2s–1 (equivalent to over 95 kgCO2 ha–1h–1). The results are discussed in relationto the need for CO2 supplements to avoid depletion in both ventilatedand unventilated glasshouses during late spring and summer. Key words: Glasshouse crops, cucumber, measurement, canopy photosynthesis, light, CO2  相似文献   

14.
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   

15.
When Kalanchoë blossfeldiana Poelln. cv. Hikan plants werecultured in solutions containing 0.2, 1.0, 5.0 or 10 mM of nitrateor ammonium under a long-day photoperiod, some criteria of CAM(Crassulacean acid metabolism) photosynthesis (diurnal changesof CO2 uptake, titratable acidity and malate content in leaves)were examined. The plants absorbed 90 to 100% of CO2 duringthe light phase regardless of the supplied nitrogen. Nitrate-grownplants absorbed about 10% of CO2 during the dark phase regardlessof the supplied concentration, whereas in ammonium-grown plantsthe nocturnal CO2 uptake occurred at 0.2 mM, at which the plantsdepleted nitrogen and no uptake was observed at the higher concentrations.Changes of nocturnal increase in titratable acidity and malatecontent almost corresponded with the changes in the amount ofnocturnal CO2 uptake. Also K. daigremontiana plants suppliedwith 10 mM of ammonium had a less CAM-like pattern of diurnalCO2 uptake than the plants supplied with 10 mM of nitrate. Theseresults suggest that a sufficient supply of ammonium depressesCAM photosynthesis.  相似文献   

16.
The effect of carbonic anhydrase (CA) on time courses of photosynthetic14C incorporation in the presence of 14CO2 or NaH14CO3 was studiedwith cells of Chlamydomonas reinhardtii which had been grownunder ordinary air (low-CO2 cells) or air enriched with 4% CO2(high-CO2 cells). Experimental data obtained at 20°C andpH 8.0 suggested that the major form of inorganic carbon utilizedby high-CO2 cells was CO2, while that utilized by low-CO2 cellswas HCO3. The cell suspension showed CA activity which was comparableto that observed in the sonicate of cells. Both activities werehigher in low-CO2 cells than in high-CO2 cells. The mechanism by which HCO3 is utilized by low-CO2 cellsof C. reinhardtii is discussed. 3Present address: Department of Biology, Faculty of Science,University of Niigata, Niigata 950-21, Japan. (Received August 4, 1982; Accepted January 19, 1983)  相似文献   

17.
The photosynthetic response to CO2 concentration, light intensityand temperature was investigated in water hyacinth plants (Eichhorniacrassipes (Mart.) Solms) grown in summer at ambient CO2 or at10000 µmol(CO2) mol–1 and in winter at 6000 µmol(CO2)mol–1 Plants grown and measured at ambient CO2 had highphotosynthetic rate (35 µmo1(CO2) m–2 s–1),high saturating photon flux density (1500–2000) µmolm–2 s–1 and low sensitivity to temperature in therange 20–40 °C. Maximum photosynthetic rate (63 µmol(CO2)m–2 s–1) was reached at an internal CO2 concentrationof 800 µmol mol–1. Plants grown at high CO2 in summerhad photosynthetic capacities at ambient CO2 which were 15%less than for plants grown at ambient CO2, but maximum photosyntheticrates were similar. Photosynthesis by plants grown at high CO2and high light intensity had typical response curves to internalCO2 concentration with saturation at high CO2, but for plantsgrown under high CO2 and low light and plants grown under lowCO2 and high light intensity photosynthetic rates decreasedsharply at internal CO2 concentrations above 1000 µmol–1. Key words: Photosynthesis, CO2, enrichment, Eichhornia crassipes  相似文献   

18.
Mature first leaves of Phaseolus vulgaris L. were exposed tolow partial pressures of CO2 (7, 6 and 0 Pa CO2) for 24 h. Afterexposure of leaves to 6 Pa CO2 for 24 h, there was a reductionin the carbon exchange rate (CER) at all partial pressures ofCO2 at which measurements were made. After exposure to 7 PaCO2, the CER decreased only at high partial pressures of CO2.The rates of electron transport from water to methyl viologen,through the whole chain, decreased in parallel with the decreasein CER measured at 90 Pa CO2. One site of inhibition in leavesexposed for 24 h to 6 Pa CO2 appeared to be the intersystemelectron-transport chain since there were no significant changesin the activities of PSI and PSII, as determined from the levelof P-700 and measurement of fluorescence, respectively. Anotherinhibitory phenomenon appeared to be a negative change in theactivation state of Rubisco, while the level of Rubisco wasunaffected by the exposure to 6 Pa CO2. These decreases in photosyntheticactivity caused by depletion of CO2 explains at least in part,the inhibition of photosynthesis that is caused by rain treatment[Ishibashi and Terashima (1995) Plant Cell Environ. 18: 431]. (Received September 19, 1996; Accepted March 10, 1997)  相似文献   

19.
CO2 uptake and diffusion conductance of Valencia orange fruits(Citrus sinensis L. Osbeck) were measured in the field duringthe growing season of 1977/78 to ascertain if, as in the leaf,stomata control photosynthesis and transpiration under changingenvironmental conditions. Measurements were made on 15 yearold trees grown in a sandy loam soil and receiving either adry or a wet treatment. Fruit diffusive conductance was measuredwith a modified water vapour diffusion conductance meter andgross photosynthesis was measured with a 14CO2 uptake meter.Photosynthetically active radiation (PAR) was measured witha quantum sensor. Fruits exposed to light assimilated CO2 ata rate which was 25–50% of that assimilated by leaves.The uptake was dependent on fruit size, PAR, chlorophyll content,and on diffusive conductance of the fruit epidermis. Epidermalconductance showed a diurnal trend which was similar in shapeto that of the leaf except in the late afternoon. Cuticularconductance of the fruit was calculated and ranged between 0.22and 0.30 mm s–1. It was speculated that the CO2 uptakeby the fruit could support the growth of flavedo cell layerswhen exposed to light. Dry soil caused an increase in the 14CO2uptake by fruit possibly caused by the increased potential areaof the stomatal opening per unit of fruit surface area.  相似文献   

20.
Carbonic anhydrase (CA, EC. 4.2.1.1 [EC] ) activity in air-grown Characorallina was detected mainly in the intracellular fraction,most of which composed of chloroplasts and cytoplasmic gel,and not on the cell surface. Only minor levels of CA activity,on the basis of equivalent volumes, were detected in the cellsap and the cytoplasmic sol. The maximum rate of photosynthetic O2 evolution by air-grownChara corallina at pH 6.0 was twice that at pH 7.6, while theapparent Km for external inorganic carbon (Ci) at pH 7.6 wasabout three times that at pH 6.0. However, the apparent Km(CO2)was about three times larger at pH 6.0 than at pH 7.6. The Km(Ci)-valueat pH 7.6 increased severalfold in the presence of acetazolamide(AZA), an inhibitor of CA, but no inhibition was observed atpH 6.0. The pH-dependence may be due to differences in the permeabilityof AZA at the given pH values. Fixation of 14CO2 at 20 µMand of H14CO3 at 200 µM over the course of 5 swas very similar at pH 7.4. Addition of CA significantly suppressedthe photosynthetic 14CO2-fixation but it stimulated the H14CO3-fixation.This result indicates that free CO2 is an active species ofCi that is incorporated into the cell during photosynthesis. These results together suggest the following: (1) Free CO2 isutilized for photosynthesis, (2) CA is mainly located insidethe cell and functions to increase the affinity for CO2 in photosynthesisby facilitating the supply of CO2 from the plasmalemma to thesite of CO2-fixation. 3Present address: Biological Laboratory, The University of theAir, Wakaba 2-11, Chiba, 260 Japan. (Received December 9, 1988; Accepted March 22, 1989)  相似文献   

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