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1.
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   

2.
In cells of cyanobacterium Anabaena variabilis grown under ordinaryair (low-CO2 cells), the transport of both CO2 and HCO3was significantly enhanced by Na+. This effect was pronouncedas the external pH increased. When low-CO2 cells were treatedwith an inhibitor of carbonic anhydrase (CA), only CO2 transportbut not HCO3 transport, was inhibited. The initial rateof photosynthetic carbon fixation as a function of the concentrationof internal inorganic carbon (IC) was practically the same irrespectiveof whether CO2 or HCO3 was externally supplied. Theseresults suggest that IC is actively transported through theplasma membrane in a form of HCO3 probably by some transporterand that the transmembrane Na+ gradient is involved in thisIC transport system. Free CO2 may be hydrated by CA to HCO3and then transported to the cells by this transporter. On the other hand, CO2 is actively taken up by cells grown withair containing 5% CO2 (high-CO2 cells) though the enhancingeffect of Na+ was much smaller in high- CO2 cells than in low-CO2cells. The initial rate of fixation as a function of internal IC concentrationindicated that the rate of the carboxylation reaction of accumulatedIC is higher in I0W-CO2 cells than in high-CO2 cells. The studieswith ethoxyzolamide indicated that even in low-CO2 cells, CAdoes not function inside Anabaena cells. These results suggestthat inside the low-CO2 cells of Anabaena, some mediator(s)facilitates the transport of IC to RuBPCase. (Received January 23, 1987; Accepted April 24, 1987)  相似文献   

3.
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   

4.
Cells of Dunaliella tertiolecta which had been grown in ordinaryair (low-CO2 cells) had high carbonic anhydrase (CA) activityon the cell surface and mainly utilized HCO3 for photosynthesis.When CA activity on the cell surface was inhibited by Diamoxor subtilisin, the cells utilized CO2. When bovine CA was added,the subtilisin-treated low-CO2 cells utilized mainly HCO3.When grown in air containing 2% CO2, the cells had low CA activityon the cell surface, and preferred CO2 to HCO3. Kineticanalysis of these results indicated that low-CO2 cells of D.tertiolecta absorb CO2 which was converted from HCO3via the CA located on the cell surface. (Received June 29, 1985; Accepted October 9, 1985)  相似文献   

5.
Time courses of photosynthetic 14CO2 fixation and its simulationare presented for Chlorella cells grown under low CO2 concentration(low-CO2 cells) and subsequently exposed to 0.2 mM NaH14CO3or 130 ppm 14CO2 in the presence or absence of carbonic anhydrase(CA) in the suspending medium. It was shown that Chlorella cells utilized only free CO2 whenNaHCO3 was given in the presence or absence of CA, or when CO2was bubbled in the absence of CA. However, the present simulationindicated that both CO3 and HCO3 were utilized when CO2was given in the presence of CA. Based on these results, weconcluded that 1) Chlorella cells absorb only free CO2 and 2)this gas is provided to algal cells in two ways, i.e., by directand indirect CO2 supply. Usually, the dissolved CO2 is directlyutilized by the algal cells (direct supply of CO2). However,when the concentration of dissolved CO2 is extremely low andwhen there is CA, CO2 reconverted from HCO3 is also utilizedby Chlorella cells (indirect supply of CO2). The utilizationof HCO3 indicated by the above simulation was explainedby the indirect supply of CO2. We further assumed that the indirectsupply of CO2 to ribulose 1,5-bisphosphate carboxylase occursmainly in the chloroplasts of low-CO2 cells containing highCA. Thus, under low CO2 concentrations, low-CO2 cells can carryout more efficient CO2 fixation than high-CO2 cells, resultingin the lower apparent Km(CO2). 3Department of Biology, Faculty of Science, Niigata University,Niigata, Japan. (Received April 2, 1980; )  相似文献   

6.
Mass spectrometry has been used to investigate the transportof CO2 in the freshwater diatom Navicula pelliculosa. The timecourseof CO2 formation in the dark after addition of 100 mmol m–3dissolved inorganic carbon (DIC) to cell suspensions showedthat no external carbonic anhydrase (CA) was present in thesecells. Upon illumination, cells pre-incubated at pH 75 with100 mmol m–3 DIC, removed almost all free CO2 from themedium at an initial rate of 285 µmol CO2 mg–1Chl h–1. Equilibrium between HCO3 and CO2 in themedium occurred rapidly upon addition of bovine CA, showingthat CO2 depletion resulted from a selective uptake of CO2 ratherthan an uptake of all inorganic carbon species. However, photosyntheticO2 evolution rate remained constant after CO2 had been depletedfrom the medium indicating that photosynthesis is sustainedprimarily by active HCO3 uptake. Treatment of cells with2-iodoacetamide (83 mol m–3) completely inhibited CO2fixation but had little effect on CO2 transport since initialrates of CO2 depletion were about 81% that of untreated cells.Transfer of iodoacetamide-treated cells to the dark caused arapid increase in the CO2 concentration in the medium largelydue to the efflux of the unfixed intracellular DIC pool whichwas found to be about 194 times the concentration of that inthe external medium. These results indicate that Navicula pelliculosaactively takes up molecular CO2 against a concentration gradientby a process distinct from HCO3 transport. Key words: Dissolved inorganic carbon, carbonic anhydrase, bicarbonate transport, CO2 transport, mass spectrometry  相似文献   

7.
Several studies suggest the involvement of Na+ and HCO3 transport in the formation of cerebrospinal fluid. Two Na+-dependent HCO3 transporters were recently localized to the epithelial cells of the rat choroid plexus (NBCn1 and NCBE), and the mRNA for a third protein was also detected (NBCe2) (Praetorius J, Nejsum LN, and Nielsen S. Am J Physiol Cell Physiol 286: C601–C610, 2004). Our goal was to immunolocalize the NBCe2 to the choroid plexus by immunohistochemistry and immunogold electronmicroscopy and to functionally characterize the bicarbonate transport in the isolated rat choroid plexus by measurements of intracellular pH (pHi) using a dual-excitation wavelength pH-sensitive dye (BCECF). Both antisera derived from COOH-terminal and NH2-terminal NBCe2 peptides localized NBCe2 to the brush-border membrane domain of choroid plexus epithelial cells. Steady-state pHi in choroidal cells increased from 7.03 ± 0.02 to 7.38 ± 0.02 (n = 41) after addition of CO2/HCO3 into the bath solution. This increase was Na+ dependent and inhibited by the Cl and HCO3 transport inhibitor DIDS (200 µM). This suggests the presence of Na+-dependent, partially DIDS-sensitive HCO3 uptake. The pHi recovery after acid loading revealed an initial Na+ and HCO3-dependent net base flux of 0.828 ± 0.116 mM/s (n = 8). The initial flux in the presence of CO2/HCO3 was unaffected by DIDS. Our data support the existence of both DIDS-sensitive and -insensitive Na+- and HCO3-dependent base loader uptake into the rat choroid plexus epithelial cells. This is consistent with the localization of the three base transporters NBCn1, Na+-driven Cl bicarbonate exchanger, and NBCe2 in this tissue. bicarbonate metabolism; BCECF; cerebrospinal fluid; acid/base transport; ammonium prepulse  相似文献   

8.
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   

9.
When Chlorella vulgaris 11h, Chlorella vulgaris C-l, Chlamydomonasreinhardtii, Chlamydomonas moewusii, Scenedesmus obliquus, orDunaliella tertiolecta were illuminated in with 0.5 mM NaHCO3,the pH of the medium increased in a few minutes from 6 to about9 or 10. The alkalization, which was accompanied by O2 evolution,was dependent on light, external dissolved inorganic carbon(DIC) as HCO-3, and algae grown or adapted to a low, air-levelCO2 in order to develop a DIC concentrating mechanism. Therewas little pH increase by algae without a DIC concentratingprocess from growth on 3% CO2 in air. Photosynthetic O2 evolutionwithout alkalization occurred using either internal DIC or externalCO2 at acidic pH. The PH increase stopped between pH 9 to 10,but the alkalization would restart upon re-acidification betweenpH 6 and 8. Alkalization was suppressed by the carbonic anhydraseinhibitors, acetazolamide, ethoxyzolamide or carbon oxysulfide.The pH increase appeared to be the consequence of the externalconversion of HCO3 into CO2 plus OH during photosynthesisby cells with a high affinity for CO2 uptake. Cells grown onhigh CO2 to suppress the DIC pump, when given low levels ofHCO3 in the light, acidified the medium from pH 10 to7. Air adapted Scenedesmus cells with a HCO3 pump, aswell as a CO2 pump, alkalized the medium very rapidly in thelight to a pH of over 10, as well as slower in the dark or inthe light with DCMU or without external DIC and O2 evolution.Alkalization of the medium during photosynthetic DIC uptakeby algae has been considered to be part of the global carboncycle for converting H2CO3 to HCO3 and for the formationof carbonate salts by calcareous algae from the alkaline conversionof bicarbonate to carbonate. These processes seem to be a consequenceof the algal CO2 concentrating process. 1Present address: Department of Biology, Faculty of Science,Niigata University, Niigata, 950-21 Japan.  相似文献   

10.
HEUER  BRURIA; PLAUT  Z. 《Annals of botany》1981,48(3):261-268
The influence of salinity in the growing media on ribulose-1,5-bisphosphate (RuBP) carboxylase and on CO2 fixation by intactsugar beet (Beta vulgaris) leaves was investigated. RuBP carboxylase activity was mostly stimulated in young leavesafter exposure of plants for 1 week to 180 mM NaCl in the nutrientsolution. This stimulation was more effective at the higherNaHCO2 concentrations in the reaction medium. Salinity also enhanced CO2 fixation in intact leaves mostlyat rate-limiting light intensities. A 60 per cent stimulationin CO2 fixation rate was obtained by salinity under 450 µEm–2 s–1. At quantum flux densities of 150 µEm–2 s–1 (400–700 nm) this stimulation was280 per cent. Under high light intensities no stimulation bysalinity was found. In contrast, water stress achieved by directleaf desiccation or by polyethylene glycol inhibited enzymeactivity up to fourfold at –1.2 MPa. Beta vulgaris, sugar beet, ribulose-1, 5-bisphosphate carboxylase, salt stress, water stress, carbon dixoide fixation, salinity  相似文献   

11.
The affinity for NaHCO3 (CO2) in photosynthesis of Anabaenavariabilis ATCC 29413 was much higher in the cells grown underordinary air (low-CO2 cells) than in those grown in air enrichedwith 2–4% CO2 (high-CO2 cells) (pH 8.0, 25?C). Ethoxyzolamide(50 µM) increased the Km(NaHCO3 in low-CO2 cells aboutnine times (from 14.3 to 125), while the maximum rate of photosynthesisdecreased about 20%. When high-CO2 cells were transferred tolow-CO2 conditions, carbonic anhydrase (CA) activity increased,while Km(NaHCO3) in photosynthesis decreased from 140 to 30µM within about 5 h. The addition of CA to the suspensionof both high- and low-CO2 cells enhanced the rates of photosyntheticO2 evolution under CO2-limiting conditions. The rate of 14CO2fixation was much faster than that of H14CO3 fixation.The former reaction was greatly suppressed, while the latterwas enhanced by the addition of CA. These results indicate thatthe active species of inorganic carbon utilized for photosynthesiswas free CO2 irrespective of the CO2 concentration given duringgrowth. It is suggested that CA plays an active role in increasingthe affinity for CO2 in photosynthesis of low-CO2 cells of thisblue-green alga. (Received January 24, 1984; Accepted October 22, 1984)  相似文献   

12.
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   

13.
The ratio of the extracellular to the intracellular activityof carbonic anhydrase (CA) in cells of Chlorella ellipsoideaC-27, adapted to low levels of CO2 for 24 h (low-CO2 cells),was about one to one. Treatment of intact cells with PronaseP inactivated about one-half of the extracellular CA activitywithout affecting photosynthetic activity. The CA activity incell homogenates and in cell-wall ghosts liberated during celldivision was completely inactivated by the same treatment. Pretreatmentwith Glycosidase mix, Chitosanase and Macerozyme enhanced theinactivation of the CA activity in intact cells. These resultssuggest that extracellular CA is evenly distributed throughoutthe whole cell-wall region. The apparent K1/2 for dissolved inorganic carbon (DIC) in low-CO2cells doubled when extracellular CA was inactivated by treatmentwith Pronase P, but the K1/2 obtained was still one-half ofthat in high-CO2 cells. Photosynthetic 14CO2-fixation in low-CO2cells was enhanced by acetazolamide, whereas H14CO3-fixationwas suppressed. The results suggest that CO2 is a dominant substrateutilized by cells and that HCO3 is utilized after conversionto CO2. The present results show that both intracellular andextracellular CA contribute to the increase in affinity forDIC during photosynthesis in low-CO2 cells of Chlorella ellipsoideaC-27. (Received May 7, 1990; Accepted July 18, 1990)  相似文献   

14.
Species-specific differences in the assimilation of atmosphericCO2 depends upon differences in the capacities for the biochemicalreactions that regulate the gas-exchange process. Quantifyingthese differences for more than a few species, however, hasproven difficult. Therefore, to understand better how speciesdiffer in their capacity for CO2 assimilation, a widely usedmodel, capable of partitioning limitations to the activity ofribulose-1,5-bisphosphate carboxylase-oxygenase, to the rateof ribulose 1,5-bisphosphate regeneration via electron transport,and to the rate of triose phosphate utilization was used toanalyse 164 previously published A/Ci, curves for 109 C3 plantspecies. Based on this analysis, the maximum rate of carboxylation,Vcmax, ranged from 6µmol m–2 s–1 for the coniferousspecies Picea abies to 194µmol m–2 s–1 forthe agricultural species Beta vulgaris, and averaged 64µmolm–2 s–1 across all species. The maximum rate ofelectron transport, Jmax, ranged from 17µmol m–2s–1 again for Picea abies to 372µmol m–2 s–1for the desert annual Malvastrum rotundifolium, and averaged134µmol m–2 s–1 across all species. A strongpositive correlation between Vcmax and Jmax indicated that theassimilation of CO2 was regulated in a co-ordinated manner bythese two component processes. Of the A/Ci curves analysed,23 showed either an insensitivity or reversed-sensitivity toincreasing CO2 concentration, indicating that CO2 assimilationwas limited by the utilization of triose phosphates. The rateof triose phosphate utilization ranged from 4·9 µmolm–2 s–1 for the tropical perennial Tabebuia roseato 20·1 µmol m–2 s–1 for the weedyannual Xanthium strumarium, and averaged 10·1 µmolm–2 s–1 across all species. Despite what at first glance would appear to be a wide rangeof estimates for the biochemical capacities that regulate CO2assimilation, separating these species-specific results intothose of broad plant categories revealed that Vcmax and Jmaxwere in general higher for herbaceous annuals than they werefor woody perennials. For annuals, Vcmax and Jmax averaged 75and 154 µmol m–2 s–1, while for perennialsthese same two parameters averaged only 44 and 97 µmolm2 s–1, respectively. Although these differencesbetween groups may be coincidental, such an observation pointsto differences between annuals and perennials in either theavailability or allocation of resources to the gas-exchangeprocess. Key words: A/Ci curve, CO2 assimilation, internal CO2 partial pressure, photosynthesis  相似文献   

15.
The rate of photosynthetic 14CO2 fixation in Chlorella vulgaris11h cells in the presence of 0.55 mM NaH14CO3 at pH 8.0 (20?C)was greatly enhanced by the addition of carbonic anhydrase (CA).However, when air containing 400 ppm 14CO2 was bubbled throughthe algal suspension, the rate of 14CO2 fixation immediatelyafter the start of the bubbling was suppressed by CA. Theseeffects of CA were observed in cells which had been grown inair containing 2% CO2 (high-CO2 cells) as well as those grownin ordinary air (containing 0.04% CO2, low-CO2 cells). We thereforeconcluded that, irrespective of the CO2 concentration givento the algal cells during growth, the active species of inorganiccarbon absorbed by Chlorella cells is free CO2 and they cannotutilize bicarbonate. The effects observed in the high-CO2 cellswere much more pronounced than those in the high-CO2 cells.This difference was accounted for by the difference in the affinityfor CO2 in photosynthesis between the high- and low-CO2 cells. (Received May 19, 1978; )  相似文献   

16.
Photosynthetic Carbon Sources of Stream Macrophytes   总被引:15,自引:0,他引:15  
Rates of photosynthesis of four submerged stream macrophyteswere examined under varying pH and composition of inorganiccarbon species. Callitriche stagnatis and Sparganium simplexused only CO2 for photosynthesis. Potamogeton crispus and P.pectinatus used HCO3 in addition to CO2, but with much lowerefficiency. The photosynthetic rates at air equilibrium anda total inorganic carbon concentration of 5.0 mM were 2–3times lower than maximum rates at CO2 saturation for the HCO3users and 10–14 times lower for the CO2 users. The CO2compensation point of entire plants of Callitriche (2.5 µM)and Sparganium (6.0µM) was well below the equilibriumconcentration (15 µM). and the low saturation points (250–500µM) also pointed to efficient use of CO2. Callitricheand Sparganium compete successfully with HCO3 users inhardwater streams, which have a higher exchange and generationcapacity of CO2 than stagnant and more soft waters. Rates ofphotosynthesis of Potamogeton crispus and P. pectinatus decreasedat high pH. Depending on the two alternative hypotheses forHCO3use, this decline can be explained by CO3––inhibition of HCO3 uptake or by increasing capacity tobuffer H+efflux from the plant. Habitats subject to high pH,e. g. small ponds with dense vegetation, may have a strong selectionfor efficient mechanisms of HCO3 use. Key words: Photosynthesis, Macrophytes, Carbon-source  相似文献   

17.
Plants of Phaseolus vulgaris L were grown from seed in open-topgrowth chambers at present day (350 µmol mol–1)and double the present day (700 µmol mol–1) atmosphericCO2 concentration with either low (L, without additional nutrientsolution) or relatively high (H, with additional nutrient solution)nutrient supply Measurements of assimilation rate, stomatalconductance and water use efficiency were started 17 d aftersowing on each fully expanded, primary leaf of three plantsper treatment Measurements were made in external CO2 concentrations(C2) of 200, 350, 450, 550 and 700 µmol mol–1 andrelated to both Ca and to C1, the mean intercellular space CO2concentration Fully adjusted, steady state measurements weremade after approx 2 h equilibration at each CO2 concentration The rate of CO2 assimilation by leaves increased and stomatalconductance decreased similarly over the range of Ca or C1 inall four CO2 and nutrient supply treatments but both assimilationrate and stomatal conductance were higher in the high nutrientsupply treatment than in the low nutrient treatment The relationbetween assimilation rate or stomatal conductance and C1 wasnot significantly different amongst plants grown in present-dayor elevated CO2 concentration in either nutrient supply treatment,i e there was no evidence of down regulation of photosynthesisor stomatal response Increase in CO2 concentration from 350to 700 µmol mol–1 doubled water use efficiency ofindividual leaves in the high nutrient supply treatment andtripled water use efficiency in the low nutrient supply treatment The results support the hypothesis that acclimation phenomenaresult from unbalanced growth that occurs after the seed reservesare exhausted, when the supply of resources becomes growth limiting CO2 enrichment, Phaseolus vulgaris L., net CO2 assimilation rate, stomatal conductance, water use efficiency  相似文献   

18.
The permeability of the plasmalemma of Chlamydomonas reinhardtiicells was increased by treatment with poly-L-lysine or dimethylsulphoxideas indicated by 3-phosphoglyceric acid dependent O2 evolution.These treatments decreased the ability of the cells to accumulateinorganic carbon internally and hence their photosynthetic affinityfor inorganic carbon in the medium. With saturating light andinorganic carbon, the photosynthetic rate was less affectedby the poly-L-lysine and dimethylsulphoxide treatments. Thusthe poly-L-lysine and dimethylsulphoxide did not alter the activityof the chloroplasts but rather made the intracellular inorganiccarbon pool more freely exchangeable with the medium. It isconcluded that the transporting system for inorganic carbonis located at the plasmalemma. Treatment with Diamox, an inhibitor of carbonic anhydrase, didnot affect photosynthetic rate and accumulation of inorganiccarbon when CO2 was supplied but strongly inhibited both parameterswhen HCO3 was supplied. In a mutant of Chlamydomonasreinhardtii lacking a cell wall, carbonic anhydrase leaks tothe medium and uptake of inorganic carbon is much faster whenCO2 is supplied than when HCO3 is supplied. These resultssuggest that CO2 rather than HCO3 is the inorganic carbonspecies that is actively translocated across the plasmalemma. Key words: Chlamydomonas, Inorganic carbon uptake  相似文献   

19.
Hydrodictyon africanum can photosynthesize at high pH underconditions in which HCO3 rather than CO2 is the carbonspecies entering the cell. A passive entry of HCO3 seemsunlikely; a metabolic HCO3 pump is proposed. It is possiblethat such a pump is related to a light-dependent reaction specificto the use of HCO3. This reaction is dependent on photosystem2, but appears to be independent of ATP. These characteristicsare similar to those of active lightdependent Cl influx in H.africanum, and suggest a similar energy source for the two pumps.The HCO3 pump may be electrogenic.  相似文献   

20.
Photosynthetic Fixation of 14Carbon by Internodal Cells of Chara corallina   总被引:1,自引:0,他引:1  
Maximum fixation rates of 120 and 60 pmol cm–2 s –1wereobtained when exogenous carbon was supplied as 1CO2 and H14CO3respectively. These values are considerably higher than thosepreviously reported for this species. A kinetic analysis wasperformed on this data. Substrate saturation in the concentrationrange 1.0–1.5 mM was observed for both CO2 and HCO3 In the presence of exogenous CO2, a linear relationship wasobserved between light intensity and fixation while the HCO3relationship was slightly sigmoidal. Fixation saturated at intensitiesof 15–20 W m–2 and 13–15 W m–2 for exogenous14CO2 and H14CO3respectively. The presence, in this species, of an extremely active HCO3transport system, situated in the plasmalemma, demonstratesthat when alkaline solutions are employed the involvement ofthis ion cannot be ignored during electrical studies on thismembrane. The maximum H14CO3 influxes obtained duringthis study are the largest ionic fluxes measured for any Characeanspecies. It was demonstrated that CO2 for fixation can be supplied simultaneouslyby gaseous diffusion and HCO3 transport (cf. Raven, 1968).Inhibition of H14CO3 influx was observed in the presenceof Tris, Tricine, and borate buffers, and CO32 – alsoappeared to act as a strong inhibitor. The possible mechanism(s)by which this inhibition occurs is discussed.  相似文献   

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