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1.
Intracellular accumulation of inorganic carbon (Ci) and itsfixation in photosynthesis were investigated using siliconeoil layer filtering centrifugation technique with the cellsof Chlorella vulgaris 11h grown under ordinary air. Both CO2and HCO3 were transported into the cells from the reactionmedium and accumulated in the cells, but the rate of transportwas much faster for the former than the latter. 14C-fixationfrom the total transported Ci was much more efficient when CO2was added in the external medium than when HCO3 was added.This indicates that CO2 and HCO3 were not converted tothe common compound in the cells during the initial period ofphotosynthesis. Accumulation of Ci into the cells was much lesssusceptible to low temperature than its fixation. Accumulationof Ci was also observed in the dark. Ethoxyzolamide, an inhibitorof carbonic anhydrase (CA), inhibited the fixation of accumulatedCO2 in the cells, suggesting that CA enhanced the supply ofCO2 to the reaction site of ribulose bisphosphate carboxylasein the stroma. Mechanism for transport and fixation of Ci duringphotosynthesis in low-CO2 cells of C. vulgaris 1lh was proposedfrom these results. (Received March 19, 1986; Accepted June 26, 1986)  相似文献   

2.
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   

3.
The requirement of sodium for growth of Anabaena variabilisM3 was investigated under low (0.04%) and high (1.5 or 5%) CO2conditions. The growth rates under both conditions were stronglyaffected by NaCl concentrations up to 0.5 mM in the medium.In the presence of 40 µM NaCl, the cells were not ableto grow under a low CO2 condition, but were able to grow undera high CO2 condition. The sodium requirement for growth wasdependent on pH: in the Na+-deficient condition, cells couldgrow at pH6.8, while no growth occurred at pH 8.2, suggestingthat the requirement of Na+ for growth observed in the low CO2condition can be substituted for by a lower pH. In the presence of 20 mM NaCl at pH 7.8, 14CO2 as well as H14CO3were actively transported into the cells which had been grownin air. In contrast, the transport of both of these inorganiccarbon (IC) species was suppressed under the Na+-deficient condition.These results suggest that sodium is required for the stimulationof transport of IC during photosynthesis. This is one of thereasons why Na+ is required for the growth of Anabaena underordinary air and alkaline conditions. (Received September 27, 1986; Accepted March 26, 1987)  相似文献   

4.
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   

5.
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   

6.
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   

7.
The cells of Dunaliella tertiolecta grown under ordinary air(low-CO2 cells) had a well developed pyrenoid with many morestarch granules than those grown under air enriched with CO2(high-CO2 cells). The chloroplast was located close to the plasmamembranein low-CO2 cells, while that in high-CO2 cells was located inthe inner area of the cells. Chloroplast envelope was electronicallydenser in low-CO2 cells than in high-CO2 cells, while the oppositeeffect of CO2 was observed for the plasmamembrane. 2On leave from Institute of Biology, University of Novi Sad,Novi Sad, Yugoslavia. (Received November 7, 1985; Accepted March 5, 1986)  相似文献   

8.
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   

9.
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   

10.
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   

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.
In Dunaliella tertiolecta, D. bioculata and D. viridis the activitiesof phosphoenolpyruvate carboxylase and carbonic anhydrase werehigher in the cells grown in ordinary air (low-CO2 cells) thanin those grown in air enriched with 1–5% CO2 (high-CO2cells), whereas in Porphyridium cruentum R-1 there was no differencein phosphoenolpyruvate carboxylase activity between these twotypes of cells. Apparent Km(NaHCO3) values for photosynthesisin low-CO2 cells of all species tested were smaller than thosein high-CO2 cells. Most of the 14C was incorporated into 3-phosphoglycerate,sugar mono- and di-phosphates during the initial periods ofphotosynthetic NaH14CO3 indicating that both types of cellsin D. tertiolecta are C3 plants. (Received May 27, 1985; Accepted June 25, 1985)  相似文献   

13.
Millhouse, J. and Strother, S. 1987. Further characteristicsof salt-dependent bicarbonate use by the seagrass Zostera muelleri.—J.exp. Bot. 38: 1055–1068. The contribution of HCO3to photosynthetic O2 evolutionin the seagrass Zostera muelleri Irmisch ex Aschers. increasedwith increasing salinity of the bathing seawater when the inorganiccarbon concentration was kept constant. K1/2 (seawater salts)for HCO3 -dependent photosynthesis was 66% of seawatersalinity. Both short- and long-term pretreatment at low salinitiesstimulated photosynthesis in full strength seawater. Twentyfour hours pre-incubation of seagrass plants in 3·0 molm–3 NaHCO3 resulted in increased photosynthesis at allsalinities, apparently due to stimulation of HCO3 use(K1/2 (seawater salts) = 26%). Vmax (HCO3) was not affectedby low salinity pretreatment. The kinetics of HCO3 stimulationby the major seawater cations was investigated. Ca2+ was themost effective cation with the highest Vmax (HCO3) andwith K1/2(Ca2+) = 14 mol m–3. Mg2+ was also very effectiveat less than 50 mol m–3 but higher concentrations wereinhibitory. This inhibition cannot be accounted for solely byprecipitation of MgCO3. Na+ and K+ were both capable of stimulatingHCO3 use. Stimulation was in two distinct parts. Up to500 mol m–3, both citrate and chloride salts gave similarresults (K1/2(Na+) 81 mol m–3, Vmax(HCO3) 0·26µmol O2 mg–1 chl min–1), but use of citratesalts above 500 mol m–2 caused a second stimulation ofHCO3 use (K1/2(Na+) 830 mol m–3, Vmax(HCO3)0·68 µmol O2 mg–1 chl min–1). Vmax(HCO3)for the second-phase Na+ or K+ stimulation was of the same orderas for Ca2+-stimulated HCO3 use. To further characterizesalt-dependent HCO3 use, the sensitivity of photosynthesisto Tris and TES buffers was investigated. The effects of Trisappear to be due to the action of Tris+ causing stimulationof HCO3 -dependent photosynthesis in the absence of salt,but inhibition of HCO3 use in saline media. TES has noeffect on photosynthesis. External carbonic anhydrase, althoughimplicated in salt-dependent HCO3 use in Z. muelleri,could not be detected in whole leaves. Key words: Zostera muelleri, HCO3 use, salinity  相似文献   

14.
The relevance of nongenomic pathways to regulation of epithelial function by aldosterone is poorly understood. Recently, we demonstrated that aldosterone inhibits transepithelial HCO3 absorption in the renal medullary thick ascending limb (MTAL) through a nongenomic pathway. Here, we examined the transport mechanism(s) responsible for this regulation, focusing on Na+/H+ exchangers (NHE). In the MTAL, apical NHE3 mediates H+ secretion necessary for HCO3 absorption; basolateral NHE1 influences HCO3 absorption by regulating apical NHE3 activity. In microperfused rat MTALs, the addition of 1 nM aldosterone rapidly decreased HCO3 absorption by 30%. This inhibition was unaffected by three maneuvers that inhibit basolateral Na+/H+ exchange and was preserved in MTALs from NHE1 knockout mice, ruling out the involvement of NHE1. In contrast, exposure to aldosterone for 15 min caused a 30% decrease in apical Na+/H+ exchange activity over the intracellular pH range from 6.5 to 7.7, due to a decrease in Vmax. Inhibition of HCO3 absorption by aldosterone was not affected by 0.1 mM lumen Zn2+ or 1 mM lumen DIDS, arguing against the involvement of an apical H+ conductance or apical K+-HCO3 cotransport. These results demonstrate that aldosterone inhibits HCO3 absorption in the MTAL through inhibition of apical NHE3, and identify NHE3 as a target for nongenomic regulation by aldosterone. Aldosterone may influence a broad range of epithelial transport functions important for extracellular fluid volume and acid-base homeostasis through direct regulation of this exchanger. thick ascending limb; acid-base transport; epithelial Na+ transport; kidney  相似文献   

15.
Competitive inhibition of the HCO3 transport site, atthe plasmalemma of Chara coraUina, by the CO2–3 ion isdemonstrated. This CO2–3 inhibition was used to demonstratethat HCO3 ions enter the cell by facilitated ‘diffusion’when the HCO3 transport system has been inactivated bytreatment with 10 mM K+. Use of CO2–3 as a HCO3analogue is limited, however, because of the necessity to employsolutions of high pH. Inhibition was not observed in the presenceof a range of organic and inorganic acid anions. These resultsdemonstrate the stereo-specific nature of the HCO3 bindingsite. A variety of amino compounds were found to inhibit H14CO3influx. Inhibition appeared to be competitive, being completelyrelieved at higher substrate (HCO3) concentrations. Asimple correlation was not found between the degree of inhibitionand the concentration of neutral base. A combination of thepresence of neutral base and experimental pH values of at least8·0 was required to produce the reactive species thatinhibited HCO3 transport. This species is consideredto be the amino carbamate. These results are discussed withrespect to further HCO3 analogue experiments.  相似文献   

16.
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   

17.
Corneal transparency and hydration control are dependent on HCO3 transport properties of the corneal endothelium. Recent work (13) suggested the presence of an apical 1Na+-3HCO3 cotransporter (NBC1) in addition to a basolateral 1Na+-2HCO3 cotransporter. We examined whether the NBC1 cotransporter contributes significantly to basolateral or apical HCO3 permeability and whether the cotransporter participates in transendothelial net HCO3 flux in cultured bovine corneal endothelium. NBC1 protein expression was reduced using small interfering RNA (siRNA). Immunoblot analysis showed that 5–15 nM siRNA decreased NBC1 expression by 80–95%, 4 days posttransfection. Apical and basolateral HCO3 permeabilities were determined by measuring the rate of pHi change when HCO3 was removed from the bath under constant pH or constant CO2 conditions. Using either protocol, we found that cultures treated with NBC1 siRNA had sixfold lower basolateral HCO3 permeability than untreated or siCONTROL siRNA-treated cells. Apical HCO3 permeability was unaffected by NBC1 siRNA treatment. Net non-steady-state HCO3 flux was 0.707 ± 0.009 mM·min–1·cm2 in the basolateral-to-apical direction and increased to 1.74 ± 0.15 when cells were stimulated with 2 µM forskolin. Treatment with 5 nM siRNA decreased basolateral-to-apical flux by 67%, whereas apical-to-basolateral flux was unaffected, significantly decreasing net HCO3 flux to 0.236 ± 0.002. NBC1 siRNA treatment or 100 µM ouabain also eliminated steady-state HCO3 flux, as measured by apical compartment alkalinization. Collectively, reduced basolateral HCO3 permeability, basolateral-to-apical fluxes, and net HCO3 flux as a result of reduced expression of NBC1 indicate that NBC1 plays a key role in transendothelial HCO3 flux and is functional only at the basolateral membrane. corneal endothelium; sodium bicarbonate cotransporter; small interfering RNA; bicarbonate transport  相似文献   

18.
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   

19.
Extracellular and intracellular acid-base balance is necessaryfor the maintenance of normal metabolic processes. The primarysource of acid is metabolically produced CO2, and the CO2/HCO3system is the most significant buffer. The regulation of acid-basebalance is complex, involving the interaction between respiratorygas exchange and ion transport. In aquatic crustaceans respirationis governed by the need to extract oxygen from water, an O2-poormedium; thus, acid-base balance is maintained primarily throughion transport mechanisms. These mechanisms include Na+/H+ andCl/HCO3 exchange processes that are sensitiveto the extracellular acid-base status of the animal. In marinecrabs, ion regulation and acid-base balance are accomplishedby the posterior gills, while in freshwater species all gillsand the antennal gland perform these functions. Intracellularacid-base balance appears to be maintained primarily by iontransport across the cell membrane. Hemolymph pH varies inverselywith acclimation temperature and salinity. In both cases Pco2remains nearly constant, and the pH change is a result of changesin hemolymph HCO3 concentrations brought about by ionexchange mechanisms. Environmental hypercapnia or hyperoxiainduces a repiratory acidosis characterized by increased Pco2,low pH, and elevated HCO3; this is partially compensatedfor by ion exchange processes that bring about a further increasein hemolymph HCO3. Exercise causes a mixed respiratoryand metabolic acidosis with compensation via H+ ion excretionand hyperventilation.  相似文献   

20.
Photosynthetic assimilation of exogenous 14CO2 and H14CO3by the aquatic angiosperm Potamogeton lucens L. is reported.Equivalent maximum rates of assimilation (1.5 µmol s–1m–2) were obtained in the presence of saturating levelsof 14CO2 (1.0 mol m–3, pH 5.3) or H14CO3 (1.5 molm–3, pH, 9.2). Under subsaturating 14CO2 levels, bothgaseous diffusion and H14CO3 transport were shown tooperate simultaneously, such that maximal photosynthetic rateswere established. An induction lag of approximately 3 min was observed when exogenous14CO2 was assimilated. A longer lag of approximately 12 minwas required, however, before linear assimilation rates wereestablished when H14CO3 acted as the carbon source. The light-activatedH14CO3 transport system was found to be quite labile.A brief (5 min) dark treatment returned the system to the inactivestate. Bicarbonate transport was shown to be competitively inhibitedby CO32–ions. The possibility is discussed that this formof inhibition may be common to many HCO3 assimilators. Preliminary polar cation transport studies (from lower to upperleaf surface) indicated an almost exact one to one relationshipbetween the rates of Na+ influx and efflux and H14CO3assimilation. The possible relationship(s) between these transportprocesses and the requirement for electrical neutrality is brieflydiscussed.  相似文献   

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