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1.
The euryhaline charophyte Lamprothamnium papulosum has the abilityto reduce the extracellular electron acceptor ferricyanide (Fe3+Cy).Addition of 0.5 mol m–3 Fe3+Cy stimulated H+-efflux ata rate of 0.8 H+/Fe3+Cy-reduced and increased K+-efflux intoa potassium-free medium at a rate of 0.66 K+/Fe3+Cy-reduced.0.5 mol m–3 Fe3+Cy-induced maximum membrane depolarizationfor cells with resting potentials more negative than the diffusionpotential. The peak value of Fe3+Cy-induced depolarizationswas similar to the potential obtained by poisoning the electrogenicpump with DCCD. The value of maximum depolarization was determinedby (K+)0. Em tended to more positive values with increasing(K+)0. Depolarizations coincided with a decrease in membraneresistance (Rm) from a resting value of 1.5 m2 to 0.2 m2 inthe depolarized state. Depolarization increased the sensitivityof the membrane potential (Em) to (K+)0. The resting potentialwas only slightly changed when (K+)0 was increased from 3 to15 mol m–3. The Fe3+ Cy-induced depolarized Em changedin a Nernstian fashion when (K+)0 was increased. It is concludedthat Fe3+Cy reduction causes a net depolarization current flowacross the plasmalemma. The depolarization shifts the membranefrom a hyperpolarized pump dominated state into a depolarizedK+ diffusion state. Key words: Ferricyanide reduction, membrane potential, Lamprothamnium  相似文献   

2.
The PPi-dependent H+ transport activity of tonoplast-enrichedmembrane vesicles prepared from barley roots was greatly reducedwhen the plants were grown for 4 or 5 days with an additional3 raM KC1 in growth medium that contained only 0.1 mM CaCl2in water. To characterize the mechanism of this reduction inactivity, we attempted to treat barley roots with K+ ions, Cl-ions(or acetate), and A23187 [GenBank] (with or without Ca2+ ions), whichmight be expected to cause alkalization, acidification and mobilizationof Ca2+ ions in the cytoplasm, respectively. One-day treatmentof barley roots with K+ ions significantly decreased PPi--dependentH+ transport activity of prepared tonoplast-enriched membranevesicles, while treatment with Cl- ions or acetate significantlyincreased the activity. A similar increase in the activity alsooccurred by treatment with Ca2+ ions alone or in combinationwith A23187 [GenBank] . Determination of the PPi-hydrolyzing activity ofmembrane vesicles showed that changes in this activity by thevarious treatments were similar to those in the PPi-dependentH+ transport activity. The changes in ATP-dependent H+ transportactivity of membrane vesicles caused by these treatments weresmall. These results indicate that the in vivo treatments hadsignificant effects on the H+ transport activity of H+-PPi-ase,one of the two active vacuolar H+-pumps (H+-PPiase and H+-ATPase).In addition, these results suggest the possibility that changesin levels of cytoplasmic H+ or Ca2+ ions may be involved inmodulation of the H+ transport activity of the vacuolar H+-PPiaseduring plant growth. (Received September 14, 1992; Accepted March 1, 1993)  相似文献   

3.
We investigated the effects of in vivo treatment (1 day) ofbarley roots with abscisic acid (ABA) and/or a cytokinin (6-benzyladenine;BA) on the ATP- and PPi-dependent H+ transport activities oftonoplast-enriched membrane vesicles prepared from the roots.Treatment with ABA significantly increased the two H+ transportactivities. By contrast, treatment with BA significantly decreasedPPi-dependent H+ transport activity, while the change in ATP-dependentH+ transport activity was small. Increases in the two H+ transportactivities caused by treatment with ABA were suppressed duringtreatment with ABA and BA. Changes in the NO-inhibitableATPase activity and the Na+-inhibitable PPiase activity of membranevesicles after treatment of roots with phytohormone(s) (ABA,BA, ABA + BA) were similar to changes in the ATP- and PPi dependentH+ transport activities of the membrane vesicles, respectively.Immunoblot analysis with antibodies raised against the functionalcatalytic subunits of the vacuolar H+ pumps (H+- ATPase andH+-PPiase) of mung bean revealed that only the level of thefunctional catalytic subunit of the H+-PPiase of the membranevesicles was significantly increased by treatment with ABA aloneand in combination with BA. These results suggest that treatmentwith ABA has a stimulatory effect on the activities of the twoH+ pumps of the vacuolar membrane of barley roots, with increasein the level of the catalytic subunit of the H+-PPiase, andthat treatment with BA has an inhibitory effect on the two H+pump activities of the vacuolar membrane without changes inthe levels of the catalytic subunits of either H+ pump, withthe limitation that treatment with BA has an inhibitory effectonly when the activity of the H+-ATPase has been increased bytreatment with ABA. 3Present address: Department of Biology, Faculty of Science,Hirosaki University, Hirosaki, 036 Japan  相似文献   

4.
为了探讨牧草对碱胁迫的耐受程度,采用营养液砂培方法,研究了不同浓度NaHCO3(0、50、100、150和200 mmol·L-1)胁迫对黑麦草幼苗根系生长、活性氧代谢和渗透溶质积累的影响。结果表明:NaHCO3胁迫显著抑制黑麦草幼苗根系的生长,其抑制程度随胁迫浓度提高而增强,黑麦草可耐受的最高NaHCO3浓度约为150 mmol·L-1。随着NaHCO3胁迫浓度的增加,黑麦草根中超氧阴离子(O2)、过氧化氢(H2O2)和丙二醛(MDA)含量明显上升,超氧化物歧化酶(SOD)活性和谷胱甘肽(GSH)含量显著下降,过氧化氢酶(CAT)、过氧化物酶(POD)和抗坏血酸过氧化物酶(APX)活性及抗坏血酸(ASA)含量先升后降。黑麦草根中Na+含量随NaHCO3浓度增大而增加,K+含量和K+/Na+比降低,可溶性糖含量先升后降,脯氨酸含量则先降后升,游离氨基酸含量呈先升后降再升高变化。表明碱胁迫导致的活性氧代谢失调和Na+、K+失衡及积累有机溶质进行渗透调节时更多能量的消耗可能是黑麦草根系生长受抑的重要因素。  相似文献   

5.
The vacuolar H+-ATPase (V-ATPase) acidifies compartments of the vacuolar system of eukaryotic cells. In renal epithelial cells, it resides on the plasma membrane and is essential for bicarbonate transport and acid-base homeostasis. The factors that regulate the H+-ATPase remain largely unknown. The present study examines the effect of glucose on H+-ATPase activity in the pig kidney epithelial cell line LLC-PK1. Cellular pH was measured by performing ratiometric fluorescence microscopy using the pH-sensitive indicator BCECF-AM. Intracellular acidification was induced with NH3/NH4+ prepulse, and rates of intracellular pH (pHi) recovery (after in situ calibration) were determined by the slopes of linear regression lines during the first 3 min of recovery. The solutions contained 1 µM ethylisopropylamiloride and were K+ free to eliminate Na+/H+ exchange and H+-K+-ATPase activity. After NH3/NH4+-induced acidification, LLC-PK1 cells had a significant pHi recovery rate that was inhibited entirely by 100 nM of the V-ATPase inhibitor concanamycin A. Acute removal of glucose from medium markedly reduced V-ATPase-dependent pHi recovery activity. Readdition of glucose induced concentration-dependent reactivation of V-ATPase pHi recovery activity within 2 min. Glucose replacement produced no significant change in cell ATP or ADP content. H+-ATPase activity was completely inhibited by the glycolytic inhibitor 2-deoxy-D-glucose (20 mM) but only partially inhibited by the mitochondrial electron transport inhibitor antimycin A (20 µM). The phosphatidylinositol 3-kinase (PI3K) inhibitor wortmannin (500 nM) abolished glucose activation of V-ATPase, and activity was restored after wortmannin removal. Glucose activates V-ATPase activity in kidney epithelial cells through the glycolytic pathway by a signaling pathway that requires PI3K activity. These findings represent an entirely new physiological effect of glucose, linking it to cellular proton secretion and vacuolar acidification. proton secretion; glycolysis; intracellular pH; concanamycin A  相似文献   

6.
The growth of garden orache, A triplex hortensis was studiedunder conditions of mild NaCl or Na2SO4 salinity. Growth, drymatter production and leaf size were substantially stimulatedat 10 mM and 50 mM Na+ salts. Increased growth, however, appearedto be due to a K+-sparing effect of Na+ rather than to salinityper se. The distribution of K+ and Na+ in the plant revealeda remarkable preference for K+ in the roots and the hypocotyl.In the shoot the K/Na ratio decreased strongly with leaf age.However, the inverse changes in K+ and Na+ content with leafage were dependent on the presence of bladder hairs, which removedalmost all of the Na+ from the young leaf lamina. Measurementsof net fluxes of K+ and Na+ into roots and shoots of growingAtriplex plants showed a higher K/Na selectivity of the netion flux to the root compared to the shoot. With increasingsalinity the selectivity ratio SK, Na* of net ion fluxes tothe roots and to the shoots was increased. The data suggestthat recirculation of K+ from leaves to roots is an importantlink in establishing the K/Na selectivity in A. hortensis plants.The importance of K+ recirculation and phloem transport forsalt tolerance is discussed. Key words: Atriplex hortensis, Salinity, Potassium, Sodium, K+ retranslocation, Bladder hairs, Growth stimulation  相似文献   

7.
Experiments were done to determine if the spontaneous recoveryof non-growing segments of corn root (Zea mays L.) from excisioninjury is dependent on auxin. Washing the segments with 5 runindoleacetic acid (IAA) for 2 to 4 hours gave a small but significantincrease in K+ (86Rb) influx, used here as a parameter reflectingrecovery of electrogenie H+-efflux pumping. This promotive effectwas obtained only after an hour of washing, and was sustainedby 100 nm gibberellic acid (GA3). Any early responses to auxinwere obscured by an adverse reaction of the root cells to externalIAA which resulted in a transitory inhibition of H+ pumpingand K+ influx. Pretreatment of excised root tips with 10 µM IAA in thegrinding medium protected a plasmalemma-enriched fraction ofthe microsomes during isolation, giving increased uncoupler-sensitiveATPase activity. Non-growing root tissue thus shows three responses to auxin:an adverse reaction at the outer surface of the plasmalemmawhich blocks H+ pumping; a protective or restorative effecton the H+-ATPase; an increased capacity for K+ influx duringthe developmental phase of washing, which is augmented by thepresence of GA3. (Received March 31, 1986; Accepted September 8, 1986)  相似文献   

8.
The reactions of isolated intact spinach chloroplasts at saturatinglight and CO2 to changes in steady-state electron flow werefollowed at the various stages of photosynthesis. Alterationsin the rate of electron flow were induced by the addition ofoxaloacetate (OAA), nitrite or methyl viologen (MV). Two typesof effect can be distinguished: (1) When a small fraction ofthe electrons produced are accepted by OAA or nitrite (up to20% of the electrons produced in the light), the activationstate of the NADP+-dependent malate dehydrogenase (NADP-MDH)was strongly decreased, whereas qP and the rate of O2-productionwere increased. qN, the stromal metabolite pools and the [14C]-CO2-fixationrate were only marginally influenced. (2) Higher amounts ofnitrite or MV decreased O2 production and strongly inhibited[14C]CO2 fixation. This treatment further increased the ATP/ADPratio, but had little effect on the NADPH + H+/NADP+ ratio.The stromal concentrations of 3PGA, DHAP and FBP, and the ratesof 3PGA and DHAP export were drastically changed. In particular,the DHAP/3PGA ratio increased, and the rate of 3PGA export wasdecreased by minor changes in the rate of electron flow. Additionof high amounts of nitrite or MV, but not of OAA decreased theactivation states of NADP-MDH and fructose 1,6-bisphosphatase(FBPase), while the activation states of NADP+-dependent glyceraldehyde3-phosphate dehydrogenase (GAPDH) and phosphoribulokinase (PRK)remained unchanged under all conditions. (Received February 10, 1997; Accepted September 2, 1997)  相似文献   

9.
The effects of vitamin K3 or dicumarol on plasma membrane boundhexacyanoferrate (III) and hexabromoiridate (IV) reductase activityand on the H+ pumping rate were investigated. Incubation withvitamin K3 followed by intense rinsing stimulated the subsequentreduction of hexabromoiridate (IV) and hexacyanoferrate (III)as well as proton secretion induced by external electron-acceptors,while pretreatment with dicumarol inhibited proton secretioninduced by redox activity and hexacyanoferrate (III) reductionrate, but not the effects of hexabromoiridate (IV). A 30 minincubation in 0·2 mM K3 or dicumarol, followed by rinsing,inhibited H+ secretion for about 2 d. Incubation for more than12 h in 0·1 mM dicumarol or 0·2 mM K3 caused lethalinjury to the root cells. Key words: Vitamin K.3, dicumarol, plasmalemma redox system, Zea mays L., proton pump  相似文献   

10.
In Elodea densa leaves light strongly stimulates electrogenic,K +-dependent, vanadate- and erythrosin B-sensitive H+ extrusionand hyperpolarizes the transmembrane electrical potential. Theseeffects of light are suppressed by treatment with DCMU, an inhibitorof photosynthesis, which has no effect on H+ extrusion in thedark. Light-induced H+ extrusion requires the presence of K+in the medium and is associated with increased K+ uptake andalkalinization of the cell sap. Light-induced H+ extrusion increaseswith increased CO2 concentration. At constant CO2 concentration(104 parts 10–6) the rate of H+ extrusion is stronglyenhanced by an increased light intensity up to 30 W m–2.Different wavelengths, between 400 and 730 nm, induce a significantstimulation of both proton secretion and transmembrane potentialhyperpolarization. The stimulating effects of light on H+ extrusion, K+ uptakeand cell sap pH are very similar to those induced in the darkby fusicoccin, a toxin known to stimulate strongly ATP-driven,vanadate- and erythrosin B-sensitive H+ transport. In the light,the effects of fusicoccin are only partially additive to thoseof light, thus suggesting that the two factors influence thesame system. The identification of this system with the plasmamembrane H+-ATPase is indicated by the observed inhibition ofthe effects of either light or fusicoccin by the H+-ATPase inhibitorsvanadate and erythrosin B. These data indicate that the activation of electrogenic H+ extrusionand of K+ uptake by light is mediated by some products of photosynthesis.The mechanism and the possible physiological implications ofthis phenomenon are discussed. Key words: Photosynthesis, H+ pump, K+ uptake, Elodea densa  相似文献   

11.
Levels of abscisic acid (ABA) in barley roots increased upontreatment with AlCl3. Treatment with AlCl3 or ABA increasedboth ATP-dependent and PPi-dependent H+-pumping activities intonoplast-enriched membrane vesicles. Increase in the H+-pumpingactivities caused by aluminum stress could result from increasedlevels of ABA. 1Present address: Department of Botany, Faculty of Science,Hirosaki University, Hirosaki, Aomori, 036 Japan  相似文献   

12.
Extrusion of protons as a response to high-NaCl stress in intactmung bean roots was investigated at different external concentrationsof Ca2+ ions ([Ca2+]ex). The extrusion of protons was graduallyenhanced in the roots exposed to 100 mM NaCl, and high [Ca2+]exdiminished this enhancement of the extrusion. Vesicles of plasmalemmaand tonoplast were prepared from the roots and the H+-translocatingATPase (H+-ATPase) activities associated with the two typesof membrane and the H+-pyrophosphatase (H+-PPase) activity ofthe tonoplast were assayed. The plasmalemma ATPase was stimulatedin parallel with dramatic increases in the intracellular concentrationof Na+([Na+]in). High [Ca2+]ex prevented the increase in [Na+]inand diminished the stimulation of ATPase activity. The tonoplastATPase showed a rapid response to salt stress and was similarlystimulated even at high [Ca2+]M. The activities of both ATPaseswere, however, insensitive to concentrations of Na+ ions upto 100 HIM. By contrast, H+-PPase activity of the tonoplastwas severely inhibited with increasing [Na+]in under salt stressand recovered with high [Ca2+]ex. These findings suggest thathigh-NaCl stress increases the intracellular concentration ofNa+ ions in mung bean roots, which inhibits the tonoplast H+-PPase,and the activity of the plasmalemma H+-ATPase is thereby stimulatedand regulates the cytoplasmic pH. (Received March 26, 1991; Accepted December 13, 1991)  相似文献   

13.
Soybean [Glycine max (L.) Merrill] plants that had been subjectedto 15 d of nitrogen deprivation were resupplied for 10 d with1.0 mol m–3 nitrogen provided as NO3, NH4+, orNH4++NO3 in flowing hydroponic culture. Plants in a fourthhydroponic system received 1.0 mol m–3 NO3 duringboth stress and resupply periods. Concentrations of solublecarbohydrates and organic acids in roots increased 210 and 370%,respectively, during stress. For the first day of resupply,however, specific uptake rates of nitrogen, determined by ionchromatography as depletion from solution, were lower for stressedthan for non-stressed plants by 43% for NO3- resupply, by 32%for NH4+ + NO3 resupply, and 86% for NH4+ resupply. Whenspecific uptake of nitrogen for stressed plants recovered torates for non-stressed plants at 6 to 8 d after nitrogen resupply,carbohydrates and organic acids in their roots had declinedto concentrations lower than those of non-stressed plants. Recoveryof nitrogen uptake capacity of roots thus does not appear tobe regulated simply by the content of soluble carbon compoundswithin roots. Solution concentrations of NH4+ and NO3 were monitoredat 62.5 min intervals during the first 3 d of resupply. Intermittent‘hourly’ intervals of net influx and net effluxoccurred. Rates of uptake during influx intervals were greaterfor the NH4+ -resupplied than for the NO3 -resuppliedplants. For NH4+ -resupplied plants, however, the hourly intervalsof efflux were more numerous than for NO3 -resuppliedplants. It thus is possible that, instead of repressing NH4+influx, increased accumulation of amino acids and NH4+ in NH4+-resupplled plants inhibited net uptake by stimulation of effluxof NH4+ absorbed in excess of availability of carbon skeletonsfor assimilation. Entry of NH4+ into root cytoplasm appearedto be less restricted than translocation of amino acids fromthe cytoplasm into the xylem. Key words: Ammonium, nitrate, nitrogen-nutrition, nitrogen-stress, soybean  相似文献   

14.
Effect of Sudden Salt Stress on Ion Fluxes in Intact Wheat Suspension Cells   总被引:4,自引:0,他引:4  
Although salinity is one of the major problems limiting agriculturalproduction around the world, the underlying mechanisms of highNaCl perception and tolerance are still poorly understood. Theeffects of different bathing solutions and fusicoccin (FC),a known activator of plasma membrane ATPase, on plasma membranepotential (Em) and net fluxes of Na+, K+and H+were studied inwheat suspension cells (Triticum aestivum) in response to differentNaCl treatments. Emof cells in Murashige and Skoog (MS) mediumwas less negative than in cells exposed to a medium containing10 mM KCl + 0.1 m M CaCl2(KSM) and to a basic salt medium (BSM),containing 1 m M KCl and 0.1 m M CaCl2. Multiphasic Na+accumulationin cells was observed, peaking at 13 min after addition of 120m M NaCl to MS medium. This time scale was in good agreementwith net Na+flux changes measured non-invasively by moving ion-selectivemicroelectrodes (the MIFE system). When 120 m M NaCl was addedto all media studied, a quick rise of Na+influx was reversedwithin the first 20 min. In both 120 and 20 m M NaCl treatmentsin MS medium, net Na+efflux was observed, indicating that activeNa+transporters function in the plant cell response to saltstress. Lower external K+concentrations (KSM and BSM) and FCpre-treatment caused shifts in Na+fluxes towards net influxat 120 m M NaCl stress. Copyright 2000 Annals of Botany Company Sodium, potassium, proton, membrane potential, fusicoccin, salt stress, wheat, Triticum aestivum  相似文献   

15.
Light-induced H+ release from CF1-depleted thylakoid membraneswas examined by monitoring the pH in the intra- and extrathylakoidalspace and by analyzing the consumption and production of O2that accompany the electron transfer. Our results indicatedthat the H+ release was not due to the H+ transport across themembrane or to the net H+ production in PS II as previouslysuggested. (Received April 14, 1988; Accepted June 13, 1988)  相似文献   

16.
The processes of NO3 uptake and transport and the effectsof NH4+ or L-glutamate on these processes were investigatedwith excised non-mycorrhizal beech (Fagus sylvatica L.) roots.NO3 net uptake followed uniphasic Michaelis-Menten kineticsin a concentration range of 10µM to 1 mM with an apparentKm of 9.2 µM and a Vmax of 366 nmol g–1 FW h–1.NH4+, when present in excess to NO3, or 10 mM L-glutamateinhibited the net uptake of NO3 Apparently, part of NO3taken up was loaded into the xylem. Relative xylem loading ofNO3 ranged from 3.21.6 to 6.45.1% of NO3 netuptake. It was not affected by treatment with NH4+ or L-glutamate.16N/13N double labelling experiments showed that NO3efflux from roots increased with increasing influx of NO3and, therefore, declined if influx was reduced by NH4+ or L-glutamateexposure. From these results it is concluded that NO3net uptake by non-mycorrhizal beech roots is reduced by NH4+or L-glutamate at the level of influx and not at the level ofefflux. Key words: Nitrate transport, net uptake, influx, efflux, ammonium, Fagus, Fagaceae  相似文献   

17.
Using intact and osmotically ruptured chloroplasts, ratios ofcoupling between deposition of protons in the intrathylakoidspace and light-dependent transport of electrons from waterto an external acceptor were determined. The data indicate couplingbetween proton and electron transport at a ratio of H+/e=3 withmethylviologen as electron acceptor in thylakoids and with nitriteas electron acceptor in intact chloroplasts. With ferricyanideas electron acceptor in thylakoids, values close to H+/e=2 wereobserved. Evidence is discussed that H+/e=3 is a fixed valuein intact chloroplasts at levels of thylakoid energization sufficientfor supporting effective carbon assimilation. In the presence of methylviologen and ascorbate, the minimumquantum requirement of oxygen uptake by thylakoids was about2.7 quanta of 675 nm light per O2 indicating an e/O2 ratio of1.33. In the absence of ascorbate, and with KCN present in additionto methylviologen, e/O2 ratios up to 4 were observed. The minimumquantum requirement of oxygen evolution by thylakoids in thepresence of ferricyanide and by intact chloroplasts in the presenceof nitrite was about 8 quanta/O2. (Received May 1, 1995; Accepted October 2, 1995)  相似文献   

18.
H+-Transport activity of the vesicles prepared from barley rootswas studied at the early phase after application of NaCl stress.The activity reached maximal level at 3 days after the treatmentwith 200 mM NaCl which moderately reduced the growth. This activityincrease could be suppressed in the presence of cycloheximideand actinomycin D. The properties of the membrane vesicles associated with H+-transportactivity prepared from both control and NaCl-stressed rootssuggested that it was of tonoplast origin based on the followingfindings: optimal pH at 7.5, strong inhibition by nitrate butnot by vanadate, and stimulation by chloride. The density gradient centrifugation of vesicles with DextranT70 did not show any detectable difference in the distributionpatterns of H+-transport activities between control and NaClstressedroots. Furthermore, Km values for ATP of the H+-transport activityof vesicles prepared from control and NaCl-stressed roots werethe same. Therefore, H+-transport activity with properties similarto those of the control roots was increased by NaCl stress.The results are discussed in terms of an adaptive mechanismof barley against salt stress. 1Permanent address: Department of Horticulture, College of Agriculture,Chonnam National University, Chonnam 500, Korea. (Received April 18, 1988; Accepted July 20, 1988)  相似文献   

19.
Continuous measurements of cytoplasmic pH (pHc) in Sinapis roothairs have been carried out with double-barrelled pH-micro-electrodesin order to gain information on translocation of protons acrossthe plasmalemma and cytoplasmic pH control. (i) The cytoplasmicpH of Sinapis (7–33 ? 0–12, standard conditions)changes no more than 0.1 pHc, per pHo-unit, regardless of whethercyanide is present or not. (ii) Weak acids rapidly acidify pHcand hyperpolarize, while weak bases alkalize pHc and depolarizethe cells, (iii) 1.0 mol M,3 NaCN acidifies the cytoplasm by0.4 to 0.7 pH-units, but alkalizes the vacuole. (iv) 20 mmolm–3 CCCP has no significant effect on pHc, if added atpH 9.6 or 7.2, but acidifies pHc by 1.3 units at pH 4.3. Inthe presence of CCCP, cyanide acidifies the cytoplasm, (v) Chloridetransiently acidifies pHc, while K+, Na+, and have no significant effects, (vi) Cytoplasmic buffer capacityforms a bell-shaped curve versus pHc with an optimum of about50 mol m–3 H+pHc-unit. The modes of proton re-entry and the effects of active and passiveproton transport on cellular pH control are critically discussed.It is suggested that the proton leak, consisting of H+-cotransport(e.g. H+/Cl) rather than H+-uniport, is no threat topHc. The proton export pump, although itself reacting to changesin pHc, influences pHc only to a minor extent. It is concludedthat buffer capacity and membrane transport play moderate rolesin pHc control in Sinapis, while the interlocked H+-producingand -consuming reactions of cellular metabolism are the mainregulating factors. This makes pH control in Sinapis quite differentfrom bacterial and animal cells. Key words: Cytoplasmic pH, double-barrelled pH micro-electrode, pH control, proton transport, Sinapis  相似文献   

20.
Seven heathland species, four herbaceous plants and three dwarfshrubs, were tested for their capacity to utilize NH4+ or NO3. When cultured in solution at pH 4.0 with 2mol m–3 N,all species showed similar growth responses with respect toN source. Nitrate was assimilated almost equally well as ammonium,with relative growth rate generally averaging 5–8% lowerfor NO3 grown plants, albeit not always significantly.However, N source was significantly and consistently correlatedwith biomass partitioning, as NH4+-fed plants allocated moredry matter to shoots and less to roots when compared to NO3-fed plants. The strong difference in biomass partitioning mayrelate to the relative surplus of carbon per unit plant N (or,alternatively, the relatively suboptimal rate of N assimilationper unit plantC) in NO3-fed plants Inherently slow-growing dwarf shrubs accumulated virtually nofree nitrate in their tissues and reduction of nitrate was strictlyroot-based. Faster-growing herbaceous plants, however, partitionedthe assimilation of nitrate over both shoots and roots, therebyaccumulating relatively high tissue NO3 levels. Ion uptakerates depended clearly on the ‘relative shoot demand’.At similar shoot demands, especially in the herbaceous species,specific uptake rates for N and total inorganic (non-N) anionswere higher in NH4+ -fed plants, whereas the uptake rate fortotal (non-N) cations was higher in NO3-fed plants. Rateof P uptake was enhanced with increasing plant demand, but wasindependent of the N source. Net H+ extrusions ranged from 1.00to 1.34 H+ per NH4+, and from –0.48 to –0.77 H+per NO3 taken up. Key words: Ammonium, biomass partitioning, heathland plants, low pH, nitrate, nitrate reductase activity, relative shoot demand, specific absorption rate  相似文献   

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