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1.
Glutamate dehydrogenase (GDH) (EC 1.4.1.3 [EC] .) purified from greentobacco callus mitochondria was activated markedly by Ca2$ inthe amination reaction. This activation was detectable evenat concentrations below 5 µM Ca2$. Saturation curves for the three substrates of the aminationreaction showed normal Michaelis-Menten kinetics in the presenceof 1 mM of Ca2$, but pronounced substrate inhibition occurredwithout Ca2$. The effect of Ca2$ was chiefly on the maximalvelocity. The saturation curve for NH4Cl in the presence of Ca2$ was modulatedby a change in pH. The apparent Km value for NH4Cl markedlydecreased whereas that for -ketoglutarate increased slightlywhen the pH was raised from 7.3 to 9.0. In contrast, the Kmfor NADH was little affected by raising the pH. The characteristicof GDH which increases its affinity for NH4Cl when the pH israised may be compatible with the detoxification of ammonia. 1 Present address: Mochida Pharmaceutical Co., Ltd. (Received August 24, 1981; Accepted November 28, 1981)  相似文献   

2.
Since Na$$K$-activated ATPase was first described, using arthropodtissues, it has become well-recognized as the enzymatic equivalentof the sodium pump. Occurring in the basolateral plasma membranesof epithelial ion-transporting cells, it is responsible forthe transport of Na$ out of cells in exchange for the cytosol-directedmovement of a counterion (K$ or NH4$). Its kinetic and dynamicproperties suggest that it serves as a major limiting factorin whole-body Na$ regulation by aquatic arthropods. Its contributionto NH4$ excretion awaits isolation of Na$ $ K$-ATPase-enrichedmembrane fractions and determination of their transport properties.The role of Na$$K$-ATPase in insect epitheha is made uncertainby the apparent inaccessibility of the ATPase to the inhibitorouabain. Two other membrane-bound ATPases, K$-stimulated ATPaseand anion-dependent ATPase, have been described in arthropodtissues, but their physiological roles are not clear.  相似文献   

3.
Reactivation of photosynthetic oxygen-evolution was investigatedwith chloroplasts inhibited by 0.8 M Tris-, 0.8 M Tris-20% acetone-,0.8 M KCl-, 0.5 M NaClO4- or 1 mM NH2OH-washing, and with heat-treatedor aged chloroplasts. These chloroplasts restored oxygen evolvingactivity by two successive treatments; incubation of chloroplastswith reduced DPIP, then with Mn2$, Ca2$, dithiothreitol andbovine serum albumin under weak illumination (light-reactivation). Some factors required for light-reactivation could be omitteddepending on the inhibition treatment. For example, Mn2$, Ca2$and dithiothreitol were not necessary for (1 mM NH2OH-STN (pH7.0)-washed)-DPIP-treated chloroplasts, and dithiothreitol for(Tris-acetone (pH 8.4)-washed)-DPIP-treated chloroplasts. Uncouplers, such as atebrin, CCCP, DCCD and NH4Cl, inhibitedthe lightreactivation. The Mn and Ca contents of the chloroplasts were determined withinhibited and DPIP-treated chloroplasts. The Mn content of thechloroplasts tended to decrease with increasing pH of the washingmedium for inhibition. The Ca content decreased when chloroplastswere washed with 0.8 M KCl. (Received November 22, 1974; )  相似文献   

4.
In apple fruit, active ATP-dependent microsomal Ca2$ uptakeand respiration-dependent mitochondrial Ca2$ uptake were observed. The mitochondrial Ca2$ uptake was depressed by the calmodulinantagonists chlorpromazine hydrochloride (CPZ) and N-(6-aminohexyl)-5-chloro-1-naphthalene-sulfonamidehydrochloride (W-7). The Ca2$-ATPase from apple mitochondriawas also inhibited by CPZ or W-7. The apparent Km value forCa2$ in mitochondrial Ca2$ uptake (Km=0.35 mM) was similar tothat of mitochondrial Ca2$-ATPase (Km=0.32 mM). The inhibitoryeffect of W-7 on the activity of the mitochondrial Ca2$ uptakewas closely correlated with the inhibition by W-7 of mitochondrialCa2$-ATPase (r=0.996). These findings indicate that the mitochondrialuptake of Ca2$ in apple fruit depends on the calmodulin-mediatedactivation of Ca2$-ATPase. The microsomal Ca2$ uptake was depressed by CPZ, suggestingthat the microsomal Ca2$ uptake may also be modulated by calmodulin. 1 Contribution No. C-72, Fruit Tree Research Station. (Received June 7, 1982; Accepted October 19, 1982)  相似文献   

5.
Low concentrations of ammonia and methylamine greatly increaseCl influx into Chara corallina. Both amines have theirmaximum effect at pH 6.5–7.5. The amine stimulation ofCl influx is small below about pH 5.5. Above pH 8.5 theremay be inhibition of influx by amines. Concentrations of 10–25µM ammonia are sufficient to cause the maximum stimulationof Cl influx; the corresponding methylamine concentrationsare 0.1–0.2 mM. It is concluded that entry of amine cations(NH4$ and CH3NH3$), rather than unionized bases (NH3 and CH3NH2),causes Cl transport to be increased. Increases in rates of Cl transport are not necessarilyaccompanied by effects on HCO3$ assimilation and OH efflux.Measurements of localized pH differences at the cell surfaceand of circulating electric currents in the bathing solutionshow that these phenomena are only significantly affected byammonia at or above 50 µM and by methylamine at or above1.0 mM. The significance of the effects of amines is assessedin relation to current ideas about transport of Cl, HCO3,and OH.  相似文献   

6.
Activity of glucose 6-phosphate dehydrogenase (D-glucose 6-phosphate:NADP oxidoreductase, EC 1.1.1.49 [EC] ) preparation from sweet potatoroot tissue was markedly altered in the presence of variousions. Cations or anions were effective in the following order:Na$, K$>Tris$>NH4$>Mg2$>Ca2$, or Cl>NO3,HPO42–>SO42–>HCO3. Activity was inhibitedat high concentrations of Ca2$, and HCO3,. In an investigationon the dependence of the activity on pH, two activity peakswere clearly observed at low ionic strength. Ionic strength altered both the Km and Vmax for glucose 6-phosphate(G6P). A Lineweaver-Burk plot for the enzyme, with respect toG6P, showed a bimodal nature at low ionic strength; suggestingnegative cooperativity. Deviation from linearity of the plotwas less with an increase in the ionic strength. 1 Present address: Institute of Applied Microbiology, Universityof Tokyo, Bunkyo-ku, Tokyo 113. (Received September 18, 1971; )  相似文献   

7.
When radish plants were grown in nutrient solutions that containedammonium ions (NH4+) as the sole source of nitrogen, they grewpoorly and accumulated high levels of NH4+ in their leaves.However, radish plants cultured in 5 mM NH4+ plus 1 mM NO3(a ratio of 5 : 1 in forms of nitrogen; referred to as 5:lmix-N)grew well and accumulated very low levels of NH4+ in their leaves.After radish plants were cultured in solutions that containedNO3, or NH4+, or 5: lmix-N for a week, they were thensupplied with the same nitrogen source labeled with 15N forone day. The uptake of 15N from labeled NH4+ into total nitrogenwas the highest in plants supplied with 5:1mix-N. These plantsconverted far fewer labeled NH4+ into free NH4+ than did NH4+-fedplants, but converted many more labeled NH4+ into the insolublefraction than did NH4+- or NO3-fed plants. The presence of a small amount of nitrate was shown to stimulatethe assimilation of ammonium ions and the synthesis of proteins. (Received October 26, 1988; Accepted January 24, 1989)  相似文献   

8.
The pH changes in the blue-green alga (cyanobacterium) Anabaenacylindrica caused by addition of ammonia were investigated using31P NMR spectroscopy. A pH shift of 0.9 or more was observedwhen 30 nM NH4OH was added to the cell suspension, but no significantcellular pH change was observed with 50 mM NH4CI, a concentrationhigh enough to stimulate dark CO2 fixation of this alga. Thechange in cellular pH does not seem to cause ammonia-inducedstimulation of dark CO2 fixation. (Received June 22, 1985; Accepted January 10, 1986)  相似文献   

9.
Marques, I. A., Oberholzer, M. J. and Erismann, K. H. 1985.Metabolism of glycollate by Lemna minor L. grown on nitrateor ammonium as nitrogen source.—J. exp. Bot. 36: 1685–1697. Duckweed, Lemna minor L., grown on inorganic nutrient solutionscontaining either NH4+ or NO3 as nitrogen source wasallowed to assimilate [1-14C]- or [2-14C]glycollate during a20 min period in darkness or in light. The incorporation ofradioactivity into water-soluble metabolites, the insolublefraction, and into the CO2 released was measured. In additionthe extractable activity of phosphoenolpyruvate carboxylasewas determined. During the metabolism of [2-14C]glycollate in darkness, as wellas in the light, NH4+ grown plants evolved more 14CO2 than NO3grown plants. Formate was labelled only from [2-14C]glycollateand in NH4+ grown plants it was significantly less labelledin light than in darkness. In NO3 grown plants formateshowed similar radioactivity after dark and light labelling.The radioactivity in glycine was little influenced by the nitrogensource. Amounts of radioactivity in serine implied that thefurther metabolism of serine was reduced in darkness comparedwith its metabolism in the light under both nitrogen regimes.In illuminated NH4+ plants, serine was labelled through a pathwaystarting from phosphoglycerate. After [1-14C]glycollate feedingNH4+ grown plants contained markedly more radioactive aspartateand malate than NO3 plants indicating a stimulated phosphoenolpyruvatecarboxylation in plants grown on NH4+. Key words: Photorespiration, glycollate, nitrogen, Lemna  相似文献   

10.
Experiments were conducted to investigate the effect of concentrationof NH4+ in nutrient solution on root assimilation of NO3and to determine whether the NH4+NO3 interaction wasmodified in the presence of K+. Dark-grown, detopped corn seedlings(cv. Pioneer 3369A) were exposed for 8 h to 0.15 mM Ca(NO3)2and varying concentrations of (NH4)2SO4 in the absence or presenceof 0.15 mM K2SO4. The accelerated phase of NO3 uptakeappeared most sensitive to restriction by additions of 0.15mM (NH4)2SO4. In the absence of K+, the restriction increasedonly slightly even when solution (NH4)2SO4, was increased from0.15 mM to 12.5 mM which was accompanied by an increase of NH4+in the tissue from about 7.0 to 35 µmol g–1 fr.wt. of root. Increasing concentrations of solution NH4+ progressivelyinhibited net K+ uptake. At the highest solution NH4+ concentrations,there was an initial net efflux of K+ and no net influx occurredduring the treatment period. The severity of the NH4)SO4 restrictionof NO3 uptake was moderated considerably in the presenceof K+ as long as a net influx of K+ occurred. However, net influxof K+ was not associated with alteration of NH4+ uptake, assimilation,or accumulation in the root tissue. The lack of correlationbetween the severity of restriction of NO3 uptake andendogenous NHJ suggested the restriction resulted from an effectexerted by exogenous NH4+ which tended to saturate at lowersolution NHJ concentrations or by inhibitory factors generatedduring assimilation of NH4+. Several mechanisms were postulatedto account for the moderating influence of K+. In all experiments,root NO3 reduction was restricted by the presence ofambient NH4+. The quantitative decreases in reduction tendedto be less than decreases in NO3 uptake and therefore,could result from inhibition solely of uptake with subsequentlimitation in availability of substrate for the reduction process,but the possibility of a direct effect on reduction could notbe excluded.  相似文献   

11.
From compartmental analysis of 15N elution measurements, concentrationsand fluxes of NH+4 and NO3 were estimated for corticalcells in excised root segments, when bathed in a complete nutrientsolution, in which 20 mol m–3 NH4+ or NO3 werethe single N sources. The results were compared with those fornutrient solution containing 20 mol m–3 NH4NO3. No nitratereductase activity was detected in the roots but rapid assimilationof NH4+ occurred, due to glutamine synthetase activity. Theefflux curves for NH4+, on a 'µg 15N remaining againsttime' basis, deviated from the criteria determining conformityto first order kinetics, since the slowest rate constant wasan order of magnitude lower than that exhibited by the curvefor efflux versus time. The data were transformed to conformto the appropriate criteria, revealing a large slowly exchangingpool equated with assimilated NH4+. The presence of NO3had little effect on NH4+ uptake and exchange, but NH4+ suppressedNOj uptake and reduced exchange across plasmalemma and tonoplast.It was established that NH4+ absorption was an active process.However, NH4+ entering and leaving the vacuole was overestimated,since the flux equation used did not differentiate between total15NH4 influx at the plasmalemma and that at the tonoplast, afterassimilation. The only active NO3 transfer was influxat the plasmalemma. The results were compared with those ofothers using13N and 36C1O3 analogues to measure NH4+ and NO3fluxes in cereal roots. Key words: Ammonium, nitrate, compartmental analysis, 15N, active transport  相似文献   

12.
Ammonium influx into roots and N translocation to the shootswere measured in 3-week-old hydroponically grown rice seedlings(Oryza sativa L., cv. IR72) under conditions of N deprivationand NH4+ resupply, using 13NH4+as a tracer. Root NH4+ influxwas repressed in plants continuously supplied with NH4+ (at0.1 mM), but a high proportion of absorbed N (20 to 30%) wastranslocated to the shoot in the form of N assimilates duringthe 13-min loading and desorption periods. Interruption of exogenousNH4+ supply for periods of 1 to 3 d caused NH4+ influx to bede-repressed. This same treatment caused N translocation tothe shoot to decline rapidly, until, by 24 h, less than 5% ofthe absorbed 13N was translocated to the shoot, illustratinga clear priority of root over shoot N demand under conditionsof N deprivation. Upon resupplying 1 mM NH4+, root NH4+ influxresponded in a distinct four-phase pattern, exhibiting periodsin which NH4+ influx was first enhanced and subsequently reduced.Notably, a 25 to 40% increase in root influx, peaking at {smalltilde}2 h following re-exposure was correlated with a 4- to5-fold enhancement in shoot translocation and a repression ofroot GS activity. The transient increase of NH4+ influx wasalso observed in seedlings continuously supplied with NO3and subsequently transferred to NH4+. Extended exposure to NH4+caused root NH4+ influx to decrease progressively, while shoottranslocation was restored to {small tilde}30% of incoming NH4+.The nature of the feedback control of NH4+ influx as well asthe question of its inducibility are discussed. (Received August 7, 1998; Accepted September 21, 1998)  相似文献   

13.
长江三角洲地区雨水中NH4+-N/NO3--N和δ15NH4+值的变化   总被引:4,自引:0,他引:4  
2003年6月至2005年7月,利用自行设计的雨水收集器对位于长江三角洲地区的常熟、南京和杭州3个观测点进行了全年性雨水观测,分析了雨水中NH4+-N/NO3--N和铵态氮自然丰度(δ15NH4+)值的变化.结果表明:研究区3个观测点雨水中NH4+-N/NO3--N和δ15NH4+值均呈相似的季节性变化规律,两者的规律性变化在以田间农事耕作为主的常熟观测点尤其明显,而位于市区的南京观测点和位于城乡结合部的杭州观测点的规律性次之;雨水中NH4+-N/NO3--N的峰值出现在6月下旬到8月上旬,然后逐渐下降,冬季降到最低;雨水中δ15NH4+值在6月下旬到8月中旬为负值,在8月下旬到11月中下旬为正值,12月至翌年3月又变为负值,5至6月中旬又转变为正值.雨水中NH4+-N/NO3--N和δ15NH4+值的季节变化与不同作物生育期间氮肥的施用、当地气候的季节性变化以及其他NH3释放源的NH3挥发有关(人和动物排泄物、氮污染水体及有机氮源中的氨挥发),其对大气湿沉降中NH4+的来源、形态组成及陆地不同NH3排放源的强度具有明显的指示意义.  相似文献   

14.
The influence of (NH4)2SO4 on 14C assimilation and cyclosisin internodal cells of Chara corallina was investigated. Severeinhibition of 14C assimilation was found at pH values above7·0, this inhibition being correlated with the exogenouslevel of NH3 rather than NH+4. Cyclosis was also affected athigher concentrations of (NH4)2SO4. This effect was similarlycorrelated with exogenous levels of NH3. 14C assimilation was inhibited non-competitively by (NH4)2SO4,the apparent Km being increased from 0·55 to 1·5mM. The results suggest that the site(s) of inhibition is locatedat the plasmalemma, rather than at the chloroplasts. (Evidencein support of in vivo uncoupling of photophosphorylation, bylow concentrations of (NH4)2SO4, was not obtained). Significant perturbation of the OH efflux pattern wasobserved as the level of (NH4)2SO4 was increased. Induced migrationof efflux sites indicates that NH3 may interfere with the cellularmechanism that controls OH transport. Using a cell-segmentisolating chamber it was shown that (NH4)2SO4 inhibited OHefflux rather than HCO3 transport. This inhibitory effectwas readily reversible. These data are discussed in terms of a possible relationshipbetween the observe NH4)2SO4 stimulation of 36Cl influxand the effect of this compound on 14C assimilation.  相似文献   

15.
In non-nodulated soybean [Glycine max (L.) Merrill cv. Ransom]plants that were subjected to 15 d of nitrogen deprivation inflowing hydroponic culture, concentrations of nitrogen declinedto 1.0 and 1.4mmol Ng–1 dry weight in shoots and roots,respectively, and the concentration of soluble amino acids (determinedas primary amines) declined to 40µmol g–1 dry weightin both shoots and roots. In one experiment, nitrogen was resuppliedfor 10 d to one set of nitrogen-depleted plants as 1.0 mol m–3NH4+ to the whole root system, to a second set as 0.5 mol m–3NH4+ plus 0.5 mol m–3 NO3 to the whole root system,and to a third set as 1.0 mol m–3 NH4+ to one-half ofa split-root system and 1.0 mol m–3 NO3 to theother half. In a second experiment, 1.0 mol m–3 of nitrogenwas resupplied for 4 d to whole root systems in NH4+ : NO3ratios of 1:0, 9:1, and 1:1. Nutrient solutions were maintainedat pH 6.0. When NH4+ was resupplied in combination with NO3 to thewhole root system in Experiment I, cumulative uptake of NH4+for the 10 d of resupply was about twice as great as when NH4+was resupplied alone. Also, about twice as much NH4+ as NO3was taken up when both ions were resupplied to the whole rootsystem. When NH4+ and NO3 were resupplied to separatehalves of a split-root system, however, cumulative uptake ofNH4+ was about half that of NO3. The uptake of NH4+,which is inhibited in nitrogen-depleted plants, thus is facilitatedby the presence of exogenous NO3, and the stimulatingeffect of NO3 on uptake of NH4+ appears to be confinedto processes within root tissues. In Experiment II, resupplyof nitrogen as both NH4+ and NO3 in a ratio of either1:1 or 9:1 enhanced the uptake of NH4+. The enhancement of NH4+uptake was 1.8-fold greater when the NH4+: NO3-resupplyratio was 1:1 than when it was 9:1; however, only 1.3 timesas much NO3 was taken up by plants resupplied with the1 :1 exogenous ratio. The effect of NO3 on enhancementof uptake of NH4+ apparently involves more than net uptake ofNO3 itself and perhaps entails an effect of NO3uptake on maintenance of K+ availability within the plant. Theconcentration of K+ in plants declined slightly during nitrogendeprivation and continued to decline following resupply of nitrogen.The greatest decline in K+ concentration occurred when nitrogenwas resupplied as NH4+ alone. It is proposed that decreasedavailability of K+ within the NH4+-resup-plied plants inhibitedNH4+ uptake through restricted transfer of amino acids fromthe root symplasm into the xylem. Key words: Ammonium, Glycine max, nitrate, nitrogen-nutrition, nitrogen stress, split-root cultures  相似文献   

16.
Photoautotrophic cell suspension cultures of Chenopodium rubrumrequire high concentrations of nitrate and ammonium. Duringthe growth phase total NH4+ and the greater portion of NH3were consumed. During the stationary phase nitrate uptake continuedbut at a substantially smaller rate than during the growth phase.During growth the bulk of the absorbed N was incorporated intoprotein, the amount of which was then maintained constant untilsenescence. NH3 was accumulated upon transition betweenthe growth and the stationary phase. NH3, like the freeamino acids, was deposited in the vacuole but, unlike thesecompounds, could not be remobilized upon transfer of the cellsinto N-free medium. Readdition of NH4+ to the medium, however,resulted in a mobilization of the vacuolar NH3-pool.Reutilization of both vacuolar N-storage pools must have beenaccomplished by recycling from the vacuole to the cytoplasmbecause N-metabolizing enzymes could not be detected in isolatedvacuoles. Transfer of the cells of the stationary phase intomedium containing NH3 and NH4+ resulted in an inductionof nitrate uptake by the cells, but only after a lag phase of4–5 days. It is conceivable that NH4+ induces NH3-translocatingsystems in the plasmalemma and in the tonoplast. (Received December 19, 1988; Accepted March 2, 1989)  相似文献   

17.
The effects of NO-3 and NH+4 nutrition on hydroponically grownwheat (Triticum aestivum L.) and maize (Zea mays L.) were assessedfrom measurements of growth, gas exchange and xylem sap nitrogencontents. Biomass accumulation and shoot moisture contents ofwheat and maize were lower with NH+4 than with NO-3 nutrition.The shoot:root ratios of wheat plants were increased with NH+4compared to NO-3 nutrition, while those of maize were unaffectedby the nitrogen source. Differences between NO-3 and NH+4-fedplant biomasses were apparent soon after introduction of thenitrogen into the root medium of both wheat and maize, and thesedifferences were compounded during growth. Photosynthetic rates of 4 mM N-fed wheat were unaffected bythe form of nitrogen supplied whereas those of 12 mM NH+4-fedwheat plants were reduced to 85% of those 12 mM NO-3-fed wheatplants. In maize supplied with 4 and 12 mM NH+4 the photosyntheticrates were 87 and 82% respectively of those of NO-3-fed plants.Reduced photosynthetic rates of NH+4 compared to NO-3-fed wheatand maize plants may thus partially explain reduced biomassaccumulation in plants supplied with NH+4 compared to NO-3 nutrition.Differences in the partitioning of biomass between the shootsand roots of NO-3-and NH+4-fed plants may also, however, arisefrom xylem translocation of carbon from the root to the shootin the form of amino compounds. The organic nitrogen contentof xylem sap was found to be considerably higher in NH+4- thanin NO-3-fed plants. This may result in depletion of root carbohydrateresources through translocation of amino compounds to the shootin NH+4-fed wheat plants. The concentration of carbon associatedwith organic nitrogen in the xylem sap of maize was considerablyhigher than that in wheat. This may indicate that the shootand root components of maize share a common carbon pool andthus differences induced by different forms of inorganic nitrogenare manifested as altered overall growth rather than changesin the shoot:root ratios.Copyright 1993, 1999 Academic Press Triticum aestivum, wheat, Zea mays, maize, nitrogen, growth, photosynthesis, amino acids, xylem  相似文献   

18.
We present results from a study of soil solution concentrations of ammonium (NH4+), nitrate (NO3-), and amino acid N over one growing season along a local 90-m-long plant productivity gradient in a boreal forest. Three forest types are found along the gradient: an ericaceous dwarf-shrub type between 0 and 40 m, a low-herb type between 40 and 80 m, and a tall-herb type at 90 m. Soil sampling of the mor layer was performed in June, July, August and October in the three forest types. In addition, plant uptake of NH4+, NO3- and the amino acid glycine was investigated. A mixture of the three N forms was injected into the soil; one N form at a time was labeled with 15N, and in the case of glycine also with 13C. In the dwarf-shrub forest, where plant productivity was low, the soil N pool was strongly dominated by amino acid N. There, plants took up more NH4+ than NO3-. Glycine uptake did not differ significantly from either NH4+ or NO3- uptake. Along the gradient, soil concentrations of NH4+ and NO3- increased, as did plant productivity. In the low-herb forest NH4+ comprised a major portion of the soil N pool, and plants took up more NH4+ than NO3- or glycine. In the tall-herb forest, NO3- was as abundant as NH4+, and together these two N forms dominated the soil N pool. Here, plants took up nearly equal amounts of NO3- and NH4+, and this uptake exceeded that of glycine severalfold. Apart from the overall preference for NH4+ that plants exhibited throughout the gradient, the results show a correlation between soil concentrations of amino acids and NO3- and plant preferences for these N forms.  相似文献   

19.
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   

20.
Allen, S. and Smith, J A. C. 1986. Ammonium nutrition in Ricinuscommunis: its effect on plantgrowth and the chemical compositionof the whole plant, xylem and phloem saps.—J. exp. Bot.37: 1599–1610. The growth and chemical composition of Ricinus communis cultivatedhydroponically on 12 mol m – 3 NO3-N were comparedwith plants raised on a range of NH4+-N concentrations. At NH4+-Nconcentrations between 0·5 and 4·0 mol m–3,fresh- and dry-weight yields of 62-d-old plants were not significantlydifferent from those of the NO3-N controls. Growth wasreduced at 0·2 mol m–3 NH4+-N and was associatedwith increased root. shoot and C: organic N ratios, suggestingthat the plants were N-limited. At 8·0 mol m–3NH4+-N, growth was greatly restricted and the plants exhibitedsymptoms of severe ‘NH4+ toxicity’. Plants growingon NH4+-N showed marked acidification of the rooting medium,this effect being greatest on media supporting the highest growthrates. Shoot carboxylate content per unit dry weight was lower at mostNH4+-N concentrations than in the NO3-N controls, althoughit increased at the lowest NH4+-N levels. Root carboxylate contentwas comparable on the two N sources, but also increased substantiallyat the lowest NH4+-N levels. N source had little effect on inorganic-cationcontent at the whole-plant level, while NO3 and carboxylatewere replaced by Cl as the dominant anion in the NH4+-N plants.This was reflected in the ionic composition of the xylem andleaf-cell saps, the latter containing about 100 mol m–3Cl in plants on 8·0 mol m–3 NH4+. Xylem-saporganic-N concentration increased more than threefold with NH4+-N(with glutamine being the dominant compound irrespective ofN source) while in leaf-cell sap it increased more than 12-foldon NH4+-N media (with arginine becoming the dominant species).In the phloem, N source had little or no effect on inorganic-cation,sucrose or organic-N concentrations or sap pH, but sap fromNH4+-N plants contained high levels of Cl and serine. Collectively, the results suggested that the toxic effects ofhigh NH4+ concentrations were not the result of medium acidification,reduced inorganic-cation or carboxylate levels, or restrictedcarbohydrate availability, as is commonly supposed. Rather,NH4+ toxicity in R. communis is probably the result of changesin protein N turnover and impairment of the photorespiratoryN cycle. Key words: Ricinus, ammonium nutrition, nitrate, whole-plant composition, xylem, Phloem, amino acids, carboxylate  相似文献   

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