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1.
  1. In the presence of NADP+ and Mg++, the bundle sheath strandsisolated from corn (Zea mays) leaves by cellulase treatmentsdecarboxylated malate in the light at an initial rate (200 µmoles/mgchl.hr), which was sufficient to account for photosyntheticCO2 fixation in intact leaves. This rate gradually slowed downand then stopped. The final level of the malate decarboxylatedwas approximately equal to the amount of NADP+ added.
  2. Rapidand continued decarboxylation of malate was observed whenNADP+,3-phosphoglyceric acid and ATP (and Mg++) were addedtogether.The addition of ADP instead of ATP showed a similareffect.Light did not show any effect on the malate decarboxylationin the presence of ATP or ADP.
  3. When malate was added to thebundle sheath strands in the presenceof exogenous NADP+ NADP+was rapidly reduced. The reductionstopped after 2 min when,73% of the added NADP+ was reduced.The further addition of3-phosphoglyceric acid and ATP broughtabout a decrease in theNADPH-level, which rose again to attaina new steady level.
  4. The transfer of radioactivity from (1-14C-3-phosphoglycericacid to dihydroxyacetone phosphate in the bundle sheath strandsin the presence of ATP and NADP+ was greatly enhanced by theaddition of malate.
  5. In the presence of ribose 5-phosphateand ATP, the rate of 14C-transferfrom (4-14C)-malate to theintermediates of the reductive pentosephosphate cycle was equalto that of 14CO2 fixation in the light.
All these results support the current view that in the bundlesheath cells of C4 plants belonging to the NADP-malic enzyme-group,the decarboxylation of malate is coupled to the fixation ofthe released CO2 and the reduction of 3-phosphoglyceric acidformed as a result of CO2 fixation. 1 Part of this research was reported at the 40th Annual Meetingof the Botanical Society of Japan Osaka, December, 1975. 3 Present address: Laboratory of Chemistry, Faculty of Medicine,Teikyo University, 359 Otsuka, Hachioji-City, Tokyo 173, Japan. (Received April 30, 1977; )  相似文献   

2.
Distribution of iron-containing oxidases in aging nodal rootsof rice and wheat was studied. Activities of cytochrome c oxidase(1.9.3.1 [EC] , cytochrome c : O2 oxidoreductase), catalase (1.11.1.6 [EC] ,H2O2: H2O2 oxidoreductase) and peroxidase (1.11.1.7 [EC] , donor:H2O2 oxidoreductase) in wheat roots were comparatively higherthan were those in rice roots at corresponding stages. Cytochromec oxidase in roots remained active throughout the lives of therice and wheat crops. In rice roots, catalase seemed to playa distinct role around the panicle formation stage. Decay ofcatalase activity took place earlier than did that of peroxidaseand cytochrome c oxidase activities. In wheat roots similarenzyme activity changes were not observed. Data may suggestthat the high activity of iron containing oxidases at the panicleformation stage (I) may be chiefly due to catalase activityin rice roots. 1Paper presented at the 14th Annual Meeting of the Society ofthe Science of Soil and Manure, Japan (1968). (Received November 21, 1968; )  相似文献   

3.
Pathway of mannitol formation during photosynthesis in brown algae   总被引:1,自引:0,他引:1  
Eisenia bicyclis, Arame, was allowed to photosynthesize in seawatercontaining H14CO3, and 14C-mannitol was isolated fromits fronds. The ratio of 14C-total/14C1 + 14C6 in the 14C-mannitolwas found to be about 8.0 at 1 min-illumination, but graduallydecreased with time to 3.0, showing uniform radioactivity distribution.Mannitol therefore seems to be formed in brown algae throughthree carbon compounds. Enzymes which may be involved in the possible biosynthetic pathwayof mannitol, i.e. aldolase, hexose diphosphatase, mannitol-1-phosphataseand glucosephosphate isomerase were present in extracts fromseveral brown algae. Some of their properties are discussed. 1Contribution from the Shimoda Marine Biological Station ofTokyo Kyoiku University, No. 187. 2Present address: Reseach Institute, Seikagaku Kogyo Co., Ltd.,Yamato-machi, Kitatama-gun, Tokyo, Japan. (Received December 13, 1968; )  相似文献   

4.
Trichosporon cutaneum WY2-2 was shown to metabolize p-hydroxybenzoatevia protocatechuate and hydroxyquinol. Using superoxide dismutaseas a stabilizer of hydroxyquinol, the conversion of protocatechuateto hydroxyquinol and the ring fission process of hydroxyquinolwere confirmed. Hydroxyquinol was chemically identified as theproduct of protocatechuate hydroxylase reaction. Partially purifiedprotocatechuate hydroxylase was highly specific for protocatechuate;its Km values for protocatechuate and NADH were 17.6 and 12.4µM, respectively. It catalyzed equimolar CO2 formation,NADH oxidation and O2 consumption from protocatechuate. Hydroxyquinoldioxygenase was highly specific for hydroxyquinol, with a Kmof 2.9 µM. 1A preliminary account of this work was presented at the 81stMeeting of the Chubu-branch of Agricultural Chemical Societyof Japan, Gifu, October, 1980. 2Present address: Biological Institute, Faculty of Science,Nagoya University, Nagoya 464, Japan. 3Present address: Shin Nihon Chemical Co. Ltd... 19-10, Showa-cho,Anjoh, Aichi 446, Japan. (Received November 15, 1985; Accepted August 27, 1986)  相似文献   

5.
Glycine decarboxylation, shown by us as an intermediate stepin CO2 evolution during photorespiration, was enhanced by oxygentensions of up to 100%, whereas CO2 evolution from glucose didnot increase when oxygen tensions were raised above 20%. Thus,we concluded that enhancement of photorespiration by oxygenis not only due to stimulation of glycolate oxidation, but alsoto stimulation of glycine decarboxylation. 1 This work was reported at the Annual Meeting (1971) of theJapanese Society of Plant Physiologists in Okayama. 2 The Okayama Tobacco Experiment Station, Japan Monopoly Corporation,Tamashima, Kurashiki, Okayama. 3 The Hatano Tobacco Experiment Station, Japan Monopoly Corporation,Naganuki, Hatano, Kanagawa. (Received October 19, 1971; )  相似文献   

6.
The metabolic transformation of glycine into serine in the photosyntheticbacterium Chromatium vinosum was accompanied by the evolutionof CO2 due to decarboxylation of glycine. Isonicotinylhydrazideinhibited both 14CO2 evolution and the formation of 14C-serinefrom 14C-glycine. The results indicate that a glycine-serinetransformation reaction takes place which is analogous to thatoccurring in green leaf tissues. Glycine may be metabolisedthrough serine by this reaction. The light stimulation of 14CO2evolution and 14C-serine formation from 14C-glycine by the Chromatiumcells are judged to be results of the light-induced enhancementof 14C-glycine uptake by the bacterial cells. 1This is paper 53 in the series "Structure and Function of ChloroplastProteins" and paper 7 of the series "Biosynthetic Mechanismof Glycolate in Chromatium". Paper 6 of the latter series isRef. 3 by Asami and Akazawa (1978). 2This study was aided by research grants from the Ministry ofEducation, Science and Culture of Japan and the Nissan ScienceFoundation (Tokyo). 3Postdoctoral Fellow (1980) of the Japan Society for the Promotionof Science. (Received May 20, 1980; )  相似文献   

7.
  1. Formyltetrahydrofolate synthetase (E. C. 6. 3. 4. 3) was foundto be widely distributed in higher plants and the high enzymeactivity was observed in green leaves of Brassica and Alliumspecies, spinach, and in pea seedlings. In pea seedlings, theenzyme activity changed during the course of germination, andmost of the enzyme activity was located in a soluble fractionof the cytoplasm.
  2. The enzyme was labile and lost the activityrapidly, even whenstored at 5 in the presence of 0.1 M mercaptoethanol.It was,however, found that ammonium sulfate was very effectivein stabilizingthe enzyme activity.
  3. The enzyme has been purifiedapproximately 500-fold from extractsof pea seedlings by treatmentswith ammonium sulfate, protaminesulfate, hydroxylapatite, calciumphosphate gel, and DEAE-cellulosecolumn chromatography.
  4. Thepurified enzyme was specific for formate, ATP and FAH4,andthe Michaelis constants for these reactants were 2.1 10–2M, 5.1 10–4 M, and 5.6 10–3 M, respectively.
  5. The optimum pH was found to be 8.0, and the optimal temperaturewas observed at 37. Both NH4$ and a divalent cation (MgSS orMnSS) were required for the optimal activity.
1 Studies on the Enzymatic Synthesis and Metabolism of FolateCoenzymes in Plants. II. (For the previous paper see reference(8)) A part of this paper was presented at the Meeting of theKansai Division of the Agricultural Chemical Society of Japan,Kyoto, January 29, 1966.  相似文献   

8.
A full-length cDNA for maize root-form phosphoenolpyruvate carboxylase(PEPC) was isolated. In the coding region, the root-form PEPCshowed 76 and 77% identity with the C4- and C3-form PEPCs ofmaize, respectively, at the nucleotide level. At the amino acidlevel, the root-form was 81 and 85% identical to the C4- andC3-form PEPCs, respectively. The entire coding region was insertedinto a pET32a expression vector so that it was expressed underthe control of T7 promoter. The purified recombinant root-formPEPC had a Vmax value of about 28 mol min–1(mg protein)1at pH 8.0. The Km values of root-form PEPC for PEP and Mg2+were one-tenth or less of those of C4-form PEPC when assayedat either pH 7.3 or 8.0, while the value for HCO3 wasabout one-half of that of C4-form PEPC at pH 8.0. Glucose 6-phosphateand glycine had little effect on the root-form PEPC at pH 7.3;they caused two-fold activation of the C4-form PEPC. The Ki(L-malate) values at pH 7.3 were 0.12 and 0.43 raM for the root-and C4-form PEPCs, respectively. Comparison of hydropathy profilesamong the maize PEPC isoforms suggested that several stretchesof amino acid sequences may contribute in some way to theircharacteristic kinetic properties. The root-form PEPC was phosphorylatedby both mammalian cAMP-dependent protein kinase and maize leafprotein kinase, and the phosphorylated enzyme was less sensitiveto L-malate. 1These authors contributed equally to this work. 2Present address: Otsuka Chemical Co. Ltd., 463 Kagasuno, Kawauchi-cho,Tokushima, 771-0130 Japan. 3Present address: Sumitomo Pharmaceuticals Research Center,1-98, Kasugade, Naka 3-cho-me, Konohana-ku, Osaka, 554-0022Japan.  相似文献   

9.
Most of the radioactivity incorporated into malic acid duringlight-enhanced dark 14CO2-fixation was found in C-4, supportingour conclusion that phosphoenolpyruvic acid serves as a primaryacceptor of 14CO2 to form the C4 acid. 1This work was reported at the 13th Annual Meeting of JapaneseSociety of Plant Physiologists, April, 1972. (Received January 6, 1973; )  相似文献   

10.
Phosphoenolpyruvate carboxylase (PEPC) [EC 4.1.1.31 [EC] ] of plantsundergoes regulatory phosphorylation in response to light ornutritional conditions. However, the nature of protein kinase(s)for this phosphorylation has not yet been fully elucidated.We separated a Ca2+-requiring protein kinase from Ca2+-independentone, both of which can phosphorylate maize leaf PEPC and characterizedthe former kinase after partial purification. Several linesof evidence indicated that the kinase is one of the characteristicCa2+-dependent but calmodulin-independent protein kinase (CDPK).Although the Mr, of native CDPK was estimated to be about 100kDa by gel permeation chromatography, in situ phosphorylationassay of CDPK in a SDS-polyacrylamide gel revealed that thesubunit has an Mr of about 50 kDa suggesting dimer formationor association with other protein(s). Several kinetic parameterswere also obtained using PEPC as a substrate. Although the CDPKshowed an ability of regulatory phosphorylation (Ser-15 in maizePEPC), no significant desensitization to feedback inhibitor,malate, could be observed presumably due to low extent of phosphorylation.The kinase was not specific to PEPC but phosphorylated a varietyof synthetic peptides. The possible physiological role of thiskinase was discussed. 1Present address: NEOS Central Research Laboratory, 1-1 Ohike-machi,Kosei-cho, Shiga, 520-3213 Japan. 2Present address: Chugai Pharmaceutical Co., Ltd., 1-135 Komakado,Gotemba, 412-0038 Japan. 4N.O. and N.Y. contributed equally to this work.  相似文献   

11.
Considerable amounts of auxin, mostly IAA, in acid and boundforms, occur in gills, pilei and stipes of the mushroom, Agaricusbisporus. Stipe elongation is not stimulated by applicationof IAA. The juice squeezed from the fruit body has an activity to convertL-tryptophan into IAA. This activity is not lost by heating.The substance(s) responsible for it passes through cellophane,and is insoluble in some organic solvents, such as petroleumether and benzene. The amount of IAA produced depends exactlyon the amount of the extraction residue used for the reaction.Since the activity decreases as thiosulfate is added increasingly,the active principle seems to be some strong oxidizing substance(s). 1 This paper was read on October 25th, 1958, at the 23rd annualmeeting of the Botanical Society of Japan, held at Fukuoka,Japan. 2 This investigation has been aided by a grant from the ROCKEFELLERFoundaion. 3 Present Address: J. W. GIBBS Research Laboratory, Departmentof Botany, Yale University. New Haven, Conn., U.S.A. (Received June 6, 1961; )  相似文献   

12.
The pattern for primary products of CO2-fixation and the chloroplaststructure of Amaranthus retrqflexus L., a species which incorporatescarbon dioxide into C4 dicarboxylic acids as the primary productof photosynthesis, were compared in various chlorophyll containingtissues,i.e., foliage leaves, stems, cotyledons and pale-greencallus induced from stem pith. Despite some morphological differencesin these assimilatory tissues, malate and aspartate were identifiedas the major compounds labelled during a 10 sec fixation of14CO2 in all tissues. Whereas, aspartate was the major componentin C4-dicarboxylic acids formed in foliage leaves, malate predominatedas the primary product in stems, cotyledons and the pale-greencallus. The percentage of 14C-radioactivity incorporated intoPGA and sugar-P esters increased and 14C-sucrose was detectedin the prolonged fixation of 14CO2 in the light, not only infoliage leaves, but also in stems and cotyledons. 1 This work was supported by a Grant for Scientific ResearchNo. 58813, from the Ministry of Education, Japan. 2 Present address: Institute of Applied Microbiology, Universityof Tokyo, Tokyo, Japan. 3 Present address: Department of Biochemistry, University ofGeorgia, Athens 30601. Georgia, U. S. A. (Received July 10, 1971; )  相似文献   

13.
An investigation was made to determine the effective time forCO2 treatment in overcoming self-incompatibility in Brassica.CO2 was effective when supplied to a self-pollinated flowerwhile hundreds of pollen grains were germinating on the stigma.Since the effective time coincides with the attachment of pollentubes to papilla cells, it is thought that CO2 produces a metabolicchange in these cells during attachement. 1Part of a thesis submitted for the Dr. of Agr. degree by thesenior author at Tohoku University. 2Present address: Faculty of Agriculture, Kobe University, Nada-ku,Kobe, Japan. (Received December 7, 1972; )  相似文献   

14.
Tonoplast vesicles were prepared from the flesh tissue of maturepear fruit. Sugar uptakes into the vesicles determined by twodifferent methods, the membrane and the gel filtration methods,were quite similar. The uptake was highest for glucose and subsequently,in order, for fructose, sucrose and sorbitol. It was not stimulatedby addition of ATP, although the vesicles could create a protongradient. However, the uptakes were significantly inhibitedby p-chloromercuribenzene sulphonate (PCMBS, SH-reagent andinhibitor of sugar transporter). Further, the PCMBS-sensitiveuptakes of glucose and fructose saturated with their increasedconcentrations. Thus, these PCMBS-sensitive uptakes are mediatedby the transporter of facilitated diffusion. The uptakes ofglucose or fructose each had two Km values. Km values for glucosewere 0.35 and 18 mM, and those for fructose were 1.6 and 25raM. The uptake of 0.2 mM glucose was inhibited by 2 mM fructoseand that of 2 mM fructose was inhibited by 2 mM glucose, butneither was inhibited by sucrose or sorbitol. O-methyl-glucose(OMG) also inhibited both the glucose and fructose uptakes.Therefore, the same transporter may mediate both glucose andfructose uptakes at lower concentrations; this hexose transportsystem differed from the sucrose and sorbitol transport systems. 1Research Fellow of the Japan Society for the Promotion of Science. 2Present address: Faculty of Agriculture, Tohoku University,1-1 Tsutsumidori-Amamiyamachi, Aoba-ku, Sendai, 981 Japan.  相似文献   

15.
Helminthosporol (H-ol) and helminthosporic acid (H-acid) wereeffective in promoting elongation of leaf sheaths of rice, Japanesebarnyard grass and dwarf maize (d-2 and d-5) and of hypocotylsof taisai (Brassica chinensis), but inactive in leaf sheathsof oat and wheat, hypocotyls of sesame and morning glory (Pharbitisnil) and epicotyls of Pharbitis and dwarf and tall peas. Onthe elongation of the leaf sheath of maize d-1, H-ol was promotivebut the activity of H-acid was doubtful. On hypocotyls of lettuceand daikon (Raphanus sativus), only H-acid was active. Multiplicationrate and size of fronds of Lemna perpusila were not affectedby either of the substances. Compared with gibberellic acid for the effect on the shoot growth,H-ol and H-acid were weak in activity and narrower in the scopeof plants that responded. H-ol and H-acid characteristicallypromoted the elongation of the primary root. Comparative effectivenessof H-ol and H-acid varied with plant species or parts examined. 1 This study was supported in part by grant-in aid of the Ministryof Education (No. 0417). The results reported here were presentedat the Annual Meeting of the Botanical Society of Japan at Kanazawain 1964 (S).  相似文献   

16.
Properties of the cell-free extract, prepared from a strainof Thiobacillus thiooxidans by sonic disruption followed byfractionation with centrifugatiori, were investigated with referenceto its sulfite-oxidizing activity. Without the addition of cofactors the particulate fraction(F-P)catalyzed oxidation of sulfite with oxygen or bacterial cytochromec-552 obtained from Pseudomonas stutzeri as electron acceptor.TMPD reduced by ascorbic acid was also oxidized by F-P. Thesoluble fraction(F-S) showed no activity in oxidizing sulfiteand TMPD, but stimulated TMPD oxidation by F-P. Oxygen uptake with either sulfite or TMPD as substrate was inhibitedby KCN, NaN3, CO and c-phenanthroline. CO-Inhibition was reversedby light. Reduction of cytochrome c-552 by sulfite was insensitiveto these agents. Antimycin A markedly inhibited sulfite oxidation with eitheroxygen or cytochrome c-552 as electron acceptor, but was withouteffect on TMPD oxidation. DDC and SAO, both strong inhibitors of sulfur oxidation, didnot affect sulfite and TMPD oxidations. Cytochromes of the a, b and c types were contained in F-P. Thesecytochromes were rapidly reduced when F-P was incubated withsulfite. Cytochrome(s) of the c type was present in F-S, too. 1VI.=References (3) 2Partly supported by a grant from the Ministry of Education 3Present address: Sanyo Women's College, Hatsukaichi, Hiroshima738, Japan 4Present address: Department of Biochemistry, Hiroshima UniversitySchool of Dentistry, Hiroshima 734, Japan (Received May 15, 1970; )  相似文献   

17.
Dihydrofolate reductase (E.C. 1.5.1.3 [EC] ) was found in pea seedlingsand was partially purified by treatments with ammonium sulfate,protamine sulfate and by DEAE-cellulose column chromatography.Some properties of the enzyme were investigated. Optimum pHfor the reaction was 6.5. In the enzyme reaction, FAH2 and NADPH2were specifically required. MICHAELIS constants for FAH2 andNADPH2 were 4.3x10–6 M and 4.0x10–5 M, respectively.Folate antagonists such as aminopterin, methotrexate and pyrimethaminewere potent inhibitors of this enzyme. Enzyme activity was almostcompletely inhibited at a concentration of 10–7 M of aminopterinand methotrexate and 10–6 M of pyrimethamine. Growth of germinating pea seeds was inhibited by aminopterin,methotrexate and pyrimethamine, and it recovered significantlywith a tetrahydro-derivative of folate, CF, but not with dihydrofolicor folic acid. These results suggest that growth inhibitionof pea seedlings by these antagonists is due to inhibition ofdihydrofolate reductase in seedlings. 1Studies on the enzymatic synthesis and metabolism of folatecoenzymes in plants IV. (For the previous paper, Part III, seeReference (21)) . Part of this paper was presented at the AnnualMeeting of the Agricultural Chemical Society of Japan held atTokyo on April 4, 1967 (Received October 8, 1969; )  相似文献   

18.
Changes in chemical constituents and respiratory metabolismof a long-day duck-weed, Lemna gibba G3 exposed to continuousillumination after short-day cultivation were investigated.The dry weight to fresh weight ratio was constant during thefirst 72 hr of continuous illumination. pH of the crude extractwas constant at 6.6, but pH of the culture medium was raisedwith the Lemna growth. Titratable acidity decreased after about44 hr, whereas malic acid content increased in 18 hr. Therewere no significant changes in total reducing sugar and pentose.Total protein content and lipid showed rhythmical changes withcycles of 48 hr. O2-Uptake gave a damped oscillation with cycles of 24 hr. Itwas low in the first half day and high in the second half. 14CO2-Outputfrom glucose-l-14C showed a similar damped oscillation. 14CO2-Outputfrom glucose-2-14C or glucose-6-14C was almost constant. TheC6/C2 ratio, then, showed damped oscillation in the reverseway to O2- uptake between 0.3–0.5, and the C8/C2 ratiowas constant at 0.9. Accordingly, the diurnal rhythm of O2-uptakewas thought to be brought about by variation in activity ofthe pentose-phosphate pathway. Reproduction of glucose-6-phosphateby the pentose-phosphate pathway was presumably limited in amount. Glyceraldehyde-3-phosphate dehydrogenase activity varied diurnally.The activities of NADP-linked and NAD-linked enzymes increasedand decreased, respectively, in the first half day. Variationsin these enzymatic activities are discussed in correlation withrhythmical changes in O2-uptake and in the C6/C1 ratio. Acidphosphatase activity also followed a diurnal variation. No activitiesof alcohol and formic dehydrogenases were found. The activitiesof NADP glucose-6-phosphate dehydrogenase, 6-phosphogluconatedehydrogenase, pyruvic kinase and NADP isocitric dehydrogenasewere high, but showed no rhythmical variation. 1Presented at the Annual Meeting of the Botanical Society ofJapan, 1966 (Proceedings, p. 46). Adapted from a thesis submittedby the first author (H. M.) in 1967 to the Biological Institute,Nagoya University in partial fulfillment of the requirementsfor the degree of M. S. (Received May 8, 1969; )  相似文献   

19.
The effect of plasma membrane alteration caused by osmotic shockof different strengths on the auxin-induced responses of Avenacoleoptile cells was observed. Osmotic shock brought about by0.5–0.7 M mannitol solution for 10 or 30 min, followedby phosphate-buffer (1 mM, pH 6.0) treatment for 10 min at 4?Ccaused no significant inhibition of auxin-induced cell extension.The osmotic shock did not affect auxin-induced cell wall looseningrepresented by stress-relaxation time and a decrease in thenoncellulosic glucose level of the cell wall. The shock causedonly a temporary inhibition of transmembrane potential and noinhibition of oxygen consumption. However, it inhibited auxin-stimulatedH+ secretion which was reversed by 0.1 mM CaCl2. We concludedthat the Osmotic shock may partly modify the plasma membranerelated to the hydrogen ion pump which interacts with auxin,but this modification which is reflected little by the transmembranepotential and cellular metabolism, is not closely related toauxin-induced cell wall loosening and thus cell extension inAvena coleoptiles. 3 Present address: Department of Botany, Faculty of Science,University of Tokyo, Hongo, Bunkyo-ku, Tokyo 113, Japan (Received February 17, 1978; )  相似文献   

20.
Mesophyll chloroplasts were isolated from leaves of a Na+-requiringNAD-malic enzyme type, dicotyledonous C4 plant, Amaranthus tricolorL. The chloroplasts converted pyruvate to phosphoenolpyruvateunder illumination, and the conversion was stimulated by Na+.This observation may explain the requirement for Na+ of someC4 plants. 2 Present address: Institute for Life Science Research, NihonNohyaku Co., Ltd., Kawachi-Nagano, Osaka, 586 Japan  相似文献   

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