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1.
Carotenoid photobleaching induced by the action of photosystemII was investigated with membrane fragments of Anabaena cylindricaand A. variabilis. Carotenoid photobleaching occurred only when ferricyanide and/orCCCP was present in the reaction mixture. Maximum velocity ofthe reaction was obtained in the presence of ferricyanide andCCCP. Difference spectra (light minus dark) indicated that afast carotenoid photobleaching was accompanied by a slow chlorophyllbleaching. The pattern of the difference spectra was identicalto that reported by Yamashita et al. (1) with spinach chloroplasts.The reaction was DCMU-sensitive, though a portion of the activitywas insensitive to DCMU when ferricyanide was present in thereaction mixture. The effect of CCCP on stimulation of carotenoidphotobleaching showed the same function against CCCP concentrationas that on inhibition of DPIP-photoreduction with DPC. Carotenoidphotobleaching was stimulated by ferricyanide and suppressedby ferrocyanide; thereaction rate was reduced fifty percentwith a ferri- and ferrocyanide mixture giving 510 mV redox potential(pH 7.5). Benzoquinone was stimulatory, but DPIP had no effect. Incubation of membrane fragments in a dilute buffer inactivatedthe Hill reaction but neither the DPC-supported DPIP-photoreductionnor carotenoid photobleaching in A. variabilis. In A. cylindrica,incubation inactivated all three reactions. Inactivation ofthe latter two reactions followed the same kinetics. (Received August 31, 1972; )  相似文献   

2.
Carotenoid photobleaching induced by photosystem II action wasstudied using membrane fragments of the blue-green alga Anabaenavariabilis. Special attention was paid to the action of O2. Carotenoid photobleaching elicited by carbonyl cyanide m-chlorophenylhydrazone(CCCP) depended on O2. However, the addition of H2O2, sodiumsilicotungstate or potassium ferricyanide (Ferri), an electronacceptor for reaction center II action, removed the O2-dependency.These results indicate that O2 acts as the electron acceptorfor this reaction. When both CGCP and Ferri were present, a short illumination(0.25 sec) caused a rapid photobleaching followed by a slowrecovery in the subsequent dark period. The spectrum of theabsorption decrease in the light was identical with that ofthe absorption increase in the subsequent dark, indicating thata reversible process is involved in the carotenoid photobleaching.The size in the dark recovery relative to the light bleachingbecame larger under anaerobic conditions and smaller under higherpartial pressure of O2. The reuslts were interpreted as indicatingthat O2 does not function in the primary process including areversible bleaching step, but is involved in the slow and irreversiblebleaching process. (Received April 3, 1978; )  相似文献   

3.
The light-induced oxygen evolution, photoreduction of 2,6-dichlorophenolindophenol (DPIP) and carotenoid photobleaching induced by carbonylcyanide m-chlorophenylhydrazone (CCCP) were investigated withspinach chloroplast fragments in the presence of H2O2. Oxygenevolution in the presence of H2O2 was not inhibited by CCCPand was only partially inhibited by 5 µM 3-(3,4-dichlorophenyl)-1,1-dimethylurea(DCMU) which completely inhibited the Hill reaction with DPIP.The degree of inhibition by DCMU was decreased by a simultaneousaddition of CCCP. Carotenoid photobleaching in the presenceof CCCP was stimulated by H2O2. The CCCP-induced carotenoidphotobleaching was completely inhibited by DCMU. However, itwas only partially inhibited by DCMU in the presence of H2O2.These data indicate that H2O2 donates electrons at a site betweenthe CCCP-sensitive site and the reaction center of photosystemII and is reduced at a site between the DCMU-blocked site andthe reaction center of photosystem II. 1Present address: Department of Biology, Kyushu Dental College,Kitakyushu 803, Japan. (Received June 20, 1974; )  相似文献   

4.
The modes of actions of six inhibitors on the electron transportsystem in the vicinity of system II in chloroplasts were studied. The first group, including piericidin A, ioxynil and broxynil,showed relatively simple modes of action on the Hill reaction,fluorescence of chlorophyll and the photobleaching of photosyntheticpigments, which are similar to the action of DCMU. As compared with inhibitors of the first group, the inhibitoryactions of salicylaldoxime, antimycin A and azide on the Hillreaction were more complicated in that they were influencedmore strongly by reaction conditions, i.e. duration of incubation,pH of the reaction mixture and illumination of chloroplasts.Inhibitors of the second group suppressed the rise in fluorescencein the induction period. However, this effect was not observedin the presence of DCMU or dithionite. Salicylaldoxime and azidewere effective in inducing photobleaching of photosyntheticpigments, whereas antimycin A inhibited the photobleaching inducedby ferricyanide or CCCP. Inhibition sites of the inhibitors in the first group are assumedto be similar to that of DCMU, whereas the inhibitors in thesecond group are effective in blocking electron transport onthe oxidizing side of system II between the primary electrondonor of system II and an intermediary electron carrier whichreceives electrons from artificial electron donors for systemII. (Received October 30, 1971; )  相似文献   

5.
Oxidation-reduction reactions of the low redox potential cytochromeb-559 were studied for membrane fragments of the blue-greenalga Anabaena variabilis. Cytochrome photooxidation was observableat room temperature when the membrane fragments had been preincubatedat room temperature in the dark. A CCCP addition (10–4M) strongly enhanced the reaction. Oxidation consisted of a DCMU-sensitive and an insensitive reaction.The former depended on actinic illumination of short wavelength.The latter showed a dependency on longer wavelength light. Theformer was assumed to be induced by the action of photosystemII and the latter by that of photosystem I. The photosystem II oxidation was small before preincubation,and was enhanced by added DPIP or Ferro. This was interpretedas photosystem II action inducing oxidation as well as reduction;reduction being inactivated during dark incubation or beingsuppressed by added redox reagents which compete for electronacceptance from photosystem II so that oxidation was apparentlyenhanced. The oxidationreduction reactions of this cytochromewith low redox potential were assumed to be almost identicalwith those of the high redox potential form, at least in themembrane fragments of Anabaena variabilis. (Received June 8, 1975; )  相似文献   

6.
Carotenoid photobleaching in the presence of carbonylcyanidem-chlorophenylhydrazone (CCCP) was suppressed by quercetin,but not by ascorbate. When quercetin suppressed carotenoid photobleaching,quercetin was oxidized. The oxidation of quercetin was inhibitedby ascorbate with half-inhibition at about 10 µM. Ascorbatewas oxidized by CCCP-poisoned chloroplasts upon illumination.The rate of ascorbate oxidation in the presence of both ascorbateand quercetin was lower than that in the presence of ascorbatealone. Based on the present results, the physiological significanceof quercetin as an antioxidant and the redox reaction betweenascorbate and oxidized quercetin are discussed. (Received March 9, 1984; Accepted July 12, 1984)  相似文献   

7.
When chloroplasts isolated from Farfugium japonicum (Japanesesilver) leaves were used as an enzyme source, the activity ofthe enzyme system producing C6-aldehydes (cis-3-hexenal andn-hexanal) from C18-unsaturated fatty acids (linolenic and linoleicacids) decreased upon treatment with LAHase from potato. Thisenzyme system could not be separated from chlorophylls and lipidsby detergent treatment and was not affected by light illumination,CCCP or DCMU. The activity of the enzyme system was inhibitedby MB and NTB used as a redox reagent, SKF 525-A as an oxidaseinhibitor and DABCO as a quencher of singlet oxygen, but notby DCIP, PMS and SOD. These data suggest that; i) interactionof the enzyme system with lipids is required for maximal enzymeactivity, ii) this enzyme system may involve electron mediator(s),and iii) singlet oxygen takes part in the enzyme reaction. (Received October 28, 1977; )  相似文献   

8.
The photosystem-II activity of chloroplasts was inhibited by the treatment with p-nitrothiophenol (NphSH) in the light, and the inhibition was accompanied by a change of the fluorescence spectrum. Aromatic mercaptans examined were active in causing this inhibition and fluorescence change. These effects of p-nitrothiophenol were highly accelerated by blocking the electron transport on the oxidation side of photosystem II by carbonyl cyanide-m-chlorophenylhydrazone (CCCP) or Tris · HCl or heat pre-treatment, whereas these were suppressed by blocking the transport on the reduction side by 3-(3,4-dichlorophenyl)-1,1-dimethylurea (DCMU). It was deduced that the site of NphSH action in the electron transport chain is closer to the reaction center of photosystem II that the blocking site of CCCP or Tris · HCl or heat, and that such a site in photosystem II is exposed to be modified with NphSH when electron carriers on the oxidation side of photosystem II are oxidized by illumination.  相似文献   

9.
The formation of singlet molecular oxygen (1O2) in illuminatedchloroplasts and the effects of 1O2 on oxidation or destructionof components and functional integrity of chloroplasts werestudied. The rate of photoreduction of 2,6-dichloroindophenol(DCIP) and the extent of the 515-nm absorbance change were decreasedby light irradiation and by xanthine oxidase treatment. Malondialdehyde(MDA) formation, an indicator of lipid peroxidation, was observedin the light-irradiated chloroplast fragments, but not in thexanthine-xanthine oxidase-treated chloroplast fragments. MDAformation was absent under anaerobic conditions. MDA formation was stimulated when electron transfer on the oxidizingside of photosystem II (or I) was inhibited or inactivated bycarbonylcyanide m-chlorophenylhydrazone (CCCP), Tris-treatment,prolonged illumination, etc. MDA formation was also stimulatedby 3-(3,4-dichlorophenyl)-1, 1-dimethylurea (DCMU) when electrontransfer between water and the reaction center of photosystemII was intact. CCCPor DCMU-stimulated MDA formation was inhibitedby 1,4-diazabicyclo[2.2.2]octane, a quencher of singlet molecularoxygen (1O2). DCMU and electron donors for photosystem II, suchas ascorbate, hydroquinone and semicarbazide, inhibited MDAformation by illumination of the Tris-washed or CCCP-poisonedchloroplast fragments. Reduced DCIP, an electron donor for photosystemI, also inhibited MDA formation in the presence of DCMU. These results lead to the conclusion that MDA formation wasinitiated by 1O2 formed in illuminated chloroplasts. Of thethree mechanisms discussed for 1O2 generation in illuminatedchloroplasts, the formation by the electron transfer reactionbetween superoxide anion radical and the oxidant formed on theoxidizing side of photosystem II (or I) is mostimportant. (Received March 31, 1975; )  相似文献   

10.
Carotenoids and fatty alcohols were added to intact spinachchloroplasts in suspension, and the effects of these reagentson the absorption spectrum and photochemical activities of chloroplastswere examined. The addition of lutein, ß-caroteneand neoxanthin transformed a chlorophyll a form (C684) havingan absorption maximum at 684 nm into C666, and the activityof photosystem II decreased parallel with this transformation.The activity of photosystem I was completely unaffected by theeffect of added carotenoids, whereas both cyclic and non-cyclicphotophosphorylations were inhibited by the additions. Theseeffects were reproducibly observed only with a "petroleum ether-soluble"fraction of each carotenoid, monomeric and less polymerizedforms, which are soluble in petroleum ether at –25°C;the "insoluble" fraction of more polymerized forms was ineffective.Comparative experiments with lutein, DCMU and CCCP as inhibitorsand the dependence of inhibition on light intensity suggestedthat the site of inhibition by carotenoids is on the water sideof photosystem II between its reaction center and the CCCP-inhibitingsite. Fatty alcohols with carbon atoms between 8 and 12 producedstronger but less specific effects on the spectrum and activities.At low concentrations the uncoupling of photophosphorylationoccurred and, in a middle concentration range, the activityof photosystem II decreased with the transformation of C684into C666 and with a change in carotenoid bands. At higher concentrations,where the enhanced activity of photosystem I decreased froma maximum to zero, the red band of chlorophyll a further changedin a complex manner and the absorption around 503 nm decreased.We, thus, deduced that C684 and some endogeneous carotenoidsare associated with photosystem II on its water side and thatadded carotenoids and fatty alcohols at lower concentrationschange their states, resulting in the inhibition of this photosystem. (Received December 20, 1971; )  相似文献   

11.
Normal Euglena chloroplasts contained 1 atom of Mn per 47±8chlorophyll molecules. The manganese content of chloroplastswas decreased by heat treatment. After complete removal of manganeseby incubation at 45°C for 5 min, Hill activity with DPIPas electron acceptor was abolished, but the activity of DPIPphotoreduction with diphenylcarbazide as electron donor wasunaffected. Hill activity was inactivated by incubating Euglena chloroplastsat alkaline pH. The presence of a high concentration of Trisduring incubation of chloroplasts at an alkaline pH had no additionaleffect on the activity drop. Donor-supported DPIP photoreduction in heated Euglena chloroplasts,as well as the normal Hill reaction in untreated chloroplasts,was inhibited by DCMU, HOQNO and ioxynil which block electrontransport at the reducing side of system II. These reactionswere also inhibited by another group of inhibitors; CCCP, salicylaldoxime,antimycin A and azide, which block electron transport at a sitebetween the electron carriers, Y1 and Y2 located on the oxidizingside of system II. Possible sites of inhibition by heat treatment and by inhibitorsand sites for entry of electrons from artificial electron donorsin the photosynthetic electron transport chain, especially inrelation to the functional site of endogenous manganese in chloroplasts,were proposed. (Received October 30, 1971; )  相似文献   

12.
Perfused Chara cells were used to measure the rapid light-inducedpotential change (rapid LPC) caused by activation of a K+ channelin the plasma membrane through photosynthesis in the presenceof various photosynthetic inhibitors. The rapid LPC was inhibitedby DCMU but recovered on addition of phenazinemethosulfate (PMS)in the presence of DCMU. Carbonylcyanide m-chlorophenylhydrazone(CCCP) stimulated the rapid LPC. DCCD partially inhibited therapid LPC with a partial inhibition of oxygen evolution. Itis concluded that both cyclic and noncyclic electron flows arecoupled with the rapid LPC. To understand the mechanism of K+ channel activation by photosyntheticelectron flow, the rapid LPC was measured under continuous internalperfusion. It was suggested that a diffusible substance wasnot released from chloroplasts, since vigorous continuous perfusiondid not inhibit the rapid LPC. The suggestion that the rapid LPC is caused by changes in surfacecharge density of chloroplasts was supported by the fact thatthe rapid LPC was inhibited by increasing the ionic strengthof the perfusion medium. (Received February 28, 1986; Accepted April 30, 1986)  相似文献   

13.
In chloroplasts isolated from SO2-fumigated leaves at 2.0 ppm,electron flow from water to 2,6-dichloroindophenol (DCIP) wasinhibited, but the electron flow from reduced DCIP to methylviologen was not affected. Neither diphenylcarbazide nor MnCl2could restore the activity of the DCIP-Hill reaction of SO2-injuredchloroplasts. Electron flows, from water to ferricyanide orto silicomolybdic acid, were inhibited in a degree similar tothat of the DCIP-Hill reaction. The rate of carotenoid photobleaching in the presence of carbonylcyanide-m-chlorophenylhydrazone was suppressed and paralleledthe inhibition of the DCIP-Hill reaction. In SO2-injured chloroplasts, the variable part of the fluorescencetransient was diminished, and the fluorescence yield loweredby SO2 was increased with 3-(3', 4'-dichlorophenyl)-l, l-dimethylurea(DCMU) or more pronouncedly by incubating the sample with sodiumdithionite. However, the yield could not recover to the levelfound in non-fumigated chloroplasts. With SO2 fumigation, thetime required to reach steady-state level of fluorescence becamelonger in the absence of DCMU, but was not altered in the presenceof DCMU. The pool size of the primary electron acceptors decreasedwith SO2 fumigation. We concluded that SO2 inactivated the primaryelectron donor or the reaction center itself. The mode of SO2action in the electron transport chain is discussed. (Received October 20, 1979; )  相似文献   

14.
Smith, F. A. 1986. Short-term measurements of the cytoplasmicpH of Chara corallina derived from the intracellular equilibrationof 5,5-dimethyloxazolidine-2,4-dione (DMO).—J. exp. Bot.37: 1733–1745. Measurements of the time-course of influx of 14C-labelled 5,5-dimethyloxazolidine-2,4-dione(DMO) into the cytoplasm and vacuole of internodal cells ofChara corallina, and of efflux of DMO into non-radioactive solutions,have shown that exchange of DMO across the tonoplast is veryrapid compared with exchange across the plasma membrane. Thishas made possible calculations of cytoplasmic pH from distributionof DMO between cytoplasm and vacuole over short periods (5 or10 min) even when intracellular DMO is not at flux equilibriumwith external DMO. Using this new method, estimates have beenmade of the rates and magnitude of: (i) acidification of thecytoplasm caused by acidic growth regulators (IAA and NAA) andby metabolic inhibitors (azide, DNP, CCCP and DCMU), and (ii)alkalinization caused by uptake of ammonium and methylammoniumions. The potential application of the method to future studiesof membrane transport in charophyte cells is assessed. Key words: Charophyles, cytoplasmic pH.  相似文献   

15.
The effects of Mn2+ on aerobic photobleaching of carotenoids, on photoreduction of 2,6-dichlorophenolindophenol (DCIP) and on fluorescence above 600 mμ of spinach chloroplasts washed with 0.8 M Tris-HC1 buffer were investigated. Carotenoids (mostly carotenes, lutein and violaxanthin) in the Tris-washed chloroplasts were irreversibly bleached by illumination with red light, while carotenoids in normal chloroplasts prepared with a low concentration of Tris-HC1 underwent no bleaching upon illumination. The photobleaching of carotenoids observed with Tris-washed chloroplasts was inhibited by Mn2+ (MnCl2 or MnSO4) as well as by some inhibitors of the Hill reaction such as dichlorophenyl-1,1-dimethylurea (DCMU), methylthio-4,6-bis-isopropylamino-s-triazine and o-phenanthroline or by reducing agents such as ascorbate plus tetramethyl-p-phenylene diamine (TMPD). DCIP photoreduction, which was deactivated by Tris, was reactivated to 50–80% of the rate for normal chloroplasts upon addition of Mn2+. The restored photoreduction of DCIP was inhibited by DCMU and carbonylcyanide m-chlorophenylhydrazone (CCCP). The steady-state fluorescence yield of normal chloroplasts measured at room temperature was lowered by Tris treatment, and the decreased yield was restored by adding Mn2+ as well as ascorbate plus TMPD. CCCP also lowered the yield; the yield was recovered by adding ascorbate plus TMPD. Determination of manganese in normal and Tris-washed chloroplasts showed that 30% of the manganese in chloroplast was removed with Tris. It was postulated that Mn2+ functions in the electron transport on the oxidizing side of Photosystem II at a site between water and an electron carrier (Y). CCCP as well as Tris inhibits the reduction of Y+ by Mn2+, and carotenoids are oxidized by Y+ which is reduced by ascorbate plus TMPD.  相似文献   

16.
Distinctive characteristics of the photosystem I-induced 515-nmabsorbance change and the photosystem II-induced change wereanalyzed in spinach chloroplasts in the absence of added salt.Two types of changes were distinguished by 3-(3,4-dichloro-phenyl)-1,1-dimethylurea(DCMU), carbonylcyanide m-chlorophenylhydrazone (CCCP) and illuminationwith red or far-red light. Half-recovery time of the photosystem I-induced absorbance changewas shorter than that of over-all absorbance change and wasinsensitive to a low concentration (<0.50 µM) of CCCP. In the presence of DCMU, the 515-nm absorbance change decayedin parallel with the rapid protonation of reduced 2,6-dichloroindophenol(DCIP) or methyl viologen. This indicates that the photosystemI-induced local field is dissipated in the electron transferfrom photosystem I to an electron acceptor. Thus the mechanismin dissipation of electric field formed by photosystem I isdifferent from that induced by photosystem II where rapid protonationof plastosemiquinone anion may be directly involved in fielddissipation (Yamamoto, Y. and M. Nishimura: Plant & CellPhysiol. 18: 293–301 (1977)). (Received December 9, 1977; )  相似文献   

17.
Anabaena variabilis ATCC 29413 showed a constitutive mechanismfor fructose uptake which was further enhanced by growing thecells with fructose. The uptake process was energydependentas indicated the inhibitory effect of the uncoupler carbonylcyanidem-chlorophenylhydrazone (CCCP) and the reduction induced byincubating the cells in the dark or in the light with DCMU.Cells adapted to growth on fructose showed increased rates ofrespiration both in the dark and in the light. The rate of 14CO2evolved from radiolabelled fructose was lower in the light thanin the dark or in the presence of DCMU. This fact can be partiallyexplained by the photosynthetic reutilization of respiratory14CO2. Modifications in photosynthesis were observed in fructose-growncells. PS I and PS II activity measured in spheroplasts obtainedby lysozyme treatment were enhanced by fructose probably asa way to compensate the lower concentration of chorophyll showedby fructose-grown cells. The photosynthetic affinity for externalCO2 and the rate of photosynthesis dependent on external inorganiccarbon were reduced by fructose. (Received September 24, 1991; Accepted February 14, 1992)  相似文献   

18.
Laminar pulvini of bean (Phaseolus vulgaris L.) contain numerouschloroplasts in cells of their motor tissue. The quantitativerelationships of the chloroplast pigments, chlorophyll a andb, ß-carotene, lutein, neoxanthin as well as the xanthophyllcycle carotenoids (violaxanthin, antheraxanthin and zeaxanthin)were similar to those of mesophyll chloroplasts from leafletlaminae. Exposure of pulvinules to light caused deepoxidationof violaxanthin to zeaxanthin, showing that the xanthophyllcycle is functioning. Chlorophyll fluorescence analysis of pulvinulesconfirmed that their chloroplasts are capable of both photosyntheticelectron transport and non-photochemical fluorescence quenching,showing that they build up a considerable transthylakoid protongradient in the light. Application of DCMU to excised pulvinulesand laminar discs, as well as to pulvinules of intact, attachedterminal leaflets blocked electron transport and fluorescencequenching. Application of the uncoupler CCCP to intact pulvinulesalso prevented non-photochemical fluorescence quenching. Therate of movement of the low-light-adapted terminal leaflet inresponse to exposure of its pulvinule to overhead red light(500 µmol m–2 s–1) was reduced when the pulvinulewas pretreated with DCMU. The pulvinar response to overheadblue light (50 µmol –2 s–1), which is morepronounced than to red light, was not affected by similar pretreatmentwith DCMU. Pretreatment with CCCP caused a short lag in theresponse to red light, but did not affect its subsequent rate.The results suggest that the pulvinar response to red, but notto blue light, requires non-cyclic electron transport and theresulting generation of ATP Key words: Leaf movements, light, non-cyclic electron transport, Phaseolus, pulvinar chloroplasts  相似文献   

19.
An improved method for estimation of phytoplankton photosynthesiswas developed using in-vivo chlorophyll a fluorescence, andwas tested with cultured phytoplankton. The method is basedon a kinetic analysis of the fluorescence induction with andwithout DCMU. Photosynthetic rates were derived from, (i) measurementof fluorescence induction due to the reduction of Q, the primaryelectron acceptor for the photoreaction of photosystem II, and(ii) estimation of Q present in the water sample and of therate of Q reduction. *This paper is the result of a study made at the Group for AquaticPrimary Productivity (GAP), Second International Workshop heldat the National Oceanographic Institute, Haifa, Israel in April–May1984.  相似文献   

20.
Light-induced changes in membrane potential in Spirogyra   总被引:2,自引:0,他引:2  
Spirogyra cells exhibited changes in membrane potential whenthey were exposed to light. Cells made chloroplast-free didnot show any light-induced potential change (LPC) upon illuminationwith white light and also monochromatic red (680 nm) and farred (720 nm) light. LPC was observed when the cell containedonly a small fragment of chloroplast, whether the cell had anucleus or not. The magnitude of LPC depended on the amountof chloroplast in the cell. DCMU at 10–5 M, CCCP at 10–5 M and DNP at 10–4M at pH 5.5 suppressed LPC, while CCCP at 1–5 ? 10–6M, NH4Cl at 5 ? 10–2 M and DNP at 10–4 M at pH 7.0stimulated LPC. PMS at 10–4 M stimulated LPC and couldinduce LPC which was completely inhibited by DCMU. These factssuggest that LPC is related to noncyclic and cyclic electronflows. The influences of light and dark conditions and various metabolicinhibitors (DCMU, DNP, CCCP, NH4Cl) on ATP level have been investigated.No significant difference in the ATP level was observed betweencells in the light and dark. DNP at 10–4 M (pH 5.5) andCCCP at 5 ? 10–6 M decreased the ATP level significantly,while DCMU and NH4Cl only slightly. Good correlation was notfound between the total ATP level and LPC in Spirogyra. LPC occurred even when the external medium contained only asingle salt such as KCl, NaCl or CaSO4. LPC was also recorded in chloroplasts in situ and in vitro.The mode of LPC of chloroplasts was quite different from thatof the cell. On illumination, the chloroplast potential changedvery rapidly and transiently in the positive direction thenrecovered spontaneously to almost the original potential level. Possible causes of LPC are discussed in relation to the electrogenicion pump. 1 Present address: Department of Botany, Faculty of Science,University of Tokyo, Hongo, Bunkyo, Tokyo 113, Japan. (Received November 9, 1977; )  相似文献   

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