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1.
Merten Jabben 《Planta》1980,149(1):91-96
The phytochrome system is analyzed in light-grown maize (Zea mays L.) plants, which were prevented from greening by application of the herbicide SAN 9789. The dark kinetics of phytochrome are not different in the first, second or third leaf. It is concluded that in light-grown maize plants phytochrome levels are regulated by Pr formation and Pfr and Pr destruction, rather than by PfrPr dark reversion. Pr undergoes destruction after it has been cycled through Pfr. The consequences of this Pr destruction on the phytochrome system are discussed.Abbreviations SAN 9789 4-chloro-5-(methylamino)-2-(,,-trifluoro-m-tolyl)-3(2H) pyridazinone - Pfr far-red absorbing form of phytochrome - Pr red absorbing form of phytochrome - Ptot Pfr+Pr  相似文献   

2.
The effects of continuous red and far-red light and of brief light pulses on the growth kinetics of the mesocotyl, coleoptile, and primary leaf of intact oat (Avena sativa L.) seedlings were investigated. Mesocotyl lengthening is strongly inhibited, even by very small amounts of Pfr, the far-red light absorbing form of phytochrome (e.g., by [Pfr]0.1% of total phytochrome, established by a 756-nm light pulse). Coleoptile growth is at first promoted by Pfr, but apparently inhibited later. This inhibition is correlated in time with the rupturing of the coleoptile tip by the primary leaf, the growth of which is also promoted by phytochrome. The growth responses of all three seedling organs are fully reversible by far-red light. The apparent lack of photoreversibility observed by some previous investigators of the mesocotyl inhibition can be explained by an extremely high sensitivity to Pfr. Experiments with different seedling parts failed to demonstrate any further obvious interorgan relationship in the light-mediated growth responses of the mesocotyl and coleoptile. The organspecific growth kinetics, don't appear to be influenced by Pfr destruction. Following an irradiation, the growth responses are quantitatively determined by the level of Pfr established at the onset of darkness rather than by the actual Pfr level present during the growth period.Abbreviation Pfr far-red light absorbing form of phytochrome  相似文献   

3.
E. Schäfer  B. Marchal  D. Marmé 《Planta》1971,101(3):265-276
Summary The in vivo phototransformation kinetics of mustard hook and cotyledon phytochrome exhibit a deviation from a single first order curve, quite similar to that for pumpkin hooks as reported in a previous paper (Boisard, Marmé and Schäfer, 1971). The P frPrkinetics can be characterized by the ratios fr, I · P fr I / fr, II · P fr, II and where P fr I and P fr II are two populations of phytochrome molecules which convert to P rwith a first order half-life of and . These ratios depend on the length of time of etiolation. The ratio fr, I · P fr I / fr, II · P fr, II is independent of the amount of total P frpresent at the beginning of the P frPrphototransformation after a non-saturating dose of red light. The half-lives of the two populations, however, depend on the concentration of total P frinitially present. P frPrphototransformation kinetics with different light intensities show that reciprocity holds.  相似文献   

4.
Germination of spores of Dryopteris fllix-mas has been induced by two pulses of saturating red light, separated by a dark period of about 8 to 24 h. By chosing different wavelengths, different Pfr/Ptot levels could be established. Thus, by a “null method” the second pulse could be used as a “test pulse”, determining the actual Pfr level remaining from the “start pulse”, and thus providing information about an apparent Pfr decay. It cannot be decided yet whether this apparent Pfr decay results from dark destruction or dark reversion. The apparent Pfr decay depends, as expected, on the temperature, being accelerated with increasing temperatures. Moreover, the later after sowing that the decay is tested, the faster it proceeds; a tentative interpretion is that newly synthesized Pr undergoes faster decay after phototransformation than that phytochrome pool present in the resting spores. A third factor that influences the apparent Pfr decay is the Pfr/Ptot level established by the first pulse (start pulse). The lower this level, the slower the decay kinetics. This could be due to phytochrome biosynthesis partly compensating for Pfr destruction, and the relative contribution of this biosynthesis to the total effect increases with lower Pfr levels. Spores of D. paleacea yield virtually the same results. Whatever the real basis of the observed Pfr decay, i.e. destruction, reversion, or a combination of these reactions with biosynthesis, it can be concluded that modification of this Pfr decay by various factors is the basis of the effect of those factors on light-induced germination.  相似文献   

5.
Fluence rate-response curves were determined for the inhibition of hypocotyl growth in 54 h old dark-grownSinapis alba L. seedlings by continuous or hourly 5 min red light irradiation (24 h). In both cases a fluence rate-dependence was observed. More than 90% of the continuous light effect could be substituted for by hourly light pulses if the total fluence of the two different light regimes was the same. Measurements of the far red absorbing form of phytochrome ([P fr]) and [P fr]/[P tot] (total phytochrome) showed a strong fluence rate-dependence under continuous and pulsed light which partially paralleled the fluence rate-response curves for the inhibition of the hypocotyl growth.Abbreviations R red - HIR high irradiance response - P rfr phytochrome in its red, far-red absorbing form - [P tot]=[P r]+[P fr] =k 1/(k 1+k 2): photoequilibrium of phytochrome at wavelength , wherebyk 1,2 rate constants ofP rP fr,P frP r photoconversion - [P fr]/[P tot]  相似文献   

6.
The in vivo properties of Amaranthus phytochrome   总被引:1,自引:1,他引:0  
Summary Phytochrome has been measured in etiolated seedling of Amaranthus caudatus. The phytochrome content increases from the time of germination until 72 hr from sowing, after which it remains constant at 27.5x10-3 (OD) units per 200 seedlings. After a saturating dose of red light P fr decays in the dark to a form not detectable photometrically. There is no evidence for the process of dark reversion of P fr to P fr found in other dicotyledons. Even in the presence of azide, a selective inhibitor of decay, the process of dark reversion is not observed. The decay of P fr has been investigated at different temperatures and follows first order decay kinetics throughout. Over the temperature range 15–30° the Q 10 of decay remained constant at 4.3.The photostationary states of phytochrome (P fr /P total )maintained by mixed red/far-red light have been measured in both seedlings and partially purified protein extracts, with good agreement. The rate of phytochrome decay can be manipulated by changing the P fr /P total ratio. The lag period before a decay curve becomes exponential is characteristic of a particular P fr /P total ratio and represents the time for attainment of the photostationary state. The effect of energy on decay has been investigated under red and blue light. The rate of phytochrome decay is dependent on the P fr /P total ratio and only becomes energy dependent when the light intensity is so low that the photostationary state is never attained.The process of apparent phytochrome synthesis has been found in Amaranthus. After reducing the phytochrome to a low level by red light treatment a rate of apparent synthesis of 1.35×10-4 (OD) units per hr per 200 seedlings was observed, levelling off at 29% of the original phytochrome level.Under white tungsten lights of high intensity there is a deviation from the expected first order decay kinetics. The nature of this low rate of decay cannot be explained at the present time.  相似文献   

7.
Phytochrome was studied spectrophotometrically in Avena sativa L. seedlings that had been grown for 6 d in continous white fluorescent light from lamps. Greening was prevented through the use of the herbicide San 9789. When placed in the light, phytochrome (Ptot) decreased with first order kinetics (1/2 2 h) but reached a stable low level (2.5% of the dark level) after 36 h. This concentration of phytochrome remained constant in the light and during the initial hours of a subsequent dark period, but increased significantly after a prolonged dark period. Evidence suggests that the constant pool of phytochrome in the light is achieved through an equilibrium between synthesis of the red absorbing (Pr) and destruction of the far-red absorbing form (Pfr) of phytochrome. It is concluded that the phytochrome system in light-grown oat seedlings is qualitatively the same as that known from etiolated monocotyledonous seedlings, but different than that described for cauliflower florets.Abbreviations Pfr the far-red light absorbing form of phytochroma - Pr the red light absorbing form of phytochrome - Ptot Pr+Pfr - ks rate constant of Pr synthesis - kd rate constant of Pfr destruction - MOPS N-morpholino-3-propane-sulfonic acid - IRIS Tris (hydroxymethyl) amino methane - San 9789 4-chloro-5-(methyl amino)-2-(,,-trifluoro-m-tolyl)-3(2H)pyridazinone  相似文献   

8.
Summary Phytochrome photoconversions PrPfr and PfrPr can be measured by differential spectrophotometry in dry seeds (6% water content) of Pinus nigra Arn. A red light irradiation given before imbibition induces germination when the seeds are subsequently wetted and kept in darkness.In continuous darkness the phytochrome content shows a drastic increase at the beginning of moistening.The detectable pigment is entirely in the Pr form. The normal PfrPr dark reversion is observed. Pfr destruction does not take place.  相似文献   

9.
B. Steinitz  H. Drumm  H. Mohr 《Planta》1976,130(1):23-31
Summary It is demonstrated that phytochrome-mediated anthocyanin synthesis in the epidermal cells of mustard seedling cotyledons takes place only 27 h after sowing onwards (at 25°C). This starting point cannot be shifted by light treatments or by nutrients. The late appearance of competence for P fr (P r and P fr, red- and far-red absorbing forms of phytochrome, respectively) with regard to anthocyanin synthesis is not related to the phytochrome system per se (P rP fr) as this is fully functional immediately after sowing of the seed; nor is it related to the primary reaction of phytochrome: P fr+XP fr XP fr X (X, X, two forms of a receptor for P fr) or to the initial action of P fr X:P fr X+KY (K, coupling element, leading to the product Y, which is no longer photoreversible). Rather, the starting point is determined by internal factors only and is thus not accessible to any specific control by external factors. On the other hand, however, the beginning of the initial action of P fr X (coupling point) can be shifted by light via phytochrome under high irradiance conditions. Moreover, it is shown that there is no phytochrome-independent effect of blue light on photomorphogenesis in the young mustard seedling and that there is no rapid dark reversion of P fr which can be detected by physiological means, at least duringAbbreviations P r red-absorbing forms of phytochrome - P fr far-red-absorbing forms of phytochrome - P 1 total spectrophotometrically detectable phytochrome - HS Hoagland's nutrient solution - HIR high irradiance response  相似文献   

10.
Summary Ascorbic acid accumulation in the mustard seedling is controlled by P fr(active phytochrome). Kinetic studies demonstrate that P frexerts a rapid and fully reversible control over the steady state rate of ascorbic acid accumulation. Following the terminology of Weisz (1967) for this type of metabolic control the term photomodulation by P fr is used.—The control by P fris independent of RNA synthesis. Therefore regulation of gene activity is probably not involved in photomodulation of the rate of ascorbic acid accumulation.—There is only a limited period within which P frcan control ascorbic acid accumulation. This period is fixed by the time pattern of primary differentiation in the seedling. There is no interaction between photomodulation by P frand control by primary differentiation of ascorbic acid accumulation.  相似文献   

11.
D. Marmé  B. Marchal  E. Schäfer 《Planta》1971,100(4):331-336
Summary During the first 10 min after a saturating dose of red light, 72 h dark-grown mustard cotyledons show no phytochrome decay. Within the same time interval there exists a transient form of P fr (=P fr T ) which is no longer photoconvertible at 0°C, but is at 25°C. This P fr T converts in the dark to P fr and P r . These dark reversions take about 10 min. After a lag phase of 10 min the P fr decay can be described by a single, first order kinetic curve. The time courses of these reactions are functions of the time of etiolation.Research supported by DAAD and by Deutsche Forschungsgemeinschaft (SFB 46).  相似文献   

12.
Phytochrome in seeds of Amaranthus caudatus   总被引:1,自引:1,他引:0  
Summary Dry seeds of Amaranthus caudatus show little or no photoreversible absorption changes, attributable to phytochrome. During imbibition phytochrome appears in two phases, one immediately after sowing and the second after about 8 hr. Experiments at different temperatures and under continuous illumination with red, far-red and blue light suggest that there are two pools of phytochrome. The first phase in the appearance of phytochrome could be due to the change in optical properties of the sample on hydration or to rehydration of inactive phytochrome, or both. The second phase probably represents phytochrome synthesis. It is absent at 0° and precedes the water uptake associated with germination by some 10 hr. This second pool of phytochrome does not accumulate in red and blue illuminated seeds indicating that the rate of P fr decay is more rapid than the rate of phytochrome synthesis. The difference spectra of phytochrome in both 2 hr imbibed seeds and 72 hr old seedlings show peaks of absorption at 663 and 735 nm. The presence of P fr in dark imbibed seeds and the process of inverse reversion of P r to P fr in darkness have been demonstrated. The results are discussed in relation to previous hypotheses for the mechanism of photocontrol of Amaranthus seed germination.  相似文献   

13.
Variation in dynamics of phytochrome A in Arabidopsis ecotypes and mutants   总被引:2,自引:0,他引:2  
Phytochromes are photoreceptors in plants which can exist in two different conformations: the red light‐absorbing form (Pr) and the far‐red light‐absorbing form (Pfr), depending on the light quality. The Pfr form is the physiologically active conformation. To attenuate the Pfr signal for phytochrome A (phyA), at least two different mechanisms exist: destruction of the molecule and dark reversion. Destruction is an active process leading to the degradation of Pfr. Dark reversion is the light‐independent conversion of physiologically active Pfr into inactive Pr. Here, we show that dark reversion is not only an intrinsic property of the phytochrome molecule but is modulated by cellular components. Furthermore, we demonstrate that dark reversion of phyA may be observed in Arabidopsis ecotype RLD but not in other Arabidopsis ecotypes. For the first time, we have identified mutants with altered dark reversion and destruction in a set of previously isolated loss of function PHYA alleles (Xu et al. Plant Cell 1995, 7, 1433–1443). Therefore, the dynamics of the phytochrome molecule itself need to be considered during the characterization of signal transduction mutants.  相似文献   

14.
A. M. Jose  E. Schäfer 《Planta》1979,146(1):75-81
In a membrane fraction isolated from hypocotyls of Phaseolus aureus Roxb. the activity of a number of enzymes was regulated by red and far-red irradiation in vitro, provided that the tissue received a brief red light treatment before extraction. Other enzymes showed no photoregulation. There were two types of photocontrol, neither of which could be detected in the solute fraction, nor in extracts from completely etiolated material. One (Type I) was a red/far-red reversible regulation of the rate of enzyme activity, depending on the light given (in vivo or in vitro) before the assay was begun. The second (Type II) was a promotion of enzyme activity by red or far-red light given during the assay. The action spectra for type II responses do not coincide with either the phytochrome absorption or difference spectra. However, the effectiveness of red and far-red was correlated with the Pfr/P ratio present at the beginning of the assay, such that far-red was more efficient at high Pfr/P and red at low Pfr/P ratios. All enzymes that were regulated involved ATP. In samples that showed enzyme regulation, small changes in fluorescence yield of tryptophan and the covalent probe Fluram (Roche) accompanied the photoconversion of phytochrome, but no fluorescence changes could be measured after briefly incubating the membrane fraction with ATP. The results indicate that light may affect the interaction of ATP with the membrane fraction.Abbreviations F far-red light - Pr and Pfr phytochrome in the red and far-red absorbing forms - Ptot total phytochrome - R red light - RNP ribonucleoprotein  相似文献   

15.
Coaction of three factors controlling chlorophyll and anthocyanin synthesis   总被引:1,自引:0,他引:1  
Helga Kasemir  Hans Mohr 《Planta》1982,156(3):282-288
In a three-factor analysis the rate of chlorophyll a (Chl) accumulation in excised mustard cotyledons was studied as a function of kinetin, light (operating through phytochrome, P fr) and an excision factor. It was found that the three factors operate additively provided that the P fr level is high enough. When the P fr level is below approximately 1 per cent (<0.01) the effectiveness of the excision factor decreases while the effect of kinetin remains additive. The observed additivity is explained by a model where the three factors operate independently through a common intermediate (presumably 5-aminolevulinate) in the biosynthetic chain leading to Chl. With regard to the coaction of the excision factor and phytochrome it is concluded that the production of the excision factor requires the operation of phytochrome (even though saturated at a low P fr level) while the action of the excision factor is independent of phytochrome. This conclusion was confirmed by experiments in which the rate of light-mediated anthocyanin synthesis was measured in excised mustard cotyledons. The effect of excision in the case of anthocyanin formation differs kinetically from the effect of excision on Chl formation.Abbreviations Chl chlorophyll(ide) a - P fr far-red absorbing form of phytochrome - P fr/P tot ratio at photoequilibrium - RL red light - FR far-red light - GL green light - RG9 light long wavelength far-red light - WL white light  相似文献   

16.
Phenylalanine ammonia-lyase (PAL; EC 4.3.1.5.) induction in cotyledons from 96-h dark-grown Lycopersicon esculentum Mill. was studied in response to continuous light and hourly light pulses (blue, red, far red). The increases of PAL promoted by blue and red pulses are reversed completely by immediately following 758 nm irradiations. The response to continuous red light could be substituted for by hourly 6-min red light pulses. The effect of continuous red treatments is mainly due to a multiple induction effect of phytochrome. In contrast to red light, hourly light pulses with far red and blue, light can only partially substitute for continuous irradiation. The continuous blue response could be due to a combination of a multiple induction response and of a high irradiance response of phytochrome. The continuous far red response, could represent a high irradiance response of phytochrome. Dichromatic irradiations indicate that phytochrome is the photoreceptor controlling the light response (PAL) in tomato seedlings.Abbreviations Norflurazon NF-4-chloro-5-(methylamino)-2-(,,,-trifluoro-m-tolyl)-3 (2H) pyridazinone - PAL phenylalanine ammonia-lyase - phytochrome photoequilibrium Pfr/Ptot - Pfr far-red absorbing form of phytochrome - Pr red absorbing form of phytochrome - Ptot total phytochrome: Pr+Pfr  相似文献   

17.
H. Gehring  H. Kasemir  H. Mohr 《Planta》1977,133(3):295-302
Within the temporal pattern of primary differentiation the capacity of chlorophyll — a biosynthesis in the cotyledons ofSinapis alba L. seedlings is controlled by phytochrome (in continuous light) or by releasing the circadian rhythm either with lightdark cycles or by a lightdark transition. The sensor pigment for this process is phytochrome. It is very probable that in continuous light as well as under conditions under which the circadian rhythm plays the major part, the capacity of chlorophyll a biosynthesis is limited by the capacity of the biosynthetic step which produces 5-aminolaevulinate.Abbreviations Chl chlorophyll(ide) a - ALA 5-aminolaevulinate - LA laevulinate - PChl protochlorophyll(ide) - ALAD aminolaevulinate dehydratase (EC4.2.1.24) - [Pfr]/[P10c], photoequilibrium of the phytochrome system at the wavelength - whereby [P10c] [Pr]+[Pfr]. Pfr is the physiologically active, far-red absorbing form of the phytochrome system  相似文献   

18.
Summary To follow changes in the status of phytochrome in green tissue and to relate these changes to the photoperiodic control of flowering, we have used a null response technique involving 1.5-min irradiations with mixtures of different ratios of R and FR radiation.Following a main photoperiod of light from fluorescent lamps that was terminated with 5 min of R light, the proportion of Pfr in Chenopodium rubrum cotyledons was high and did not change until the 3rd hour in darkness; at this time, Pfr disappeared rapidly. When the dark period began with a 5-min irradiation with BCJ or FR light to set the proportion of Pfr low Pfr gradually reappeared during the first 3 h of darkness and then disappeared again.The timing of disappearance of Pfr is consistent with the involvement of phytochrome in photoperiodic time measurement. Reappearance of Pfr after an initial FR irradiation explains why FR irradiations sometimes fail to influence photoperiodic time measurement or only slightly hasten time measurement. A R light interruption to convert Pr to Pfr delayed, the timer by 3 h but only for interruptions after and not before the time of Pfr disappearance. Such 5-min R-light interruptions did not influence the operation of the rhythmic timekeeping mechanism. Continuous or intermittent-5 min every 1.5 h-irradiations of up to 6 h in duration were required to rephase the rhythm controlling flowering. A skeleton photoperiod of 6 h that was began and terminated by 5 or 15 min of light failed to rephase the rhythm.The shape of the curves for the rhythmic response of C. rubrum to the length of the dark period are sometimes suggestive of clocks operating on the principle of a tension-relaxation mechanism. Such a model allows for separate timing action of a rhythm and of Pfr disappearance over the early hours of darkness. Separate timing action does not, however, preclude an interaction between the rhythm and phytochrome in controlling flowering.Abbreviations FR far-red - Pfr far-red-absorbing form of phytochrome - Pr red-absorbing form of phytochrome - R red - BCJ photographic ruby-red irradiation A grant in aid of research from the National Research Council of Canada to B. G. Cumming is gratefully acknowledged.  相似文献   

19.
S. Frosch  H. Mohr 《Planta》1980,148(3):279-286
Carotenoid accumulation in the cotyledons of the mustard seedling (Sinapis alba L.) is controlled by light. Besides the stimulatory function of phytochrome in carotenogenesis the experiments reveal the significance of chlorophyll accumulation for the accumulation of larger amounts of acrotenoids. A specific blue light effect was not found. The data suggest that light exerts its control over carotenoid biogenesis through two separate mechanisms: A phytochrome regulation of enzyme levels before a postulated pool of free carotenoids, and a regulation by chlorophyll draining the pool by complex-formation.Abbreviations Chl chlorophyll(s) - PChl protochlorophyll(ide) - HIR high irradiance reaction (of phytochrome) - Pfr far-red absorbing, physiologically active form of phytochrome - Pr red absorbing, physiologically inactive form of phytochrome - Pfof total phytochrome, i.e. [Pr]+[Pfr] - [Pfr]/[Pfof], wavelength dependent photoequilibrium of the phytochrome system - red red light - fr far-red light  相似文献   

20.
W. Schmidt  E. Schäfer 《Planta》1974,116(3):267-272
Summary Under conditions of continuous irradiation, the P jr destruction rate constants (k d ) of phytochrome in hooks and cotyledons of squash (Cucurbita pepo L.) seedlings do not depend on the photostationary state and are the same in both organs. On the other hand, the rate constants of the dark reversion and the first destruction step, plotted as a function of 0 , show optimum curves with maxima between 0 and 0.5. Similar results were obtained for dark reactions of mustard (Sinapis alba L.)-hook phytochrome in vivo. This indicates a cooperative behaviour of these phytochrome dark reactions.Abbreviations P r red-absorbing form of phytochrome - P fr far-red-absorbing form of phytochrome - [P tot] [P r ]+[P fr ] - [P tot] ([P fr ]/[P tot]), photostationary state - 0 at t=0, immediately after saturating irradiation  相似文献   

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