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V A Sineshchekov

Publications and source records attributed to V A Sineshchekov.

18 recordsLinked to original sources

Two modes of the light-induced phytochrome A decline--with and without changes in the proportion of its isoforms (phyA' and phyA''): evidence from fluorescence investigations of mutant phyA-3D pea.

Different modes of the phytochrome function are connected with its polymorphism, the major isoforms being phytochromes A and B (phyA and phyB). In its turn, phyA comprises two native species, phyA' and phyA'', whose precise nature and functions remain obscure. With the use of in situ fluorescence spectroscopy, we investigated their properties in a mutant of pea, phyA-3D, characterized by exaggerated photoresponses and impaired photodestruction of phyA. The mutation is a substitution of alanine by valine at the position 194 in phyA. The phyA-3DphyB and phyB mutants were also investigated. In dark-grown plants, all the lines had the content and properties of the two phyA species very similar to the wild type. However, a considerably more intense reduction in [phyA] without changes in the phyA'/phyA'' equilibrium was found in far-red grown mutant plants suggesting a hypersensitivity of phyA-3D with regard to its autoregulation. On the contrary, under red illumination, a higher stability of phyA-3D was observed confirming our earlier findings. This allows a conclusion that the A194V substitution in phyA-3D not only impairs its destruction but also enhances its signaling ability, suggesting a role of this locus in modulation of its activity.

Light↗

Phytochrome A: functional diversity and polymorphism.

Phytochrome (phy), a 124 kDa biliprotein, mediates plants' perception of environmental light conditions including quantity, quality and duration of light. The complex phenomenology of phy function is connected with its polymorphism, the major phys being phyA and phyB. PhyA mediates irreversible photoresponses in the very low and high fluence ranges (VLFR and HIR) primarily in the far-red (FR) spectral region, whereas phyB mediates the 'classical' R/FR reversible responses in the low fluence range (LFR). This phyA specificity is determined at the level of (i) intramolecular events, (ii) turnover, phyA being light-labile, and (iii) nuclear-cytoplasmic partitioning and interaction with partner proteins. A unique feature of phyA is that two native isoforms, phyA' and phyA'', comprise it, distinguished by spectroscopic and photochemical properties, localization and abundance in plant tissues, light stability, and other properties. They differ by the post-translational modification at the 6 kDa N-terminus, possibly phosphorylation, phyA' being phosphorylated and phyA'' dephosphorylated. Both species participate in the light-induced nuclear-cytoplasmic partitioning. The light-labile phyA' is responsible for de-etiolation (VLFR and HIR modes), whereas the relatively more light-stable phyA'' could be active throughout the whole life cycle. PhyA'' interferes with the action of phyA' and this interaction may be part of the fine tuning mechanism of the phyA function. Finally, within the phyA' pool there are different conformers in thermal equilibrium, that differ by the activation and kinetic parameters of the Pr-->lumi-R photoreaction. This heterogeneity of phyA may account, at least partially, for the complex dynamics of its photoprocesses and the phenomenology of photoresponses.

Genetic Variation↗

Fluorescence spectroscopy and photochemistry of phytochromes A and B in wild-type, mutant and transgenic strains of Arabidopsis thaliana.

Phytochrome (P) was characterized in etiolated seedlings of wild-type, mutant and transgenic strains of Arabidopsis with the use of low-temperature (85 K) fluorescence spectroscopy and photochemistry. The position (lambda max) of the Pr emission spectrum, its intensity (F0) proportional to [P tot] and the extent of the Pr-->lumi-R phototransformation at 85 K (gamma 1) were shown to vary depending on the plant strains and tissues used, while the extent of the Pr-->Pfr transformation at 273 K (gamma 2) remained relatively constant. Depletion of phyA (fre1-1 in Nagatani et al., Plant Physiol. 102 (1993) 269-277, and fhy2-2 in Whitelam et al., Plant Cell 5 (1993) 757-768) resulted in a steep decrease of F0 to approximately equal to 10%. The phyB mutant (hy3-B064 in Reed et al., Plant Cell 5 (1993) 147-157) revealed a slight reduction (by approximately equal to 20%) of F0 while lambda max and gamma 1 remained practically unaffected. In phyAphyB mutuant no P emmission was observed. Overexpression of oat phyA (13k7 and 21k15 in Boylan and Quail, Proc. Natl. Acad. Sci. USA 88 (1991) 10806-10810) brought about an increase of F0 by two or three times, a shift of lambda max to 685 nm and an increase of gamma 1 to 0.3-0.4. On the contrary, an increase of F0 (up to 40%) in Arabidopsis and rice phyB overexpressors (ABO and RBO in Wagner et al., Plant Cell 3 (1991) 1275-1288) was followed by a decrease of gamma 1 values to 0.13-0.14. These data together with the results on phyB (lh) mutant of cucumber prove the existence of the two phyA populations with high (phyA') and low (phyA") photochemical activity at low temperatures. PhyB emits maximally in the same region as phyA in Arabidopsis (approximately equal to 683 nm) and at shorter wavelength (< 680 nm) in rice. It is characterized by low photochemical activity at 85 K (gamma 1 < or = 0.05) and can be attributed in this respect to the same pigment type as phyA".

Arabidopsis↗

The system of phytochromes: photobiophysics and photobiochemistry in vivo.

Phytochrome is a key photoregulation pigment in plants which determines the strategy of their development throughout their life cycle. The major achievement in the recent investigations of the pigment is the discovery of its structural and functional heterogeneity: existence of a family of phytochromes (phyA-phyE) differing by the apoprotein was demonstrated. We approach this problem by investigating the chromophore component of the pigment with the use of the developed method of in vivo low-temperature fluorescence spectroscopy of phytochrome. In etiolated plants, phytochrome fluorescence was detected and attributed to its red-light absorbing form (Pr) and the first photoproduct (lumi-R), and a scheme of the photoreaction in phytochrome, a distinction of which is the activation barrier in the excited state, was put forward. It was found that the spectroscopic and photochemical characteristics of Pr depend on the plant species and phytochrome mutants and overexpressors used, on localization of the pigment in organs and tissues, plant age, effect of preillumination and other physiological factors. This variability of the parameters was interpreted as the existence of at least two phenomenological Pr populations, which differ by their spectroscopic characteristics and activation parameters of the Pr --> lumi-R photoreaction (in particular, by the extent of the Pr --> lumi-R photoconversion at low temperatures, gamma1): the longer-wavelength major and variable by its content in plant tissues Pr' with gamma1 = 0.5 and the shorter-wavelength minor relatively constant Pr" with gamma1 < or = 0.05. The analysis of the phytochrome mutants and overexpressors allows a conclusion that phytochrome A (phyA), which dominates in etiolated seedlings, is presented by two isoforms attributed to Pr' and Pr" (phyA' and phyA", respectively). Phytochrome B (phyB) accounts for less than 10% of the total phytochrome fluorescence and belongs to the Pr" type. It is also characterized by the relatively low extent of the Pr photoconversion into the far-red-light absorbing physiologically active phytochrome form, Pfr. Fluorescence of the minor phytochromes (phyC-phyE) is negligible. The recently discovered phytochrome of the cyanobacterium Synechocystis also belongs to the phenomenological Pr" type. PhyA' is a light-labile and soluble fraction, while phyA" is a relatively light-stable and, possibly, membrane (protein)-associated. Experiments with transgenic tobacco plants overexpressing full-length and C- and N-terminally truncated oat phytochrome A suggest that phyA' and phyA" might differ by the post-translational modification of the small N-terminal segment (amino acid residues 7-69) of the pigment. PhyA' is likely to be active in the de-etiolation processes while phyA" together with phyB, in green plants as revealed by the experiments on transgenic potato plants and phytochrome mutants of Arabidopsis and pea with altered levels of phytochromes A and B and modified phenotypes. And finally, within phyA', there are three subpopulations which are, possibly, different conformers of the chromophore. Thus, there is a hierarchical system of phytochromes which include: (i) different phytochromes; (ii) their post-translationally modified states and (iii) conformers within one molecular type. Its existence might be the rationale for the multiplicity of the photoregulation reactions in plants mediated by phytochrome.

Biochemical Phenomena↗

[Dependence of fluorescence spectra of chloroplasts from the activity of photosystem 2].

By means of high sensitive spectrofluorometer the fluorescence spectra have been measured of normal chloroplasts and those with blocked photosystem 2 activity due to photoinhibition or treatment with 0.6 M tris-buffer. At room temperature fluorescence spectra of inactivated chloroplasts are similar to the spectrum of normal chloroplasts measured at low light intensity. Under excitation by intense light a decrease of intensity at 685 nm is appeared (about 3-4 times) in the fluorescence spectra of inactivated chloroplasts as compared to the spectrum of normal chloroplasts. The sharp intensity decrease of maxima at 685 and 695 nm (3-4 times) and small decrease at 680 and 730 nm (by 30-50%) are observed in low temperature fluorescence spectra of inactivated chloroplasts. Thus, the damage of photosystem 2 reaction centres is not accompanied by the preferential decrease of the only fluorescence band. The similarity of fluorescence difference spectra of chloroplasts distinguished by the state of photosystem 2 reaction centre, and the complex structure of difference spectra indicate that the variable fluorescence of chloroplasts during the induction is due to the emission of bulk chlorophyll alpha of the photosystem 2.

Chloroplasts↗

[Study of different types of chlorophyll a aggregates in solutions and films by absorption and luminescence derivative spectroscopy].

The second derivative of absorption, fluorescence and fluorescence excitation spectra of chlorophyll a in concentrated solutions and films was investigated. More than 14 forms of pigment aggregates, which can be divided into two types--with narrow 8-10nm) and wide (25-40nm) low temperature (-196 degrees C) spectra bands, were found. For the most part of the aggregated forms, the position and half width of the bands, as well as the Stokes shift and relative quantum yield were determined. The comparison of the spectral characteristics points to the indentity of the aggregates and corresponding native forms of Chl. a. It is shown that the universal relationship between absorption and fluorescence bands in applicable to the aggregates of the two types and the energy of resonance interaction between monomers in the aggregates is evaluated.

Alkanes↗

[Luminescence of bacteriorhodopsin in purple membranes from Halobacterium haolbium cells].

Red luminescence of purple membranes from Halobacterium halobium cells was found out, and its emission, excitation and polarization spectra were investigated. Simultaneous parallel measurements of absorption and luminescence changes in one sample brought about by the action of light were also carried out. The bands in the spectra can be attributed to a number of bacteriorhodpsin (BR) forms: BR(595,520), BR(650,575),BR(600-620), BR(700,625), BR(730,660) BR(780,695), where the number above is the position of the luminescence maxima, below--that of absorption. Proceding from the quantum yield of the luminescence (10(-3)) and of photoreaction (10(-1)) of BR, the photoisomerization rate constant of the latter was estimated (10(11) sec(-1). The temperature dependence of the luminescence quantum yield points to the existence of two or three quenching processes with different activation energies. BR phosphorescence was not observed in the region 500-1100 nm. High degree (36%) os luminescence polarization shows that there is no homogeneous energy transfer between BR molecules, or there is regularity in orientation of their dipoles. Energy migration from the bulk of carotenoids to BR was not found. However limited heterogeneous transfer between the different BR forms cannot be ruled out. The absence (or limitation) of migration indicated that there is a spatial separation of the chromophores. Data on possible participation of triplet states in the BR photoconversions are discussed.

Bacteriorhodopsins↗

[Fluorescence of rhodopsins and its relation to primary processes of light energy transformation].

A new area of the investigation of visual and bacterial rhodopsins--fluorescence spectroscopy of the pigments is discussed. Fluorescence properties are considered in relation to photochemical transformations of the pigments at low temperatures. A number of fluorescent states of the pigments are described. It is shown that the excited states of bacteriorhodopsin and visual rhodopsin are characterized by a series of common features. The analysis of general properties of the pigments excited states allows a conclusion that the singlet excited states take part in the photoreaction. The photoreaction scheme is discussed in which structural changes of the chromophore take place already in the excited state.

Animals↗

[Energy migration in phycobilisomes].

Fluorescence emission and polarization spectra of the phycobilisomes (PBS) of the blue-green alga Nostoc muscorum were measured at 20, -73 and -196 degrees C while exciting at the absorption maximum of each pigment in the PBS. The emission spectra were deconvoluted into a number of Gaussian components and energy migration coefficients and quantum yields of fluorescence for the 8 forms of the phycobilins constituting the PBS were calculated. The overlap integrals and the critical and real distances for the energy transfer in the donor-acceptor pairs were evaluated. The general scheme of the energy transfer in the PBS is proposed according to which there is a homogeneous energy migration within each pigment form and a following effective heterogeneous migration directed from the short wavelength forms via the intermediate ones to the terminal long wavelength acceptors. The transfer passes one or more steps of the energy "staircase" which is formed by the excited levels of the forms. The backward "uphill" energy transfer does not take place. These data and the estimates of the real distances of the energy transfer allowed us to make a conclusion on the regular arrangement of the pigments in the PBS, to determine the distances between the chromophores and their localization in a pigment molecule and the distances between the chromophores of different pigments and thus to specify the structure of the PBS.

Cyanobacteria↗

[FLuorescence of photoactive bacteriorhodopsin].

Fluorescence characteristics of all-trans-bacteriorhodopsin (BR570), 13-cis-BR (BR560), and the intermediate of the BR cycle (P585) are obtained by measuring variable fluorescence in the course of their phototransformations. The fluorescence spectra (lambda greater than 580 nm) have a maximum at 720, 730 and 740 nm, their respective excitation spectra with a maximum of 578, 565 and 585 nm coincide with the absorption spectra of the three states. The emission quantum yield for P585 is approximately 10(-4) at -62 degrees C and 4 +/- 2 10(-4) for BR560 at -196 degrees C. The effect of sharp increase of BR570 fluorescence quantum yield (from less than or equal to 10(-4) to approximately 10(-3)) under action of light at -196 degrees C (photoactivation or induction of emission) is found which points to the existence of photoprocess parallel to the photoconversion of BR570 into P600 (formula: see text). The emission of BR560 is not photoactivated. The photoactivated state BR570 is not identical with pseudo-BR of Gillbro et al., (1977) which has a maximum in the excitation spectrum at 597 nm. The greater part of the red fluorescence of the membrane belongs to the minor nonphotoactive forms of BR (B578, B630) with relatively high fluorescence yield (greater than or equal to 10(-2) at -196 degrees C). The fluorescence characteristics of BR are discussed in the framework of a scheme in which the existence of an intermediate excited level common for the emission and photoconversion and a ground level common for the initial state and photoproduct is suggested.

Bacteriorhodopsins↗