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Temperature dependence of tryptophan phosphorescence in proteins.

The phosphorescence yield and decay kinetics of tryptophan (Trp) in apoazurin from Pseudomonas aeruginosa, subtilisin Carlsberg, Staphylococcal nuclease and liver alcohol dehydrogenase were determined as a function of temperature from 150 K (glassy matrix) to 300 K (fluid solution). The constancy of the lifetime-normalized phosphorescence yield with apoazurin and with Trp-314 in alcohol dehydrogenase establishes that the intersystem crossing quantum yield is practically unaffected across the temperature range. Consequently, any decrease in phosphorescence intensity not accounted for by lifetime-shortening is a signal either of the selective quenching of specific Trp residues in the same macromolecule or that the protein sample is heterogeneous in its emission properties. From an analysis of the thermal profile it is concluded that subtilisin Carlsberg and S. nuclease, as opposed to apoazurin, are not phosphorescent at ambient temperature, their residual emission probably arising from protein impurities. Criteria for distinguishing conformer emission from a contribution by protein impurities are discussed.

Alcohol Dehydrogenase↗

Rotational diffusion of human lipoproteins and their receptors as determined by time-resolved phosphorescence anisotropy.

Time-resolved phosphorescence anisotropy has been used to assess the rotational dynamics of human serum lipoproteins labeled with phosphorescent probes of high triplet yield. Labeling the lipid phase of low density, very low density, and high density lipoproteins with an eosinyl fatty acid revealed the existence of two motions. The shorter time constant was attributed to motion of the chromophore within the lipoprotein particle, while the longer time constant represented the global tumbling of the particles in solution. The measured correlation times for this global motion were about twice those predicted from the Stokes-Einstein relationship. Covalent labeling of the apolipoproteins of the low and high density lipoproteins with erythrosin revealed the existence of segmental motion of labeled domains of the apolipoprotein within their respective particles. The correlation times for this motion were within the range 10-50 microseconds. The binding of low density lipoproteins to receptors on membranes isolated from the adrenal cortex resulted in a freezing of the global motion, but maintenance of the faster segmental motion of the labeled domains of the apolipoprotein. The experiments imply that in these membranes there is no global motion of the low density lipoprotein-receptor complex on the phosphorescence time scale. Similar results were found for the binding of high density lipoproteins to liver plasma membranes. The contributions of nonspecific binding of the labeled lipoproteins to the measured phosphorescence anisotropy were carefully assessed.

Adrenal Cortex↗

Effect of divalent metal cations upon the fluorescence and phosphorescence properties of adenosine triphosphate.

The fluorescence and phosphorescence properties of various divalent metal cations and adenosine triphosphate (ATP) dissolved in 1:1 volume by volume of ethylene glycol and water at 77 K have been studied. The present results indicate that Co2+, Ni2+ and Mn2+ quench the phosphorescence of ATP, whereas the fluorescence and the phosphorescence decays are not or only slightly affected. On the other hand, Ca2+ and Mg2+ have no remarkable effect upon the fluorescence and phosphorescence properties.

Adenosine Triphosphate↗

Delayed fluorescence and phosphorescence of flavomononucleotide stabilized by poly(vinyl alcohol) matrix.

Phosphorescence spectra at 103 K and delayed fluorescence and phosphorescence spectra at 296 K of flavomononucleotide (FMN) stabilized by poly(vinyl alcohol) PVA matrix have been measured. At 103 K the FMN monomer and excimer exhibit phosphorescence bands at about 620 and 640 nm, respectively. At 295 K the delayed fluorescence and phosphorescence of the FMN excimer exist together, revealing that FMN in the excited triplet state is an energetically well-isolated molecular complex which may play an important role in photobiological reactions.

Flavin Mononucleotide↗

[Application of phosphorescent probes in investigations of model and biological membranes].

Possibility of using phosphorescent probes for membrane investigations was analysed on lecithin liposomes and rat liver microsomes taken as an example. It was shown that one quencher molecule on 10(4) lecithin molecules is sufficient for experimental registration of diffusion-controlled quenching of erythrosine phosphorescence by stable nitroxide radicals. It is possible to study the diffusion processes with D = 10(-5) divided by 10(-9) cm2s-1. Application of quenchers of different polarity allows to make a conclusion that the phosphorescent probe erythrosine is localized in liposomes in the region of polar heads of phosphatidyl choline. It was determined from the rate of phosphorescence quenching by radicals that the membrane microviscosity in this region at 20 degrees C equals approximately 1 puas. The coefficient of erythrosine lateral diffusion in liposomes estimated from their self-quenching equals 1,1 x 10(-8) cm2s-1. In the microsome erythrosine is localized in hydrophobic parts of proteins and is not accessible for the quencher molecules.

Animals↗

Kinetic spectroscopy of erythrosin phosphorescence and delayed fluorescence in aqueous solution at room temperature.

The photophysics and polarization of the phosphorescence and delayed fluorescence of erythrosin in conditions compatible with the current biological applications of the dye (aqueous buffers at pH 7.4 at ambient temperatures) and in ethanol have been studied as a function of dye concentration (10(-7)-10(-5) M) and temperature (245-333 K). The emission decay is strictly single exponential and the detailed kinetic analysis of all the rate processes connected with the emitting T1 state showed that (1) the lowering of the emission lifetime at the higher temperatures is due to a very efficient self-quenching process, (2) the back intersystem crossing rate T1-->S1 is temperature dependent (delta ETS approximately 7 kcal mol-1) but the T1-->S0 is not (Ea < 0.1 kcal mol-1) and (3) both intersystem crossing processes are very sensitive to solvent polarity, which accounts for the solvent dependence of the phosphorescence yield and lifetime. The high value of the phosphorescence anisotropy (r0 = 0.25 +/- 0.006) is independent of the excitation and emission wavelengths, and its evolution in time accurately reflects the rotational restrictions in solid solutions. The relevance of these findings to studies with protein-dye conjugates is also outlined to facilitate the design and interpretation of phosphorescence depolarization experiments that probe the microsecond-ms dynamics of biomolecules and supramolecular systems.

Erythrosine↗

Phosphorescent pH sensors and switches with substitutionally tunable response range based on photo-induced electron transfer.

According to the principle of photo-induced electron transfer (PET), five aminomethyl-bromonaphthalene phosphoroionophores with long lifetimes (to ms) were synthesized, all of them working well in beta-cyclodextrin (beta-CD) aqueous solutions. They form a family of phosphorescent sensors with pH-dependent spectral properties. For all the compounds, the fully protonated form exhibits the highest phosphorescence emission intensity and the proton-free form of the sensor is weakly emissive, due to the designed PET process. The sensors also show the expected pH dependence of phosphorescence quantum yields. Responses of the sensors are tuned by variation of substituent. The pH response ranges for 1-5 were 4.3-6.5, 3.5-10.5, 3.4-10.5, 3.4-10.5 and 3.4-6.1, respectively.

Cations↗

A remarkable ligand orientational effect in osmium-atom-induced blue phosphorescence.

A new series of Os(II)-based carbonyl complexes cis(CO),trans(Npy,Npy),cis(Ntz,Ntz)-[Os(CO)2(bptz)2] (1), cis(CO),cis(Npy,Npy),trans(Ntz,Ntz)-[Os(bptz)2(CO)2] (2), and cis(CO),trans(Npy,Npy),cis(Ntz,Ntz)-[Os(CO)2(fptz)2] (3), where bptz and fptz denote 3-tert-butyl-5-(2-pyridyl)- and 3-trifluoromethyl-5-(2-pyridyl)-1,2,4-triazolate, respectively, have been designed and synthesized in an effort to achieve high efficiency, room-temperature blue phosphorescence. Although 1 and 2 are geometric isomers, remarkably different excited-state relaxation pathways were observed. Complex 1 exhibits strong phosphorescence in CH3CN (Phi(p) approximately 0.47) and as a single crystal at room temperature, whereas complex 2 is nearly nonemissive under similar conditions. The associated relaxation dynamics have been comprehensively investigated by spectroscopic and relaxation dynamics as well as by theoretical approaches. Our results lead us to the conclusion that for complex 2, the "loose bolt" effect of metal-ligand bonding interactions plays a crucial role in the fast radiationless deactivation of this type of geometrical isomer. Fine adjustment can also be achieved by functionalizing the ligands so that the electron-withdrawing nature of the CF3 group in 3 stabilizes the HOMO of the triazolate moiety, thus moving the emission further into the pure "blue" region; this results in highly efficient phosphorescence and renders 3 particularly attractive for application in blue OLED devices.

Journal Article↗

Phosphorescent metalloporphyrins as labels in time-resolved luminescence microscopy: effect of mounting on emission intensity.

In this study, we present an investigation of the effects of mounting media on the phosphorescence of metalloporphyrin stained microscopy samples. The samples were: (1) Platinum(II) coproporphyrin (=PtCP) stained porous Sephadex beads; (2) compact polystyrene microspheres coated with IgG-PtCP conjugate; and (3) immunocytochemically labeled human peripheral blood neutrophils. The human neutrophils in a mixed leukocyte population were fixed, permeabilized, and then immunolabeled with PtCP conjugate of monoclonal mouse IgG directed to the intracellular antigen myeloperoxidase. The samples were mounted in twelve different mounting media and studied with quantitative time-resolved luminescence imaging microscopy with respect to the intensity and stability of the phosphorescence signal. The results indicate that microscopy samples stained with PtCP exhibit the brightest phosphorescence emission in non-mounted form or when mounted in non-aqueous permanent mounting media.

Animals↗

Calibration of oxygen-dependent quenching of the phosphorescence of Pd-meso-tetra (4-carboxyphenyl) porphine: a phosphor with general application for measuring oxygen concentration in biological systems.

Oxygen-dependent quenching of phosphorescence is a function of the frequency of collision between the phosphor and molecular oxygen and of the efficiency of energy transfer during these collisions. Thus, quenching is dependent on the rate of diffusion of the phosphor and its molecular environment. For measurements in biological samples, the Pd-porphyrin is bound to serum albumin, and this provides a uniform microenvironment for the phosphor which is relatively unaffected by changes in the pH and ionic composition of the medium. Calibration of the phosphor is of particular value because it is absolute, i.e., the calibration is valid independent of the laboratory and the time of measurement. This paper reports the calibration constants determined for Pd-meso-tetra (4-carboxyphenyl) porphine, as measured by two independent methods: by stoichiometric titration of the oxygen with ascorbate in the presence of ascorbate oxidase and by comparison with a high-accuracy oxygen electrode. The measurements were carried out in a specially designed thermostatted vessel in which the oxygen electrode and phosphorescence lifetime measurements of oxygen were made simultaneously. The calibration constants for the oxygen-dependent quenching of the phosphorescence of Pd-meso-tetra (4-carboxyphenyl) porphine were determined as a function of albumin concentration, ionic strength in medium, pH, and temperature.

Ascorbate Oxidase↗

A new type of phosphorescent nanospheres for use in advanced time-resolved multiplexed bioassays.

A new concept to design phosphorescent nanospheres is presented. The spheres are distinguishable by their individual decay time and spectral distribution of their emission spectra. They are composed of a phosphorescent ruthenium metal-ligand complex (MLC) dissolved, along with certain strongly fluorescent cyanine dyes, in modified polyacrylonitrile-based nanospheres. Since the emission spectrum of the MLC overlaps the absorption spectrum of the cyanine and both the MLC (the donor) and the cyanine (the acceptor) are in close spatial proximity, efficient resonance energy transfer (RET) does occur. Thus, the nanospheres emit dual luminescence, one from the acceptor dye and the other from the donor MLC. Variation of the concentrations of the acceptor dye results in a varying efficiency of RET, thus making the spheres distinguishable. Hence, a set of multiplexable sphere labels is obtained by using one MLC (acting as the phosphorescent donor and present in constant concentration) and one acceptor dye (which varies in terms of both spectral properties and concentration). The nanospheres can be identified by the emission maximum (reflecting the kind of acceptor dye) and by decay time (reflecting its concentration). Since the same donor MLC is used throughout, all nanospheres can be excited with the same light source.

Biological Assay↗

Determination of 4-methylpropranolol in cerebrospinal fluid, serum, and urine by nonprotected fluid room-temperature phosphorescence using simplex optimization.

A direct and simple procedure for the determination of 4-methylpropranolol, a specific beta-adrenergic receptor blocking agent, in biological fluids was developed. The method was based on the measurement of the nonprotected fluid room-temperature phosphorescence of the drug. This technique enables us to determine analytes in complex matrices without the need for a tedious prior separation process. The appropriate experimental conditions to obtain suitable reproducibility and maximum phosphorescence signal, when sodium sulfite is used to eliminate the oxygen from the solution and when potassium iodide is used as heavy atom, were studied. The optimum concentration of KI was 3.2 M. The optimization of Na(2)SO(3) (7.0 x 10(-3) M) and the accurate value of pH (10.88) were determined using a simplex as the method of optimization. A sodium carbonate-hydrogen carbonate buffer solution (5.0 x 10(-2) M) was used to adjust the value of pH. The delay time (124 micros), gate time (206 micros), and time between flashes (5 ms) were also optimized using a simplex. Under the above conditions, the maximum signal of phosphorescence appears instantly once the sample has been prepared, and the intensity was measured at lambda(ex) = 300 nm and lambda(em) = 537 nm, in the concentration range 25-500 ng/ml. Overall least-squares regression was used to find the straight line that fit the experimental data. The detection limit according to the error propagation theory was 6.2 ng/ml and the detection limit calculated as proposed by C. A. Clayton et al. (1987, Anal. Chem. 59, 2506) was 11.7 ng/ml. The repeatability was studied using 10 solutions of 200 ng/ml 4-methylpropranolol; if error propagation theory was assumed, the relative error was 1.78% and the standard deviation for replicate samples was 3.5 ng/ml. This method was successfully applied to the determination of 4-methylpropranolol in urine, serum, and cerebrospinal fluid, with recoveries of 99.3 +/- 0.5% in the case of urine, 99.8 +/- 0.2% for serum, and 101.5 +/- 1.5% for cerebrospinal fluid.

Humans↗

Comparison of three different phosphorescent methodologies in solution for the analysis of naphazoline in pharmaceutical preparations.

We present results from a comparative study of three proposed phosphorimetric methods for determination of naphazoline (NPZ) in solution. The first method is based on use of micelles to stabilize phosphorescence signals in solutions at room temperature (MS-RTP). The second is based on the use of a heavy atom salt and sodium sulfite as an oxygen scavenger to obtain room-temperature phosphorescence (HAI-RTP) in solution. The last method employs an optical sensor for NPZ based on the phosphorescent properties of the analyte on a solid sensor phase. The aim of this work was to compare time consumption, simplicity, sensitivity, selectivity, detection, and quantification limits for use of these three phosphorimetric methods to determine naphazoline in pharmaceutical preparations. The most simple, sensitive, and reproducible of the three methods for naphazoline analysis is the HAI-RTP method. Detection limits are 4.9, 1.7, and 9.4 ng mL(-1), respectively, for the MS-RTP, HAI-RTP, and optosensor methods.

Luminescent Measurements↗

Determination of human IgG by solid-substrate room-temperature phosphorescence immunoassay based on an antibody labeled with nanoparticles containing rhodamine 6G luminescent molecules.

Luminescent 50-nm silicon dioxide nanoparticles containing both types of rhodamine 6G (R; particles denoted R-SiO2) were synthesized by the sol-gel method. In the presence of Pb(Ac)2 as a heavy atom perturber the particle can emit the intense and stable room-temperature phosphorescence (RTP) signal of R on a polyamide membrane, with lambda(ex)max/ lambda(em)max=470/635 nm for R. Our research indicates that the specific immune reaction between goat-anti-human IgG antibody labeled with R-SiO2 and human IgG can be carried out quantitatively on a polyamide membrane, and the phosphorescence intensity was enhanced after the immunoreaction. Thus a new method for solid-substrate room-temperature phosphorescence immunoassay (SS-RTP-IA) for determination of human IgG was established on the basis of antibody labeled with the nanoparticles containing binary luminescent molecules. The linear range of this method is 0.0624-20.0 pg spot(-1) of human IgG (corresponding to a concentration range of 0.156-50.0 ng mL(-1), sample volume 0.40 microL spot(-1)). The regression equations of the working curves are DeltaIp = 71.27+7.208 m(IgG) (pg spot(-1)) (r = 0.9996). Detection limits calculated as 3 Sb/k are 0.022 pg spot(-1). Compared with the same IA using fluorescein isothiocyanate (FITC) as the marker the new method was more sensitive and had a wider linear range. After elevenfold replicate measurement RSD are 4.5 and 3.6% for samples containing 0.156 and 50.0 ng mL(-1) IgG, respectively. This method is sensitive, accurate, and of high precision.

Animals↗

Determination of traces of bismuth by quenching of solid-substrate room-temperature phosphorescence from morin-labeled silicon dioxide nano-particles.

Silicon dioxide nano-particles, diameter 50 nm, containing morin (morin-SiO2) have been synthesized by the sol-gel method. They emit strong and stable room-temperature phosphorescence (SS-RTP) on filter paper as substrate, and bismuth can quench the intensity of the SS-RTP. On this basis a new morin-SiO2 solid-substrate room-temperature phosphorescence-quenching method has been established for determination of traces of bismuth. Reduction of phosphorescence intensity (DeltaI(p)) is directly proportional to the concentration of bismuth in the working range 0.16-14.4 ag spot(-1) (sample volume 0.40 muL spot(-1), corresponding to the concentration range 0.40-36.0 fg mL(-1)). The regression equation of the working curve is DeltaI(p)=14.86+5.279x[Bi3+] (ag spot(-1)) (n=6, r=0.9982). The detection limit of this method is 0.026 ag spot(-1) (corresponding to a concentration of 6.5 x 10(-17) g mL(-1)).This sensitive, reproducible and accurate method has been used for successful analysis of real samples.

Journal Article↗

Emerging applications of phosphorescent metalloporphyrins.

The subject of phosphorescent metalloporphyrins is reviewed, focusing mainly on the development and application of Pt- and Pd-porphyrins. A summary of their general chemical and photophysical properties, and guidelines for rational design of the phosphorescent labels, bioconjugates and probes is given. Examples of different detection formats and particular bio-analytical applications developed in recent years are presented. The potential of phosphorescent porphyrin label methodology is discussed and compared to that of the long-decay fluorescent lanthanide chelates and other common fluorophores.

Biological Assay↗

Electron transfer from excited tryptophan to cytochrome c: mechanism of phosphorescence quenching?

Parvalbumin, aldolase and liver alcohol dehydrogenase (ADH), proteins exhibiting long-lived phosphorescence lifetimes at room temperature, were examined for their reactivity with ferricytochrome c (cytochrome c Fe3+) as an external electron acceptor. Illumination of a reaction mixture containing protein and cytochrome c in the absence of oxygen brought about reduction of cytochrome c in relation to the duration of light. The largest portion of reduced cytochrome c was found with a sample containing ADH, where a 50% reduction of cytochrome c was reached after 5 min of illumination with a xenon lamp. Parvalbumin and aldolase were about half as effective under the same conditions. Several lines of evidence support the idea that the reaction of cytochrome c occurred by a long-range electron transfer from the excited triplet state of tryptophan. First, cytochrome c quenches the tryptophan phosphorescence and with parvalbumin, its bimolecular quenching rate constant, kq, was 2.9 x 10(6) M-1 s-1. Second, when the illuminated reaction mixture was supplied with 0.2 mM to 1 mM nitrite, a concentration range of nitrite which quenches the tryptophan phosphorescence but not the fluorescence, the amount of reduced cytochrome c on illumination markedly decreased. Finally, for all illuminated protein samples, the extent of cytochrome c reduction occurred parallel to a decrease in tryptophan content as judged from a decrease in fluorescence intensity and/or a decrease in tryptophan absorption at 280 nm.

Alcohol Dehydrogenase↗

Monitoring membrane protein rotational diffusion using time-averaged phosphorescence.

Rotational motions of membrane proteins have previously been measured using time-dependent phosphorescence techniques. This paper discusses a method of examining membrane protein mobility at temperatures relevant to biological systems, using a technique similar to steady-state fluorescence. The method is demonstrated using sarcoplasmic reticulum ATPase labelled with erythrosin isothiocyanate, both in its natural condition and crosslinked by incubation with glutaraldehyde. The experimentally-observed dependence of phosphorescence anisotropy on temperature is compared to a calculated anisotropy-temperature curve. Comparison is made between the anisotropy decay curves obtained by time-averaged phosphorescence and steady-state fluorescence.

Animals↗