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In vitro tests of the validity of singlet oxygen luminescence measurements as a dose metric in photodynamic therapy.

Singlet oxygen ((1)O(2)) is widely believed to be the major cytotoxic agent involved in photodynamic therapy (PDT). We showed recently that measurement of the weak near infrared luminescence of (1)O(2) is possible in cells in vitro and tissues in vivo. Here, we investigated the relationship between the integrated luminescence signal and the in vitro PDT response of AML5 leukemia cells sensitized with aminolevulinic acid-induced protoporphyrin IX (PpIX). Sensitized cell suspensions were irradiated with pulsed 523 nm laser light at average fluence rates of 10, 25, or 50 mWcm(-2) and, (1)O(2) luminescence measurements were made throughout the treatment. Cell survival was measured with either propidium iodide-labeled flow cytometry or colony-forming assay. The PpIX concentration in the cells, the photobleaching, and the pO(2) in the cell suspensions were also monitored. There were large variations in cell survival and (1)O(2) generation in different experiments due to different controlled treatment parameters (fluence and fluence rate) and other uncontrolled factors (PpIX synthesis and oxygenation). However, in all of the cases, cell kill correlated strongly with the cumulative (1)O(2) luminescence and allowed direct estimation of the (1)O(2) per cell required to achieve a specific level of cell kill. This study supports the validity and potential utility of (1)O(2) luminescence measurement as a dosimetric tool for PDT, as well as confirming the likely role of (1)O(2) in porphyrin-based PDT.

Aminolevulinic Acid↗

L-Ergothioneine scavenges superoxide and singlet oxygen and suppresses TNF-alpha and MMP-1 expression in UV-irradiated human dermal fibroblasts.

Ergothioneine (EGT) is a sulfur-containing amino acid, and is presumed to function as a natural antioxidant. The purpose of this study was to identify the nature of the antioxidant activity and investigate the effects of EGT on UV-induced cellular response. In chemical studies, EGT scavenged the superoxide anion radical (*O(2)(-)) and singlet oxygen ((1)O(2)). In cultured fibroblasts, EGT suppressed TNF-alpha up-regulation by UVB irradiation. In addition, in fibroblasts exposed to UV-A, EGT suppressed the expression of matrix metalloproteinase 1 (MMP-1) protein by nearly 50% and reduced MMP-1 mRNA expression. From these results, we conclude that EGT scavenges reactive oxygen species generated by both Type I and Type II photosensitization and suppresses both TNF-alpha expression and MMP-1 at their transcriptional level. EGT may reduce skin anti-aging effects after UV irradiation by the scavenging of *O(2)(-) and (1)O(2), and reducing signals for protease and inflammatory activity.

Base Sequence↗

Vasoactive intestinal peptide, a singlet oxygen quencher.

The neuropeptide vasoactive intestinal peptide (VIP), a highly basic 28-amino acid peptide, has a widespread distribution in the body. The functional specificity of this peptide not only includes its potent vasodilatory activity, but also its role in protecting lungs against acute injury, in preventing T-lymphocyte proliferation and in modulating immune function. We have investigated the possible antioxidant properties of VIP and found that VIP does not have significant O2-, OH., or H2O2 scavenging ability. However, VIP was found to inhibit, in a dose-dependent manner, the 1O2-dependent 2,2,6,6-tetramethylpiperidine N-oxyl (TEMPO) formation. 1O2 was produced in photosensitizing systems using rose bengal or methylene blue as sensitizers and was detected as TEMP-1O2 product (TEMPO) by electron paramagnetic resonance (EPR) spectroscopic techniques. The formation of TEMPO signal was strongly inhibited by known singlet quenchers, e.g. beta-carotene, histidine as well as azide, but not by catalase (20 micrograms/ml) which removes H2O2 and mannitol (6 mM) or ethanol (5.9 mM) which remove OH.. Superoxide dismutase (2.5 micrograms/ml) inhibited the photoreaction up to 20% by removing O2- and most probably by blocking the secondary charge transfer pathway of 1O2 formation. These results suggest that the formation of nitroxide radical by 1O2 attack on TEMP may be used as a simple and specific assay for 1O2, and VIP can serve as an effective 1O2 scavenger/quencher, thus it may modulate the oxidative tissue injury caused by this reactive species of oxygen.

Amino Acid Sequence↗

[Photosensitized formation of singlet oxygen in water solutions of covalent porphyrin-antibody conjugates].

The effective photogeneration of singlet molecular oxygen (1O2) by porphyrins (coproporphyrin I; 2,4-bi (alpha-methoxyethyl) deuteroporphyrin IX and cyclopanten-coproporphyrin I) conjugated with antibodies (mouse monoclonal IgG and IgM and human gamma-globulin) have been observed with the direct luminescence method of 1O2 detection. Absolute quantum yields of 1O2 formation by the conjugates have been determined. The data suggest that porphyrin-antibody conjugates are promising for the use as drugs in photodynamic tumor treatment.

Animals↗

Evidence for the generation of singlet molecular oxygen during dopa and dopamine peroxidation.

Participation of singlet molecular oxygen (1O2) in peroxidation of dopa and dopamine was studied by measurements of chemiluminescence spectra, the influence of solvents with various lifetime of O2 (1 delta g) and O2 (1 delta g)-quenchers on quantum yield of chemiluminescence. A decrease of absorption and fluorescence intensities of 1,3-diphenylizobenzofuran (DPBF) was also studied in the presence of dopa and dopamine oxidized with alkaline H2O2 as a criterion for the involvement of 1O2.

Dihydroxyphenylalanine↗

Detection of singlet (1O2) oxygen phosphorescence during chloroperoxidase-catalyzed decomposition of ethyl hydroperoxide.

Evidence for the production of singlet molecular oxygen (1O2) during the chloroperoxidase-catalyzed decomposition of ethyl hydroperoxide has been obtained through the use of optical spectroscopy, oxygen electrode experiments, and electron spin resonance (ESR). ESR spin-trapping experiments with 5,5-dimethyl-1-pyrroline N-oxide (DMPO) demonstrate the production of the ethyl peroxyl free radical during the chloroperoxidase/ethyl hydroperoxide reaction. Oxygen and acetaldehyde concentrations suggest that the production of ethyl peroxyl radicals constitutes less than 2% of the decomposition of ethyl hydroperoxide at the concentrations of reactants used. The phosphorescence of 1O2 at 1268 nm was observed during the chloroperoxidase-catalyzed decomposition of ethyl hydroperoxide in deuterium oxide buffer. Chloroperoxidase also catalyzes the decomposition of tert-butyl hydroperoxide to its corresponding peroxyl radical. Alkoxyl and alkyl-DMPO spin adducts were also detected. A much lower yield of 1O2 phosphorescence was observed during the chloroperoxidase-catalyzed decomposition of tert-butyl hydroperoxide. This phosphorescence probably arises through secondary production of alkyl peroxyl radicals. These results suggest that the initial enzyme-dependent production of ethyl peroxyl radicals is followed by enzyme-independent reaction of two peroxyl radicals through the tetroxide intermediate, as originally proposed by Russell (Russell, G. A. (1957) J. Am. Chem. Soc. 79, 3871-3877), to form acetaldehyde, ethyl alcohol, and molecular oxygen.

Chloride Peroxidase↗

Direct observation of singlet oxygen production by merocyanine 540 associated with phosphatidylcholine liposomes.

The production of singlet molecular oxygen (1O2) by the photosensitizing dye merocyanine 540 (MC540) bound to phosphatidylcholine liposomes has been demonstrated by direct detection of 1O2 luminescence at 1268 nm. 1O2 phosphorescence emission was enhanced in deuterated buffer and upon saturation of the sample with oxygen and could be quenched by the addition of sodium azide to the external medium. No 1O2 luminescence was detected in nitrogen-saturated samples, in the absence of dye, or with MC540 in aqueous solution. Photobleaching of liposome-bound MC540 was also observed to be dependent on oxygen concentration. These studies are consistent with 1O2 intermediacy in the mechanism of MC540-mediated photosensitization.

Dimyristoylphosphatidylcholine↗

[Quenching of singlet molecular oxygen by screening pigments-- melanins and ommochromes].

Synthetic DOPA-melanin and natural screening pigments--sepiomelanin and ommochromes are shown to quench the luminescence of singlet molecular oxygen (1O2) in aqueous (D2O, pD = 7.5-8.1) solutions. The rate constants of 1O2 quenching are found to be equal to (1.2 +/- 0.6) 10(8) M-1 s-1 for monomeric units in DOPA-melanin and to (3 +/- 1) 10(6) M-1 s-1 for ommochromes. The data suggest that screening is not the only function of melanins, which may play a role of inhibitors of photodynamic damage in living tissues.

Animals↗

[Photodynamic effect of several hematoporphyrin derivatives and their production of singlet oxygen and retention in cancer cells].

Photodynamic effect of three hematoporphyrin derivatives (HpD) on cancer cells in Ehrlich ascites carcinoma (EAC) mice were tested both in vivo and in vitro. At the dose of 5 micrograms/ml, HpD-81 and HpD-83 plus light inhibited the increase of ascites at inhibition rates of 84.6% and 17.5%. Yet HpD-82 plus light showed no effect. Their capacity to retain themselves in cancer cells differed and was related to their photodynamic effect. HpD-81 had the greatest capacity and its distribution ratio was higher than the others. The accumulation of HpD in cancer cells was obviously decreased by the addition of serum in the medium. The production rate of singlet oxygen by HpD-81 was slightly greater than that of HpD-83, but this difference could hardly explain the difference in cytotoxic effect of these two HpD. We expect that the accumulation of HpD in cancer cells may be one of the determinants in the photodynamic effect of photosensitizers.

Animals↗

[Photosensitized generation of singlet molecular oxygen by endogenous substances of the eye lens].

It is shown that kinurenine derivatives, harmane (beta-carboline) and tetracycline hydrochloride known as photosensitizers of cataractogenesis in lens produce luminescence of singlet molecular oxygen (1O2) under photoexcitation in air saturated aqueous (D2O) solution. The quantum yields of the 1O2 generation by these substances are determined. The data obtained by this direct 1O2 determination technique suggest that 1O2 might take part in cataractogenesis.

Cataract↗

[Photogeneration of singlet oxygen by psoralens].

Photosensitized luminescence of singlet (1 delta g) molecular oxygen with the maximum at 1272 nm has been found in solutions of psoralen, angelicin and 8-methoxypsoralen in CCl4. The luminescence excitation spectra, quantum yields of generation (gamma g) and rate constants of quenching (Kq) of 1 delta g by psoralens have been measured. The gamma g values 0,0055, 0,0026, 0,002 and Kq values 9 X 10(3), 11 X 10(3) and 12 X X 10(3) have been obtained for psoralen, angelicin and 8-methoxypsoralen, respectively. The role of 1 delta g in a photobiological action of psoralens is discussed.

Ficusin↗

[Oxidation of NADH by singlet oxygen generated by triplet flavin].

Mechanisms of NADH oxidation in the presence of flavines in the light under aerobic and anaerobic conditions has been studied by spectrophotometry method and by registering the kinetics of changes in pH, luminescence and oxygen content in solution. It is shown that singlet oxygen O2* generated by triplet flavine may be an agent that immediately oxidizes NADH under aerobic conditions. The rate constant of the reaction of O2* with NADH accounts for about 1.9 . 10(9) M-1 s-1 and maximum quantum yield of NADH photooxidation in the presence of flavine mononucleotide is 0.7. During aerobic oxidation of NADH the flavine molecules function as photosensitizers rather than as carriers of reduced equivalents.

Flavins↗

Singlet oxygen generation in the superoxide reaction.

ESR spin trapping was utilized to study the singlet oxygen (1O2) generation in the reaction of superoxide (O2) with H2O2. The spin trap used was 2,2,6,6-tetramethyl-4-piperdone. Incubation of xanthine, xanthine oxidase and H2O2 generated 1O2 spin adduct signal. Omission of xanthine, xanthine oxidase or H2O2 caused a sharp decrease in 1O2 generation. 1O2 scavenger, sodium azide, inhibited 1O2 generation while .OH scavenger, ethanol, only slightly decreased the signal intensity. Potassium superoxide (KO2) decomposition generated 1O2. Catalase and sodium azide inhibited 1O2 generation and H2O2 enhanced it. The results demonstrate that O2 is capable of generating 1O2 upon reaction with H2O2.

Azides↗

Possibility of formation of excited formaldehyde and singlet oxygen in biotic and abiotic stress situations.

The results obtained prove that singlet oxygen and excited formaldehyde can be liberated from hydrogen peroxide and formaldehyde in free and bound L-lysine containing plant and other tissues, similarly to the model reactions. It can be concluded that these reactive molecules have extremely high reactivity and are possibly aggressive to cellular components like proteins, nucleic acids and to microbial systems within plant and other tissues. However, the manifestation of their activity depends on level of quenching systems in plant and other tissues. It seems that these special reactions and their products may be an important part of the resistance potential (e.g. natural disease resistance) in biological systems.

Formaldehyde↗

Characterization of singlet oxygen-induced guanine residue damage after photochemical treatment of free nucleosides and DNA.

DNA and free nucleosides were photosensitized with the DNA-binding dyes methylene blue (MB) and meso-tetra(4-N-methyl-pyridyl) porphyrin (p-TMPyP) and the non-binding meso-tetra (4-sulphonatophenyl) porphyrin (TSPP). After light exposure DNA was enzymatically digested to nucleosides. Only the guanine residues were photodegraded. By measuring optical absorption, at least 20 photoproducts were detected. Singlet oxygen (1O2) was involved in induction of all these products since D2O enhanced their yields from 4 to 10 times. The photoproducts were the same for all sensitizers. However, several photoproducts were found only with DNA or only with free 2'-deoxyguanosine. Four of 20 photoproducts were induced both in DNA and free 2'-deoxy-guanosine. The yield of the photoproduct 8-oxo-7,8-dihydro-2'-deoxyguanosine (8-oxo-dG) relative to the degree of 2'-deoxy-guanosine degradation depended on which sensitizer was used and on whether nucleosides or DNA was exposed. Apparently, DNA structure affected the types of as well as the yields of photo-products induced by 1O2.

DNA↗

The oxidation of blood plasma and low density lipoprotein components by chemically generated singlet oxygen.

Human blood plasma and freshly isolated LDL were exposed to singlet oxygen (1O2) by thermal decomposition of synthetic endoperoxides. Exposure of blood plasma to 20 mM water-soluble 1O2 generator resulted in the depletion of ascorbate (100%), urate (75%), ubiquinol-10 (65%), protein thiols (50%), and bilirubin (25%), whereas under these conditions the levels of alpha-tocopherol, beta-carotene, and lycopene remained unchanged. The following rates of depletion were obtained by kinetic analysis (moles depleted per 100 mol of 1O2 consumed): protein thiols (5), urate (5), ascorbate (4), bilirubin (1), and ubiquinol-10 (0.008). In contrast, the rates of depletion using the lipid-soluble 1O2 generator were faster for bilirubin (13-fold), protein thiols (9-fold), ubiquinol-10 (8-fold), and ascorbate (5-fold), and slower for urate (2-fold). The formation of lipid hydroperoxides, including mostly cholesteryl linoleate hydroperoxide, was observed in 1O2-treated plasma (0.007-0.009 mol/100 mol 1O2) and LDL solutions (0.086 mol/100 mol 1O2). Based on competition kinetics, we estimate that 98% of 1O2 generated in the aqueous phase of plasma is quenched by components in this phase, mostly by plasma protein (63%; 6% by protein thiols), urate (9%; 5% by chemical quenching), and bilirubin (5%; 1% by chemical quenching). Ascorbate and ubiquinol-10 do not contribute to 1O2 quenching in plasma, and their oxidation is probably mediated secondary species. The remaining 1O2 generated in plasma (2%) diffuses into lipoprotein leading to the formation of lipid hydroperoxides with an efficiency of about 100-fold greater than that compared to aqueous generated 1O2. The principal 1O2 quenchers in LDL include apoB (42%), lycopene and beta-carotene (40%), and alpha-tocopherol (17%). The importance of carotenoids in the quenching of 1O2 in lipoprotein suggest that the beneficial effects of these compounds in health may in part be due to the elimination of this species in biology and medicine.

Adult↗

Supramolecular cationic tetraruthenated porphyrin and light-induced decomposition of 2'-deoxyguanosine predominantly via a singlet oxygen-mediated mechanism.

The tetraruthenated porphyrin, mu-[meso-5,10,15,20-tetra(pyridyl)porphyrin]tetrakis[bis-(bipyridine) chloride ruthenium(II)] (TRP) is a supramolecular cationic species. The aim of the present investigation was to evaluate the photodynamic properties of TRP and Zn-TRP to damage DNA with emphasis on the mechanistic aspects. The ability for tetraruthenated porphyrin derivatives to induce photosensitization reactions has been determined using 2'-deoxyguanosine as a DNA model compound. The main photooxidation products of the targeted nucleoside were identified and classified according to their mechanisms of formation, involving either a radical pathway (type I) or a singlet oxygen-mediated mechanism (type II). Quantification of the different oxidation products provides a means to evaluate the relative contribution of type I and type II pathways associated with the oxidative photosensitization of 2'-deoxyguanosine by tetraruthenated porphyrin derivatives. Results indicate that 1O2 plays a major role in the mechanism of photooxidation mediated by these porphyrin derivatives. In addition an increase of the photosensitizing effect in the presence of zinc is observed. For each sensitizer, the ratio between type II and type I photoproducts has been calculated and compared to that of other known dyes such as methylene blue and riboflavin.

DNA Damage↗

Copper(II) as an efficient scavenger of singlet molecular oxygen.

Reactive oxygen species (ROS) are considered to play an important role in tissue injury that damages DNA, proteins, carbohydrates and lipids. Increased production of ROS and/or decreased efficiency of antioxidant defense system has been shown to contribute to a number of degenerative processes including cancer and AIDS. Among the various forms of ROS, singlet oxygen (1O2), which is generated predominantly in photosensitization reactions, is of particular physiologic significance because of its selectively long life in aqueous solution, its ability to cross the cell membrane barrier and high reactivity towards biomolecules. In the present study, the 1O2 scavenging potential of Cu(II) has been evaluated by (i) generating 1O2 by photosensitization of rose bengal (RB), (ii) establishing 1O2 quenching with recognized 1O2 scavengers like sodium azide, DABCO and (iii) examining the effect of Cu(II) in scavenging of 1O2. The results revealed that Cu(II) inhibited the rate of 1O2 production by 88%, 68%, 40%, 21% and 10% at a concentration of 10(-2) M, 5 x 10(-3) M, 10(-3) M; 5 x 10(-4) M, and 10(-4) M, respectively. Under similar experimental condition, sodium azide or DABCO at 10(-2) M inhibited the 1O2 production by 86% and 88%, respectively. Other 1O2 generating photosensitizer like hematoporphyrin, riboflavin and methylene blue also produced identical results with Cu(II) but Fe(II), Fe(III), Zn(II) or As(III) did not produce any quenching of 1O2. Presence of a copper binding peptide (Gly-Gly-His) in the reaction system reduced the 1O2 scavenging capacity of Cu(II) by 52-66% depending upon the UV dose. The 1O2 scavenging property of metal ion appears to have an advantage to reduce the oxidative damage of photodynamic reactions in order to prevent ROS-induced toxicity reactions.

Animals↗