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Rapid suppression of mitochondrial permeability transition by methylglyoxal. Role of reversible arginine modification.

Methylglyoxal (MG) (pyruvaldehyde) is a reactive carbonyl compound produced in glycolysis. MG can form covalent adducts on proteins resulting in advanced glycation end products that may alter protein function. Here we report that MG covalently modifies the mitochondrial permeability transition pore (PTP), a high conductance channel involved in the signal transduction of cell death processes. Incubation of isolated mitochondria with MG for a short period of time (5 min), followed by removal of excess free MG, prevented both ganglioside GD3- and Ca2+-induced PTP opening and the ensuing membrane depolarization, swelling, and cytochrome c release. Under these conditions MG did not significantly interfere with mitochondrial substrate transport, respiration, or oxidative phosphorylation. The suppression of permeability transition was reversible following extended incubation in MG-free medium. Of the 29 physiological carbonyl and dicarbonyl compounds tested only MG and its analogue glyoxal were able to specifically alter the behavior of the PTP. Using a set of arginine-containing peptides, we found that the major MG-derived arginine adduct formed, following a short time exposure to MG, was the 5-hydro-5-methylimidazol-4-one derivative. These findings demonstrate that MG rapidly modifies the PTP covalently and stabilizes the PTP in the closed conformation. This is probably due to the formation of an imidazolone adduct on an arginine residue involved in the control of PTP conformation (Linder, M. D., Morkunaite-Haimi, S., Kinnunen, P. J. K., Bernardi, P., and Eriksson, O. (2002) J. Biol. Chem. 277, 937-942). We deduce that the permeability transition constitutes a potentially important physiological target of MG.

Animals↗

DNA modification in vivo by derivatives of glucose: enhancement by glutathione depletion.

When BHK or HTC cells are cultured for 20 min with [U-14C]glucose in the presence of agents that deplete reduced glutathione, DNA banded from the cells in cesium salt gradients containing guanidium HCl is radioactively labeled. This depletion-dependent labeling required live cells. It was not caused by reactive contaminants in the radioactive glucose preparations, by carbohydrate or protein comigration into the DNA band, or by metabolism of glucose into deoxyribose. Labeling levels are similar whether depletion is achieved by oxidation (with the drug diamide) or by inhibition of synthesis (with methionine sulfoximine). A temporal association between GSH repletion and the appearance of D-lactate, the putative unique product of GSH-dependent glyoxylase action on pyruvaldehyde, suggests possible involvement of 3-carbon dicarbonyls.

Cell Line↗

Development of a high performance zinc-62/copper-62 radionuclide generator for positron emission tomography.

Clinical utilisation of positron emission tomography could be enhanced by the availability of short-lived radionuclides derived from generator systems. The zinc-62/copper-62 combination is one such system which could be used as a source for a number of copper-62 radiopharmaceuticals. We have developed and optimised a high activity (5.6 GBq, 150 mCi) zinc-62/copper-62 generator to provide 62Cu in a form that is suitable for direct labelling of pyruvaldehyde-bis-(N4-methylthiosemicarbazone)-copper(II), Cu(PTSM). The distribution coefficients of Zn(II) and Cu(II) between anion-exchange resin and various hydrochloric acid/organic solvent mixtures were measured. Based on these measurements a generator eluent of 0.3 M HCl/40% ethanol provided 62Cu in greater than 90% yield in a 3-ml volume. A very low 62Zn breakthrough of less than 3 x 10(-7)% was achieved. Copper-PTSM was successfully labelled with the no-carrier-added 62Cu eluent directly from the generator with 94% radiochemical yield.

Copper↗

Prebiotic formation of 'energy-rich' thioesters from glyceraldehyde and N-acetylcysteine.

The 'energy-rich' thioester, N-acetyl-S-lactoylcysteine, is formed from low concentrations of glyceraldehyde and N-acetylcysteine under anaerobic conditions at ambient temperature in aqueous solutions of sodium phosphate (pH 7.0). Reactions with 2 mM glyceraldehyde, 2 mM N-acetylcysteine, and 500 mM sodium phosphate (pH 7.0) convert about 3%/day of the glyceraldehyde to lactoyl thioester. The formation of lactoyl thioester in similar reactions with 500 mM imidazole hydrochloride (pH 7.0) is supported by the thiol-dependence of lactate formation, which is 3-fold greater in the presence of thiol (0.11%/day) than in the absence of thiol (0.04%/day). The formation of lactoyl thioester is thought to proceed by the phosphate (or imidazole)-catalyzed dehydration of glyceraldehyde to give pyruvaldehyde, which adds to the thiol to form a hemithioacetal that rearranges to the thioester. A limited amount of a second thioester, N-acetyl-S-glyceroyl-cycsteine, is also formed at the beginning of these reactions. The significance of these reactions to the origin of life is discussed.

Acetylcysteine↗

Alanine synthesis from glyceraldehyde and ammonium ion in aqueous solution.

Alanine is formed under anaerobic conditions from glyceraldehyde and ammonium ion in aqueous solutions of sodium phosphate (pH 7.0) or imidazole-imidazolium chloride (pH 7.0) at ambient temperature. In 500 mM imidazole (pH 7.0), alanine synthesis from 10 mM glyceraldehyde and 15 mM ammonium ion is roughly 6 times more rapid in the presence of 10 mM 3-mercaptopropionate (0.62% yield at 60 days) than in its absence (0.10% yield at 60 days). Likewise, the formation of alanine in 500 mM sodium phosphate (pH 7.0) from 5 mM glyceraldehyde and 10 mM ammonium ion is more rapid in the presence of 10 mM N-acetylcysteine than in its absence. In this reaction with N-acetylcysteine, the ratio of the yield of alanine to the yield of lactate is fairly constant. The yield of alanine is about 4.5% that of lactate. Alanine synthesis in the presence of thiol probably proceeds via alanyl thioester, which is produced by rearrangement of the imine of the hemithioacetal of pyruvaldehyde, a product of glyceraldehyde dehydration. The significance of this reaction for molecular evolution is discussed.

Acetylcysteine↗

Nonenzymatic formation of "energy-rich" lactoyl and glyceroyl thioesters from glyceraldehyde and a thiol.

The "energy-rich" thioester, N-acetyl-S-lactoylcysteine, is formed under anaerobic conditions from glyceraldehyde and N-acetylcysteine at ambient temperature in aqueous solutions of sodium phosphate (pH 7.0). The conversion of glyceraldehyde to lactoyl thioester occurs at a rate of about 0.4%/day in reactions with 10 mM glyceraldehyde, 10 mM thiol, and 500 mM sodium phosphate (pH 7.0). Thioester formation proceeds at an estimated efficiency of 76%, since a similar reaction with 12.5 mM thiol yields 50.7% lactate at 6 months from only 66.5% of the glyceraldehyde (or its isomer, dihydroxyacetone). The formation of lactoyl thioester most likely occurs by the phosphate-catalyzed dehydration of glyceraldehyde to give pyruvaldehyde, which combines with thiol to form a hemithioacetal that rearranges to the thioester. A second energy-rich thioester, N-acetyl-S-glyceroylcysteine, is also produced from glyceraldehyde when these reactions are carried out in the presence of oxygen and to a limited extent in the absence of oxygen. In the presence of oxygen the formation of glyceroyl thioester continues until the thiol disappears completely by oxidation. The significance of these reactions to the energetics of the origin of life is discussed.

Acetylcysteine↗

Clinical application of 62Zn/62Cu positron generator: perfusion and plasma pool images in normal subjects.

We have developed a new 62Zn/62Cu positron generator, and applied it for PET imaging of perfusion and plasma volume in 5 normal subjects. The generator makes it possible by a simple procedure to obtain 62Cu eluate and labeling compounds sufficiently every 40-60 minutes. 62Cu labeled pyruvaldehyde bis(N4-methylthiosemicarbazone) copper II (62Cu-PTSM) was employed for cerebral and myocardial perfusion imaging and 62Cu labeled human serum albumin-dithiosemicarbazone (62Cu-HSA-DTS) was used for plasma pool imaging. The images of cerebral blood flow, cerebral plasma volume and myocardial perfusion were excellent. In addition, the analysis of tissue activity and blood activity demonstrated the microspheric character of 62Cu-PTSM. Correction of arterial activity with the standard disappearance curve of 62Cu-PTSM suggested the possibility of quantifying blood flow. The results of this study indicate the capability of the 62Zn/62Cu generator for wide clinical use without an in-house cyclotron.

Adult↗

A comparison of PET imaging characteristics of various copper radioisotopes.

PURPOSE: PET radiotracers which incorporate longer-lived radionuclides enable biological processes to be studied over many hours, at centres remote from a cyclotron. This paper examines the radioisotope characteristics, imaging performance, radiation dosimetry and production modes of the four copper radioisotopes, ( 60)Cu,( 61)Cu,( 62)Cu and( 64)Cu, to assess their merits for different PET imaging applications. METHODS: Spatial resolution, sensitivity, scatter fraction and noise-equivalent count rate (NEC) are predicted for( 60)Cu,( 61)Cu,( 62)Cu and( 64)Cu using a model incorporating radionuclide decay properties and scanner parameters for the GE Advance scanner. Dosimetry for( 60)Cu,( 61)Cu and( 64)Cu is performed using the MIRD model and published biodistribution data for copper(II) pyruvaldehyde bis(N(4)-methyl)thiosemicarbazone (Cu-PTSM). RESULTS: (60)Cu and( 62)Cu are characterised by shorter half-lives and higher sensitivity and NEC, making them more suitable for studying the faster kinetics of small molecules, such as Cu-PTSM.( 61)Cu and( 64)Cu have longer half-lives, enabling studies of the slower kinetics of cells and peptides and prolonged imaging to compensate for lower sensitivity, together with better spatial resolution, which partially compensates for loss of image contrast.( 61)Cu-PTSM and( 64)Cu-PTSM are associated with radiation doses similar to [(18)F]-fluorodeoxyglucose, whilst the doses for( 60)Cu-PTSM and( 62)Cu-PTSM are lower and more comparable with H(2) (15)O. CONCLUSION: The physical and radiochemical characteristics of the four copper isotopes make each more suited to some imaging tasks than others. The results presented here assist in selecting the preferred radioisotope for a given imaging application, and illustrate a strategy which can be extended to the majority of novel PET tracers.

Computer Simulation↗

62Cu-PTSM and PET used for the assessment of angiotensin II-induced blood flow changes in patients with colorectal liver metastases.

The aim of this study was to establish a quantitative positron emission tomography (PET) method for investigating angiotensin II (AII)-induced changes in blood flow distribution in the liver. This was in order to evaluate the role of vascular manipulation applied to locoregional chemotherapy treatment in patients with colorectal liver metastases. The tracer selected was copper-62 (II) pyruvaldehyde bis-(N4-methyl)thiosemicarbazone (62Cu-PTSM), which exhibits high first-pass extraction and tissue retention following intra-arterial administration. The short half-life of the tracer and its availability from a 62Zn/62Cu generator enabled short-interval repeat PET scans on patients in a single imaging session. Distribution of tracer within the liver was imaged in a single view using a PET camera with rotating large-area detectors. By optimisation of the acquisition protocol, it was possible to acquire sufficient data to produce good-quality images and to quantify tracer uptake with an accuracy of <10%. Reproducibility of the imaging method was assessed in a single patient in whom three consecutive 62Cu-PTSM PET scans were obtained, and in whom no vascular manipulation was performed. Sets of scans (before, during and immediately after a 45-min AII infusion) were obtained in nine patients to assess blood flow changes associated with prolonged vascular manipulation. Significant individual responses, varying in both the magnitude and the duration of flow change, were observed in the majority of cases (7/11 lesions; 7/9 patients). These findings illustrate the potential of 62Cu-PTSM and PET for pharmacological studies. The wide range of individual patient responses to AII infusion suggests that PET blood flow assessment would be of value for selecting patients in whom this procedure may be effective.

Algorithms↗

Release of CuPTSM from human serum albumin after addition of fatty acids.

Copper-62 labeled pyruvaldehyde bis (N4-methyl-thiosemicarbazonato) copper(II), CuPTSM, has been used to probe tissue perfusion by means of positron emission tomography. Despite promising results from animals, problems have been encountered in the use of 62CuPTSM to quantitate regional myocardial blood flow in humans. Ultrafiltration and plasma/erythrocyte partitioning studies with radiotracer have previously shown that CuPTSM is bound much more strongly by human serum albumin (HSA) than by dog serum albumin (DSA), limiting its ability to freely diffuse from blood into tissue. In this study, it is confirmed by electron spin resonance (ESR) that CuPTSM strongly binds to HSA with an apparent gparallel value of 2.12 and an apparent Aparallel value of 186 G. It is also shown that both spin-labeled stearic acid (5-SASL) and nonspin-labeled stearate inhibit CuPTSM binding to HSA. CuPTSM is completely released from HSA when the ratio of 5-SASL to HSA is 5:1. When pure sodium stearate is used, the binding of CuPTSM significantly decreased, about 73% of CuPTSM is released with a ratio of 4:1 stearate to HSA. These results highlight a means of liberating CuPTSM from HSA.

Electron Spin Resonance Spectroscopy↗

The effects of glutathione depletion on the biodistribution of Cu(PTSM) in rats.

The tissue retention of radiocopper afforded by intravenous injection of the proposed blood flow imaging agent, 62Cu-labeled copper(II) pyruvaldehyde bis(N4-methylthiosemicarbazone) [Cu(PTSM)], is thought to result from reductive decomposition of the copper(II) complex by intracellular sulfhydryls (e.g. glutathione, GSH). To determine if the tissue uptake and retention of this tracer adequately measures perfusion in tissues containing altered GSH concentrations, the biodistribution of copper-67 labeled Cu(PTSM) was determined in GSH-depleted rats. Despite treatment to induce relatively large reductions in tissue GSH levels, it was found that only very small changes in the biodistribution of copper-labeled Cu(PTSM) occurred in the treated rats compared to untreated controls.

Animals↗

Subcellular distribution of tissue radiocopper following intravenous administration of 67Cu-labeled Cu-PTSM.

The subcellular distribution of radiocopper in the brain and liver of rats has been determined following i.v. administration of Cu-PTSM, pyruvaldehyde bis(N4-methylthiosemicarbazonato)copper(II), labeled with copper-67. Homogenized tissue samples were separated by differential centrifugation into four subcellular fractions: (I) cell membrane + nuclei; (II) mitochondria; (III) microsomes; and (IV) cell cytosol. Upon sacrifice at 10 min post-Cu-PTSM injection, brain fractions, I, II, III and IV contain 35 +/- 12, 11 +/- 3, 2.8 +/- 1.3 and 51 +/- 7% of brain activity, respectively (n = 4). In animals sacrificed 24 h post-injection the subcellular fractions of brain tissue show little change from the radiocopper distribution seen at 10 min post-injection, although the mitochondrial fraction may contain slightly more tracer and the cytosolic fraction slightly less (I, 40 +/- 10%; II, 18 +/- 5%; III, 3.4 +/- 1.5%; and IV, 38 +/- 5%; n = 5). Subcellular fractions I, II, III and IV of liver contain 25 +/- 5, 12 +/- 3, 17 +/- 4 and 46 +/- 6% of 67Cu tracer in animals sacrificed 10 min post-Cu-PTSM injection. An identical subcellular distribution of 67Cu, was found in the liver following i.v. administration of ionic radiocopper (as Cu-citrate). The liver and brain cytosolic fractions at 10 min post-injection were further separated by Sephadex column chromatography. In liver cytosol, three different radiocopper components with molecular weights of about 140,000, 41,000-46,000 and 10,000-16,000 Da were found. In the brain supernatant fraction, most of the radiocopper was bound to a single low molecular weight cytosolic component (14,000-16,000 Da).(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Application of the new zinc-62/copper-62 generator: an effective labeling method for 62Cu-PTSM.

A potential PET flow tracer, 62Cu-labeled pyruvaldehyde bis(N4-methylthiosemicarbazone) (62Cu-PTSM), was prepared using a new 62Zn/62Cu generator. With this 62Cu-labeling method based on a ligand exchange reaction, 62Cu-PTSM was quantitatively obtained by simple mixing of the generator eluate, 62Cu-glycine and PTSM solution for a few seconds. The glycine contained in the 62Cu-PTSM injectate had no significant effect in mouse biodistribution studies. The PET studies of 62Cu-PTSM showed brain images that were not visualized by 62Cu-labeled albumin (a plasma pool tracer), in the dog cranium.

Animals↗

Effect of regional angiotensin II infusion on the relationship between tumour blood flow and fluorouracil uptake in a liver metastasis animal model.

The aim of this study was to assess the relationship between tumour:liver blood flow and 5-fluorouracil (5-FU) uptake ratios in a hypovascular liver metastasis animal model, and examine whether they were similarly affected by a 5 min infusion of angiotension II via the hepatic artery. Tumour:liver blood flow ratio was measured using the isotope tracer 64Copper (II)-pyruvaldehyde bis(n-4 methyl thiosemicarbazone, and 5-FU was tritiated. There was a wide variation in tumour:liver blood flow and 5-FU uptake ratios which could only partly be explained by between animal variation, and was not related either to individual tumour size or overall tumour burden within the liver. There was a close correlation (r = 0.957, P < 0.0001) between tumour:liver blood flow and 5-FU uptake ratios. Angiotensin II infusion significantly increased tumour:liver blood flow (nested analysis of variance, P= 0.05) but not 5-FU uptake (P = 0.29) ratios. There was a poor correlation (r = 0.51, P = 0.13) between tumour:liver blood flow and 5-FU uptake ratios with angiotensin II infusion. Thus, despite an increased 5-FU blood concentration arising from angiotensin-induced reduction in blood flow at constant 5-FU infusion dose, tumour:liver 5-FU uptake ratio did not increase as expected, and there ceased to be a significant correlation between tumour:liver blood flow and 5-FU uptake ratios. We conclude that the vasoactive changes within the hypovascular tumour circulation produced by a 5 min angiotensin II infusion did not significantly increase tumour 5-FU uptake.

Analysis of Variance↗

Effects of ischemia-reperfusion injury on myocardial single pass extraction and retention of Cu-PTSM in perfused rat hearts: comparison with 201T1 and 14C-iodoantipyrine.

The effects of ischemia-reperfusion-induced myocardial damage on the single pass extraction and retention of 64Cu-pyruvaldehyde-di(N4-methylthiosemicabazone) (64Cu-PTSM) in perfused rat hearts were compared to these effects on that of 201T1 and 14C-iodoantipyrine. 201T1 and 14C-iodoantipyrine did not show significant changes, but in the case of 64Cu-PTSM, the single pass extraction and retention was reduced with reperfusion. These findings indicate that ischemia-reperfusion-induced myocardial damage decrease the generator-produced 62Cu-labeled 62Cu-PTSM extraction and retention, and that 62Cu-PTSM might have potential not only as a blood flow tracer but also as a functional tracer.

Animals↗

Hydrothermal upgrading of biomass to biofuel; studies on some monosaccharide model compounds.

During the hydrothermal upgrading of biomass, hydrolysis to glucose is an important step. To elucidate some of the reaction pathways that follow this initial hydrolysis, the hydrothermal treatment (340 degrees C, 27.5 MPa, 25-204 s) of dilute (50 mM) solutions of D-glucose and some other monosaccharides were studied. As a result of the increase of Kw under subcritical conditions, both acid and base catalysed reactions occur. The acid catalysed reactions are mainly dehydrations leading initially to 5-hydroxymethylfurfural. Important base catalysed reactions result in glycolaldehyde and glyceraldehyde. Further fragmentations and dehydrations lead to a variety of low molecular weight compounds such as formic acid, acetic acid, lactic acid, acrylic acid, 2-furaldehyde and 1,2,4-benzenetriol. Important pathways leading to a decrease of the O-content of the liquid reaction products start from the intermediate glyceraldehyde, which forms pyruvaldehyde, which in its turn is converted into formic acid and acetaldehyde. The latter compound can also be formed via isomerisation of glyceraldehyde into lactic acid followed by decarbonylation.

Acetaldehyde↗

Three-dimensional maximum a posteriori (MAP) imaging with radiopharmaceuticals labeled with three Cu radionuclides.

BACKGROUND: One of the limiting factors in achieving the best spatial resolution in positron emission tomography (PET), especially in small-animal PET, is the positron range associated with the decay of nuclides, and usual PET image reconstruction algorithms do not provide a correction for the positron range. This work presents initial results obtained with the maximum a posteriori (MAP) algorithm, which has been developed to include an accurate model of the camera response, the Poisson distribution of coincidence data and the fundamental physics of positron decay including the positron range. METHODS: Phantoms were imaged with three positron emitting isotopes of Cu ((60)Cu, (61)Cu and (64)Cu), and mice and rats were imaged with two radiopharmaceuticals labeled with these isotopes in a microPET-R4 camera. These isotopes decay by positron emission with very different end-point energies resulting in wildly different spatial resolutions. Spatial resolution improvement and image quality offered by the MAP algorithm were studied with the line source phantom and a miniature Derenzo phantom. In addition, three mice and three rats were sequentially injected over a 48-h period with Cu-pyruvaldehyde bis(N(4)-methylthiosemicarbazone) (for blood flow to organs) and Cu-1,4,7,10-tetraazacyclododecane-1,4,7-tri(methanephosphonic acid) (for bone imaging) labeled with the said three isotopes of Cu. RESULTS: The line source experiment showed that comparable spatial resolution is possible with all three isotopes when using the positron range correction in MAP. The in vivo images obtained from (60)Cu and (61)Cu and reconstructed with 2D filtered back projection algorithms provided by the camera manufacturer show reduced clarity due to degraded spatial resolution arising from the extended positron ranges as compared with (64)Cu. MAP reconstructions exhibited a higher resolution with clearer organ delineation. CONCLUSION: Inclusion of a positron range model in the MAP reconstruction algorithm may potentially result in significant resolution recovery for isotopes with larger positron ranges.

Algorithms↗

Assessment of myocardial perfusion by positron emission tomography.

Positron emission tomography (PET) represents an advanced imaging technology for the noninvasive evaluation of regional myocardial blood flow. Several blood flow tracers are available, including cyclotron-produced radiopharmaceuticals such as [15O]H2O and [13N]NH3 and generator-produced rubidium-82 ([82Rb]-) and copper-62 ([62Cu]-) pyruvaldehyde-bis-(N-4-methylthiosemicarbazone) (PTSM). 82Rb and [13N]NH3 are the most commonly employed tracers for the qualitative evaluation of regional myocardial perfusion. Their use allows the accurate detection of coronary artery disease in combination with pharmacologic stress. Initial comparative studies with thallium-201 (201Tl) single-photon emission computed tomography (SPECT) have shown that PET has a higher diagnostic accuracy. Beyond improved diagnostic performance, the quantitative flow measurements provided by PET represent an important advance in nuclear cardiology. The radiopharmaceuticals [15O]H2O and [13N]NH3 have been applied for the noninvasive determination of regional coronary reserve. Quantification of blood flow based on tracer kinetic modeling yields blood flow values in close agreement with determinations provided by invasive procedures. The noninvasive quantification of blood flow provides a useful research and clinical tool for the objective assessment of therapeutic interventions as well as pathophysiologic alterations of regional myocardial blood flow in various cardiac diseases.

Coronary Circulation↗