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[Synthesis and investigation of protonation properties and lipophilicity of some new quinazolone-3-carboxylic acid derivatives].

Several new quinazolone-carboxylic acid derivatives as potential NMDA and AMPA receptor antagonists have been synthesized, and the protonation properties and lipophilicity of some representative molecules have also been studied. The protonation macroconstants (logK) of 4(3H)-quinazolone (Q0) and two 2-methyl-4-oxo-3H-quinazoline-3-carboxylic acids (Q1, Q2) were determined by pH-potentiometry. The acid-base chemistry of Q1 and Q2, where protein-bindings take place in an overlapping fashion, was described in terms of protonation microconstants (logk) as well. Microspeciation was carried out by UV-pH titration and deductive method. Microspeciation revealed remarkable differences between the two homologue compounds (Q1 and Q2), namely insertion of a second methylene moiety into the aliphatic acid side-chain reversed the predominantly zwitterion-involved protonation pathway into neutral form-involved one. Lipophilicity of our molecules was described by the octanol-water partition coefficients. The apparent partition coefficients of Q1 and Q2 were determined by shake-flask method and converted into true logP values using the protonation microconstants. The unexpected differences between their true logP values were explained, similarly to the different protonation pathways with conformational preferences and formation of intramolecular interactions. Out of the other 15 monoprotic quinazolone compounds the lipophilicity of 10 molecules (Q8-Q17, experimental set) was determined by RP-TLC method with the help of a calibration set consisting of 12 standard molecules, five quinazolones (Q3-Q7, determined by shake-flask method) and seven pyrido[1,2a]pyrimidines (PP1-PP7). The obtained logP values proved mostly the expected structure-property relationships. These physico-chemical investigations are pieces of predictive information for the pharmacokinetics of our compounds. These are also discussed in the paper.

Carboxylic Acids↗

Proton magnetic relaxation studies of the interaction of D-xylose and xylitol with D-xylose isomerase. Characterization of metal-enzyme-substrate interactions.

The interaction of D-xylose isomerase purified from two sources with Mn2+ and D-xylose or the competitive inhibitor xylitol has been examined by nuclear magnetic resonance. A greater paramagnetic effect of enzyme-bound Mn2+ on the alpha anomer of D-xylose than on the beta anomer was observed, providing independent evidence for the specificity of D-xylose isomerase for the alpha anomeric form of D-xylose. The exchange rate of alpha-D-xylose into the ternary complex, determined from the normalized paramagnetic contribution to the transverse relaxation rate (1/fT2p) of the carbon 1 proton of alpha-D-xylose, exceeds Vmax for the enzymatic reaction by 3 orders of magnitude. The amount of xylitol necessary to displace alpha-D-xylose from the substrate-enzyme-Mn2+ complex is consistent with the Km value for alpha-D-xylose and the inhibitor constant Ki for xylitol previously determined by the methods of enzyme kinetics. These results suggest that the NMR experiments observe complexes of D-xylose isomerase which are kinetically and thermodynamically competent to participate in catalysis. From the frequency dependence of the paramagnetic contribution to the longitudinal relaxation rate (1/T1p) of the carbon 1 proton of alpha-D-xylose, the correlation time (tauc) which modulates the dipolar interaction between enzyme-bound Mn2+ and alpha-D-xylose has been determined (5.1 x 1o(-10) s). From these observations a range of calculated distances between enzyme-bound Mn2+ and the carbon 1 proton of alpha-D-xylose (9.1 +/- 0.7 A) has been found. The enzyme-bound Mn2+ has comparable effects on the carbon 1, carbon 2, and carbon 5 protons of alpha-D-xylose, suggesting that these protons of the enzyme-bound substrate are equidistant from the bound Mn2+. A similar distance (9.4 +/- 0.7 A) between the enzyme-bound Mn2+ and the terminal methylene protons of xylitol, an analog of the open chain intermediate in the reaction, has been determined. The results of the present substrate relaxation and previous water relaxation studies suggest that two small ligands such as water molecules or a large portion of the protein intervene between the bound metal ion and the bound substrate in the active ternary complex.

Binding Sites↗

[Infrared absorption spectroscopy of optical waveguide in proton-exchanged LiNbO3].

Z-cut proton-exchanged LiNbO3 optical waveguides exchanged with different proton sources mixed with adipic acid and benzoic acid in different mol ratios were analyzed by infrared absorption spectroscopy. The result shows that there is an absorption peak of OH- free group at 3500 cm(-1) with the characteristic of substitute protons, and the absorption peak of H-bond is nearby 700 cm(-1) with the characteristic of packing protons. The different mixing ratios and different concentrations of H+ in the proton source, result in different proton-exchanged velocities and bring on the change in these absorption peaks. It is very important to study the change in these absorption peaks for making high quality LiNbO3 optical waveguide.

English Abstract↗

Sodium dependence of sodium-proton exchange in platelets from patients with essential hypertension.

The sodium dependence of recovery of cytoplasmic pH (pHi) after an acid load was studied in platelets from 15 patients with untreated essential hypertension (mean arterial pressure 117 +/- 2.3 mmHg, mean +/- SE) and in 15 normotensive controls (mean arterial pressure 90 +/- 2.2 mmHg). Proton flux was measured in gel-filtered platelets loaded with pH sensitive fluorescent indicator. Sodium dependent proton efflux was prevented by 5 (N,N hexamethylene) amiloride, a potent inhibitor of sodium-proton exchange. The relationship between initial rate of proton efflux and extracellular sodium concentration obeyed Michaelis-Menten kinetics. The maximum initial rate of proton efflux was similar in hypertensive and normotensive subjects (1.93 +/- 0.35 mmol H+1/sec, mean +/- SE, and 1.88 +/- 0.26 mmol H+l/sec respectively). The Michaelis-Menten constant (the sodium concentration at which the initial rate of proton efflux is half maximal) was also similar in the two groups: 75.7 +/- 13.9 mmol/l and 8.15 +/- 10.6 mmol/l respectively. There was no significant correlation between either of these parameters and arterial blood pressure.

Adult↗

[Activity of the sodium-proton exchanger and polymorphism of G-protein beta-3 subunit in patients with essential hypertension].

The aim of the study was to verify the hypothesis that C825T polymorphism of G-protein beta3 subunit is involved in the development of the intermediate phenotype (increased sodium-proton exchanger activity). If true, increased sodium-proton exchange in the proximal tubule would enhance total sodium load and volemia (volumetric component of blood pressure). On the other hand, direct activation of the sodium-proton exchanger in vascular smooth muscle cells would augment vascular tone and eventually lead to hypertrophy of the vascular media and increased resistance (resistance component of blood pressure). Salt sensitivity was confirmed in 54% of patients with hypertension and 26% of controls. Significantly higher activity of erythrocyte and platelet NHE was found in patients with hypertension as compared to controls. The activity of erythrocyte NHE was within normal limits in 59% of patients with hypertension and was increased in the remaining 41%. The activity of platelet NHE was normal in 50% of patients with hypertension and was increased in the remaining 50%. No differences were found in the activities of erythrocyte and thrombocyte NHE between salt-sensitive and salt-resistant patients in the hypertension and control groups. Significantly higher activities of erythrocyte NHE were observed in salt-sensitive patients as compared to salt-sensitive controls. Significantly higher activities of erythrocyte and platelet NHE were found in salt-resistant patients as compared to salt-resistant controls. No relationship was found between GNB3 C825T genotypes and salt sensitivity. The frequency of CT+TT genotypes was significantly lower in controls as compared to patients with hypertension. A significantly higher frequency of the T allele was also observed in patients with hypertension as compared to controls. No influence of GNB3 genotypes or T allele on the activity of erythrocyte and platelet NHE, birth weight, BMI, plasma renin activity, aldosterone level, plasma lipid profile, urine and electrolyte excretion was found in patients with hypertension and in controls. The following conclusions were drawn: (1) Increased activity of the sodium-proton exchanger in erythrocytes and thrombocytes was associated with essential hypertension. (2) Activity of the sodium-proton exchanger in erythrocytes and thrombocytes was not a marker of salt-sensitive hypertension in patients on a normal sodium diet. (3) CT+TT genotypes of protein G beta3 subunit C825T polymorphism were more frequent in patients with hypertension but were not associated with increased activity of the sodium-proton exchanger in erythrocytes and thrombocytes. 4. CT+TT genotypes of protein G beta3 subunit C825T polymorphism were not associated with salt sensitivity in hypertensive patients.

Blood Pressure↗

Identification and characterization of ATP-dependent proton transport by rat liver multivesicular bodies.

Multivesicular bodies (MVB), prelysosomal organelles in the endocytic pathway, were prepared from estrogen-treated rat livers and examined for the presence of ATP-dependent proton transport. Vesicle acidification, assessed by acridine orange fluorescence quenching, was ATP dependent (ATP much greater than GTP, UTP), was enriched 25-fold over homogenate, was abolished by pretreatment with protonophores or a nonionic detergent, exhibited a pH optimum of 7.5, was inhibited by N-ethylmaleimide (NEM) (IC50 approximately 5 microM) and N,N'-dicyclohexylcarbodiimide (IC50 approximately 5 microM), and was resistant to inhibition by vanadate, ouabain, and oligomycin. Acidification exhibited no specific cation requirement; however, maximal rates of acidification depended upon the presence of Cl- (Km approximately 20 mM). Other anions were less effective in supporting acidification (Cl- greater than Br- greater than much greater than gluconate, NO-3, SO2-4, and mannitol), and indeed NO-3 inhibited acidification even in the presence of 150 mM Cl-. The proton transport mechanism appeared to be electrogenic based on: (a) enhancement of acidification by valinomycin in the presence of K gluconate, and (b) ATP-dependent fluorescence quenching of bis(3-phenyl-5-oxoisoxasol-4-yl)pentamethine oxonol, a membrane potential-sensitive anionic dye. Furthermore, the magnitude of the pH and electrical gradients generated by the proton transport mechanism appeared to vary inversely in the presence and absence of Cl-. Finally, MVB exhibited ATPase activity that was resistant to ouabain and oligomycin, but was inhibited 32.3% by 1 mM NEM, 33.7% by 200 microM dicyclohexylcarbodiimide, and 18.7% by KNO3. In isolated MVB, therefore, the NEM-sensitive ATPase activity may represent the enzymatic equivalent of a proton pump. These studies identify and characterize an ATP-dependent electrogenic proton transport process in rat liver MVB which shares many of the properties of the proton pump described in clathrin-coated vesicles, endosomes, lysosomes, Golgi, and endoplasmic reticulum from liver and other tissues. Acidification of MVB differed somewhat from that of rat liver clathrin-coated vesicles in response to Br- and NO-3, suggesting that membrane properties of these two organelles might differ.

Acridine Orange↗

Asynchronous ligand binding and proton release in a root effect hemoglobin.

CO binding to the Root effect hemoglobin of menhaden, Brevoortia tyrannus, has been studied by flash photolysis and equilibrium measurements in [bis(2-hydroxyethyl)amino]Tris(hydroxymethyl)methane and Tris buffers, containing 0.2 M NaCl, between pH 6.0 and 8.0. The equilibrium and kinetic data were analyzed according to the two-state model, extended to include chain differences. The calculated value of the allosteric constant, L, varied from 3 X 10(6) at pH 6.0 to 20 at pH 8.0, lower at each pH value than that computed for phosphate buffer. In addition, the intrinsic rate constants of both T and R states were found to vary with pH. The kinetics of CO binding and of proton release, followed by absorbance changes in the pH indicator dye phenol red, were observed in 0.2 M NaCl, at pH values ranging from 6.3 to 7.8. Proton release lags behind CO binding across this pH range, the larger lags occurring at lower pH; this suggests that some proton release is associated with quaternary conformational change. The CO binding progress curves in unbuffered solution were simulated by the two-state model; in these calculations the value of L was systematically changed during the course of the reaction. The time courses of reaction intermediates, obtained from these computations, were then used to represent the kinetics of proton release. A simple model, assuming that proton release accompanies quaternary conformational transition but a modified model, incorporating pH dependence of the intrinsic T and R state affinities, describes proton release across the pH range studied.

Animals↗

Proton MR spectroscopy of squamous cell carcinoma of the extracranial head and neck: in vitro and in vivo studies.

PURPOSE: To determine the ability of in vitro one-dimensional and two-dimensional proton MR spectroscopy to help differentiate squamous cell carcinoma of the extracranial head and neck from normal tissues and to correlate the in vitro observations with clinical studies. METHODS: In vitro 1-D and 2-D correlated proton MR spectroscopy (11 T) was performed in tissue specimens of squamous cell carcinoma of the head and neck (n = 19), in normal tissue (n = 13), in metastatic cervical lymph nodes (n = 3), and in a squamous cell carcinoma cell line. In vivo 1-D proton MR spectroscopy (1.5 T) was performed in patients with squamous cell carcinoma (n = 7) and in healthy volunteers (n = 7). The ratio of the areas under the choline (Cho) and creatine (Cr) resonances were calculated for 1-D proton MR spectra for the in vitro tissue studies and correlated with the in vivo studies. Data from in vitro 2-D correlated spectroscopy were analyzed for differences in the presence or absence of various metabolites in samples of tumor and normal tissue. Statistical analysis consisted of 2 x 2 factorial repeated measures analysis of variance (ANOVA), discriminate analysis, and chi2 test. RESULTS: The mean in vitro 1-D proton MR spectroscopic Cho/Cr ratio was significantly higher in tumor than in normal tissue. The difference between the mean ratios appeared to increase with increasing echo time. All in vivo tumor Cho/Cr ratios were greater than the calculated mean in vitro tumor ratio, whereas six of the seven volunteers had no detectable Cho and Cr resonances. Two-dimensional correlated MR spectroscopic data revealed that a variety of amino acids have a significantly greater likelihood of being detected in tumor than in normal tissues. CONCLUSIONS: One-dimensional and 2-D proton MR spectroscopy can help differentiate primary squamous cell carcinoma and nodal metastases containing squamous cell carcinoma from normal tissue both in vitro and in vivo. In addition, 2-D spectroscopy can help identify the presence of certain amino acids in squamous cell carcinoma that are not detected in normal tissue.

Carcinoma, Squamous Cell↗

Evidence from 13C NMR for protonation of carbamyl-P and N-(phosphonacetyl)-L-aspartate in the active site of aspartate transcarbamylase.

Nuclear magnetic resonance has been used to study the binding of [13C]carbamyl-P (90% enriched) to the catalytic subunit of Escherichia coli aspartate transcarbamylase. Upon forming a binary complex, there is a small change in the chemical shift of the carbonyl carbon resonance, 2 Hz upfield at pH 7.0, indicating that the environments of the carbonyl group in the active site and in water are similar. When succinate, an analog of L-aspartate, is added to form a ternary complex, there is a large downfield change in the chemical shift for carbamyl-P, consistent with interaction between the carbonyl group and a proton donor of the enzyme. The change might also be caused by a ring current froma nearby aromatic amino acid residue. From the pH dependence of this downfield change and from the effects of L-aspartate analogs other than succinate, the form of the enzyme involved is proposed to be an isomerized ternary complex, previously observed in temperature jump and proton NMR studies. The downfield change to chemical shift for carbamyl-P bound to the isomerized complex is 17.7 +/- 1.0 Hz. Using this value, the relative ability of other four-carbon dicarboxylic acids to form isomerized ternary complexes with the enzyme and carbamyl-P has been evaluated quantitatively. The 13C peak for the transition state analog N-(phosphonacetyl)-L-aspartate (PALA), 90% enriched specifically at the amide carbonyl group, is shifted 20 Hz downfield of the peak for free PALA upon binding to the catalytic subunit at pH 7.0. In contrast, the peak for [1-13C] phosphonaceatmide shifts upfield by about 6 Hz upon binding. Since PALA induces isomerization of the enzyme and phosphonacetamide does not, these data provide further evidence consistent with protonation of the carbonyl group only upon isomerization. The degrees of protonation is strong acids of the carbonyl groups of PALA, phosphonacetamide and urethan (a model for the labile carbamyl-P) have been determined, as have the chemical shifts for these compounds upon full protonation. From these data it is calculated that the amide carbonyl groups of carbamyl-P and PALA might be protonated to a maximum of about 20% in the isomerized complexes at pH 7.0. The change in conformation of the enzyme-carbamyl-P complex upon binding L-aspartate, previously proposed to aid catalysis by compressing the two substrates together in the active site, may be accompanied by polarization of the C=O bond, making this ordinarily unreactive group a much better electrophile. A keto analog of PALA, 4,5-dicarboxy-2-ketopentyl phosphonate, also binds tightly to the catalytic subunit and induces a very similar conformational change, whereas an alcohol analog, 4,5-dicarboxy-2-hydroxypentyl phosphonate, does not bind tightly, indicating the critical importance of an unhindered carbonyl group with trigonal geometry.

Aspartic Acid↗

The barrier for proton transport in aquaporins as a challenge for electrostatic models: the role of protein relaxation in mutational calculations.

The origin of the barrier for proton transport through the aquaporin channel is a problem of general interest. It is becoming increasingly clear that this barrier is not attributable to the orientation of the water molecules across the channel but rather to the electrostatic penalty for moving the proton charge to the center of the channel. However, the reason for the high electrostatic barrier is still rather controversial. It has been argued by some workers that the barrier is due to the so-called NPA motif and/or to the helix macrodipole or to other specific elements. However, our works indicated that the main reason for the high barrier is the loss of the generalized solvation upon moving the proton charge from the bulk to the center of the channel and that this does not reflect a specific repulsive electrostatic interaction but the absence of sufficient electrostatic stabilization. At this stage it seems that the elucidation and clarification of the origin of the electrostatic barrier can serve as an instructive test case for electrostatic models. Thus, we reexamine the free-energy surface for proton transport in aquaporins using the microscopic free-energy perturbation/umbrella sampling (FEP/US) and the empirical valence bond/umbrella sampling (EVB/US) methods as well as the semimacroscopic protein dipole Langevin dipole model in its linear response approximation version (the PDLD/S-LRA). These extensive studies help to clarify the nature of the barrier and to establish the "reduced solvation effect" as the primary source of this barrier. That is, it is found that the barrier is associated with the loss of the generalized solvation energy (which includes of course all electrostatic effects) upon moving the proton charge from the bulk solvent to the center of the channel. It is also demonstrated that the residues in the NPA region and the helix dipole cannot be considered as the main reasons for the electrostatic barrier. Furthermore, our microscopic and semimacroscopic studies clarify the problems with incomplete alternative calculations, illustrating that the effects of various electrostatic elements are drastically overestimated by macroscopic calculations that use a low dielectric constant and do not consider the protein reorganization. Similarly, it is pointed out that microscopic potential of mean force calculations that do not evaluate the electrostatic barrier relative to the bulk water cannot be used to establish the origin of the electrostatic barrier. The relationship between the present study and calculations of pK(a)s in protein interiors is clarified, pointing out that approaches that are applied to study the aquaporin barrier should be validated by pK(a)s calculations. Such calculations also help to clarify the crucial role of solvation energies in establishing the barrier in aquaporins.

Aquaporins↗

Hymenolepis diminuta: catalysis of transmembrane proton translocation by mitochondrial NADPH-->NAD transhydrogenase.

The mitochondrial, inner-membrane-associated, reversible NADPH-->NAD transhydrogenase of adult Hymenolepis diminuta physiologically couples matrix-localized, NADP-specific "malic" enzyme with NADH-dependent anaerobic electron transport. Employing submitochondrial particles (SMP) as the source of enzyme activity and both spectrophotometric and fluorometric assessments, the present study made evident that in its catalysis of transhydrogenation between NADPH and NAD, the cestode enzyme engages in the concomitant transmembrane translocation of protons. As assessed spectrophotometrically, the catalysis of NADPH-dependent NAD reduction by H. diminuta SMP was stimulated significantly by carbonyl cyanide 3-chlorophenylhydrazone (CCCP), carbonyl cyanide 4-(trifluoromethoxy) phenylhydrazone (FCCP), as well as by the protonophoric anthelmintic, niclosamide. In addition, N,N'-dicyclohexylcarbodiimide (DCCD) markedly diminished SMP-catalyzed hydride ion transfer between NADPH and NAD. The catalysis by SMP of concomitant, transhydrogenase-mediated proton translocation was evaluated more directly via fluorometric assays using 8-anilino-1-napthalenesulfonic acid (ANS) as the probe. These latter evaluations revealed a transhydrogenase-dependent enhancement of ANS fluorescence in accord with an intravesicular accumulation of protons. ANS fluorescence was quenched rapidly when the assay system was supplemented with CCCP, FCCP, or niclosamide. Consistent with the helminth transhydrogenase acting as a proton pump, transhydrogenase-mediated enhanced fluorescence also was inhibited by DCCD. Considered collectively, these data indicated, apparently for the first time for any invertebrate system, that the transhydrogenase, in catalyzing the NADPH-->NAD reaction, acts in the translocation of protons from the matrix to the intermembrane space mitochondrial compartment.

Anilino Naphthalenesulfonates↗

Proton therapy for head and neck malignancies at Tsukuba.

PURPOSE: To evaluate the effectiveness and feasibility of proton therapy for head and neck cancers. PATIENTS AND METHODS: From 1983 to 2000, 33 patients with head and neck malignancies but no history of surgical resection were treated with 250-MeV protons with or without X-ray irradiation. This study retrospectively evaluated local control, survival, and treatment sequelae of these patients. The median total target dose using protons with or without X-rays was 76 Gy (range: 42-99 Gy) and the median proton dose per fraction 2.8 Gy (range: 1.5-6.0 Gy). RESULTS: Overall 5-year survival and local control rates were 44% and 74%, respectively. One (3%) and six patients (18%) suffered from treatment-related acute and late toxicity > grade 3 (RTOG/EORTC acute and late radiation morbidity scoring criteria). One patient with a history of radiotherapy suffered from acute toxicity > grade 3. CONCLUSION: Proton therapy appeared to offer high local control rates with few toxicities relative to conventional radiotherapy. However, late toxicity was seen in areas where large radiation doses had been given.

Adult↗

Proton or stereotactic photon irradiation for posterior uveal melanoma? A planning intercomparison.

BACKGROUND AND PURPOSE: Proton and stereotactic radiotherapy with photons (SRT) are both used to treat choroidal melanomas in proximity to optic disk and fovea centralis, a situation where plaque therapy is prone to complications. A comparative treatment- planning study was done to assess the capability of both modalities to preserve vision. PATIENTS AND METHODS: In ten patients treated with 68-MeV protons, SRT with 6-MV photons was planned. Structures most important for visual acuity (fovea and optic disk, optic nerve) were contoured identically for both therapies. Safety margins of 1.5 mm for proton therapy were reduced to 1.0 mm for SRT. RESULTS: Proton-beam therapy was superior in eight of ten situations, and this result did not differ significantly by changes in the weighting of the different parameters analyzed. CONCLUSION: When dose deposition to those structures most important for the preservation of vision is taken into account, under the conditions examined proton therapy offers an advantage in the majority of the patients evaluated.

Eye Injuries↗

Proton pumping kinetics and origin of nitrate inhibition of tonoplast-type H+-ATPase.

A tonoplast-type vesicle preparation, substantially free from other subcellular membranes, was obtained from corn roots by equilibrium sucrose density gradient centrifugation. At pH 6.5 and in the presence of chloride ions, the tonoplast-type ATPase activity as measured by Pi release, was inhibited by nitrate ions. The ATPase activity was insensitive to molybdate and vanadate, indicating a minimum nonspecific phosphatase and plasma membrane contamination. The vesicles exhibited an ATP hydrolysis-supported proton uptake which was measured by the absorption change of acridine orange. The ATP hydrolysis supported uptake and the subsequent perturbant-induced release of protons (decay) was described by a kinetic model which was previously developed to evaluate the coupling between proton pumping and the primary energy yielding process for other biomembranes. The proton pumping activity was more sensitive to nitrate ions then was ATP hydrolysis. The differential effect and the kinetic analysis of nitrate inhibition led us to suggest that (i) the coupling between Pi release and proton pumping was indirect in nature and (ii) the primary inhibitory effect of nitrate ion was originated from an interaction with a protogenic protein domain which is functionally linked to the ATPase in the tonoplast-type membrane.

Carbonyl Cyanide p-Trifluoromethoxyphenylhydrazone↗

Internal anion binding site and membrane potential dominate the regulation of proton pumping by the chromaffin granule ATPase.

Effects of anions and membrane potential on the reconstituted proton pump from chromaffin granules were investigated. When acetate was present inside of the vesicles, ATP-dependent proton uptake was absolutely dependent on external chloride. Without external chloride, however, substantial proton uptake was observed when chloride or sulfate was present inside of the vesicles. Inside negative membrane potential drove ATP-dependent proton uptake regardless of the anion species present inside or outside of the vesicles. It is concluded that the internal anion binding site and membrane potential regulate the proton pumping activity of the ATPase.

Acetates↗

Reconstitution of bacteriorhodopsin and ATP synthase from Micrococcus luteus into liposomes of the purified main tetraether lipid from Thermoplasma acidophilum: proton conductance and light-driven ATP synthesis.

The archaebacterium Thermoplasma acidophilum is cultivated at 59 degrees C in a medium containing sulfuric acid of pH 2. The purified bipolar membrane spanning main phospholipid (MPL) of this organism can be used to produce stable liposomes of 100-500 nm in diameter either using a French pressure cell detergent dialysis or sonication. Despite a potassium diffusion potential of 186 mV very low ionic permeability of sonicated MPL liposomes was measured using the potassium binding fluorescent indicator benzofuran isophthalate PBF1, which measures net K+ uptake. The latter also remained very low, in the presence of the K(+) ionophore valinomycin and palmitic acid. Addition of valinomycin and the potent uncoupler carbonylcyanid-p-trifluormehoxyphenyl-hydrazone (FCCP), led to a stimulation in potassium uptake. The rate of proton flux can be calculated from the net K(+) uptake. Under these conditions MPL liposomes are 1-2 orders of magnitude less permeable than egg yolk lecithin vesicles. The difference in proton permeability becomes even more pronounced with increasing temperature, examined using the fluorescent pH indicator pyranine. Purified bacteriorhodopsin from Halobacterium halobium was reconstituted into MPL liposomes in order to study the light-driven proton uptake in 150 mM KCl following addition of valinomycin, gramicidin, FCCP and Triton X-100. The light-driven proton transport into the liposomes was increased 30-fold by addition of valinomycin decreased by gramicidin and FCCP, and abolished by Triton X-100. Co-reconstituted MPL proteoliposomes containing bacteriorhodopsin and ATP synthase from Micrococcus luteus were capable of light-driven ATP synthesis demonstrating the functional coupling of proton transport and nucleotide generation in liposomal MPL membranes.

Adenosine Triphosphate↗

ATP synthase: activating versus catalytic proton transfer.

ATP synthase (F-ATPase) of chloroplasts, CF0CF1, is both activated and driven by transmembrane protonmotive force. We dichotomized between activating and driving proton transfer by specific inhibitors, tentoxin and venturicidin. Thylakoids membranes were submitted to voltage steps (by flashing light) superimposed to a steady pH-difference. Transient proton intake, transfer and release by CF0CF1 was monitored by spectroscopic probes. Both activities, activation and catalysis, required all three partial reactions of the proton, however, activating proton transfer rose first (monophasically, tau 1/2 approximately 15 ms) followed by another phase of equal magnitude with a time lag of about 15 ms. Both types of consecutive proton transfer reactions contribute free energy for ATP synthesis.

Catalysis↗

A new, effective, and safe therapeutic option using proton irradiation for hepatocellular carcinoma.

BACKGROUND/AIMS: Conventional radiation is almost useless for hepatocellular carcinoma (HCC) because of the severe adverse effects of the irradiation to the accompanying liver cirrhosis. In contrast, the proton beam has Bragg peak, which limits distribution of the beam. The aim of this study was to prove the usefulness of proton irradiation for HCC. METHODS: The proton irradiation was performed in 32 nodular lesions in 24 patients with HCC who had unresectable tumors or serious complications; the proton irradiation was performed either as monotherapy (15 lesions) or as combination therapy to insufficient Lipiodol-targeted chemotherapy (Kodama Co. Ltd., Tokyo, Japan) (17 lesions). The energy was 250 MeV, and 50-87 Gy (76.5 +/- 9.5, mean +/- SD) in total was irradiated for a time period of 17-69 days. RESULTS: After 1 year, size reduction was seen in 12 out of 13 lesions (92%) in the monotherapy group and 9 out of 9 lesions (100%) in the combination therapy group; after 2 years, size reduction was seen 4 out of 5 lesions (80%) in the monotherapy group and 5 out of 5 lesions (100%) in the combination therapy group. Local tumor control has being assured for 2 years of the observation, which is continuing for another 2 years. None of the patients have experienced any serious adverse effects. CONCLUSIONS: These results show that proton irradiation is a new, safe, and effective therapeutic option in cases of HCC, even in patients with unresectable tumors or those with serious complications.

Aged↗