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Effect of chloride ion on the oxygen affinity of hemoglobin York (alpha 2 beta 2(146)Pro) and S-York hybrid hemoglobin (alpha 2 beta S beta York). Role of the beta 82 lysyl and beta 146 histydyl residues in chloride binding to hemoglobin.

We estimated the relative role of various chloride binding sites in determining the oxygen affinity of hemoglobin using abnormal hemoglobins such as Hb York (Hb Y) (alpha 2 beta 2(146)Pro), Hb Malmö (Hb M) (alpha 2 beta 2(97)Gln), and Hb S and chemically modified hemoglobins such as cross-linked Hb S, Hb Y, and asymmetrical SY hemoglobin with bis(3,5-dibromosalicyl)fumarate. The chloride effect on the p50 values of Hb S and Hb M was identical to that of Hb A. In contrast, the effect of chloride on the p50 values of Hb Y was only 20% of that of Hb A. Cross-linking between the two beta 82 lysyl residues with fumarate decreased the chloride effect by 40%. The effect of chloride on cross-linked Hb Y, in which both beta 82 lysyl and beta 146 histidyl residues were modified, was unchanged from that on Hb Y (20% of Hb A). The effect of chloride on the p50 value of SY asymmetrical hybrid hemoglobin was 40% of that of Hb A or Hb S, which is midway between the values obtained for cross-linked Hb S and Hb Y. From these results, the contribution of beta 146 His and beta 82 Lys on oxygen affinity by binding of chloride was calculated to be 40% each; the remaining 20% chloride effect was attributed to alpha 1 Val.

Chlorides↗

[Biochemical changes in vinyl chloride poisoning. I. Effect of different conditions of vinyl chloride exposure on lipid metabolism in rats].

Lipids metabolism was evaluated in rats chronically exposed to vinyl chloride concentrations of 50, 500 and 20 000 ppm. The studies involved: 1) estimation of lipids content in serum; 2) estimation of cholesterol and triglycerides content in some tissues (liver, muscles, connective tissue, aortic wall), 3) evaluation of the rate of incorporating 14C-acetate into 14C-cholesterol in liver and the rate of its transition into blood. The studies were carried out after 1, 3, 6 and 10 months of vinyl chloride exposure. The results prove that under effects of vinyl chloride exposure some tendencies of an increase in the total and esterified cholesterol in serum vary with the magnitude of exposure (vinyl chloride airborne concentration, intoxication time). As to triglycerides and phospholipids at the final phase of intoxication (after 10 months) a significant increase in their serum content is found at the 20 000 ppm. concentration, whereas there are no changes in the free fatty acids level. As to the examined tissue only in liver some tendencies are found of a decrease in cholesterol content and much greater decrease in triglycerides level, which is progressing with intoxication time and exposure magnitude. No effect of vinyl chloride on the level of lipids in muscles, aortic wall and connective tissue were found. Studies of cholesterol synthesis in liver showed some increase in the rate of building 14C-acetate into cholesterol only in two highest vinyl chloride concentrations (500 and 20 000 ppm) after 10 months of exposure. The results demonstrate that chronic vinyl chloride exposure only slightly affects lipid metabolism. The most significant changes occur only after 10 months of exposure at the concentration of 20 000 ppm. It is supposed that the disturbances in lipid metabolism have no important contribution to vinyl chloride poisonings pathology.

Animals↗

The yeast Saccharomyces cerevisiae does not sequester chloride but can express a functional mammalian chloride channel.

Chloride uptake into yeast was measured as a function of pH. A small amount of uptake was seen at pH values of 3.0 and 4.0; at pH 6.0 chloride uptake was substantially less than the uptake of phosphate and rubidium. Because chloride uptake is inefficient, we expressed the putative mammalian chloride channel, pI(Cln), in yeast and observed a chloride-selective current when total membrane protein was reconstituted into lipid bilayers. The current was inhibited by a specific chloride channel blocker, 5-nitro-2-(3-phenylpropylamino)-benzoic acid. These results suggest that yeast may serve as a means to characterize chloride channels from other organisms.

Chloride Channels↗

Evidence for apical chloride channels in rabbit mandibular salivary glands. A chloride-selective microelectrode study.

Double-barrelled, chloride-selective microelectrodes were used to study mandibular gland acinar cells at rest and during cholinergic stimulation. At rest, intracellular chloride activity was five times the expected equilibrium activity. During sustained stimulation with acetylcholine, chloride activity fell to three times the expected equilibrium activity. Thus, the gradient for chloride exit was reduced in the stimulated cell. These results lead to the conclusion that stimulation increases the permeability of the acinar cell to chloride. Experiments in which extracellular chloride was removed provided evidence that the permeability increase was due to opening of chloride channels located principally in the apical membrane of the acinar cell.

Acetylcholine↗

Hydrolytic stability of terephthaloyl chloride and isophthaloyl chloride.

The phthaloyl chloride isomers, terephthaloyl chloride (TCl) and isophthaloyl chloride (ICl), are high production volume chemicals used in polymers to impartflame resistance, chemical resistance, and temperature stability and as water scavengers. In these studies, we determined the hydrolytic stability of TCl and ICl and their hydrolysis products in aqueous solutions. Hydrolysis rates for TCl and ICl were initially determined by gas chromatography/flame ionization detection in water buffered at pH 4.0, 7.0, and 9.0 and 0 degrees C for up to 30 min. Subsequent studies determined the products from TCl and ICl hydrolysis. The parent phthaloyl chlorides (TCl and ICl), their intermediate hydrolysis products (designated as the "half-acids"), and their stable hydrolysis products (terephthalic acid (TPA) and isophthalic acid (IPA)) were determined by high-performance liquid chromatography. The half-lives (t(1/2)) of TCl and ICl ranged from an average of 1.2 to 2.2 min and from 2.2 to 4.9 min, respectively, at pH 4-9 and 0 degrees C. The observed first-order rate constants (k(obs)) ranged from an average of 530 to 1100 (x 10(5) s(-1)) for TCl and 240 to 520 (x 10(5) s(-1)) for ICl. Both phthaloyl chlorides formed their respective short-lived intermediates, in which one of the two carboxylic acid chloride functionalities reacts with water to form the carboxylic acid ("half-acid"). Subsequently, the half-acids underwent further hydrolysis so that greater than 90% of the initial phthaloyl chloride hydrolyzed in less than 60 min at 0 degrees C. The hydrolysis products TPA and IPA were hydrolytically stable, undergoing no further transformations after 20 min at pH 7 and 25 degrees C. This work demonstrated that TCl, ICl, and their respective half-acids will not be persistent in aqueous systems for a time sufficient to have a sustained toxicological effect on aquatic organisms (less than 1 h). Performing additional aquatic toxicity studies, biodegradation studies, and potentially mammalian studies on TCl and ICl are unnecessary since the existing information on TPA and IPA with the hydrolysis data presented here is sufficient to address questions on the fate and effects of these two substances in aqueous environments.

Chlorides↗

Conformational changes in gastric mucoproteins induced by caesium chloride and guanidinium chloride.

1. Caesium chloride and guanidinium chloride were shown to cause conformational changes in the high-molecular-weight mucoprotein A of water-soluble gastric mucus with no change in molecular weight. 2. Increasing concentrations of CsCl decrease the viscosity of the mucoprotein bringing about a transition which is essentially complete in 0.1m-CsCl. The shear-dependence of viscosity of the mucoprotein is abolished by low concentrations of CsCl. The normally highly expanded molecule becomes contracted in CsCl to a molecule having the same symmetry but a smaller volume and decreased solvation, in keeping with an increased sedimentation coefficient (18.7S-->33S). 3. This contracted form does not revert to the native conformation on removal of the CsCl. 4. A mechanism is discussed in terms of the effect of the Cs(+) and Cl(-)ions on water structure and the water-mucoprotein interaction. 5. Guanidinium chloride causes the CsCl-treated material to expand, in keeping with a decrease in s(0) (25,w) (33S-->26S). This is analogous to the known unfolding effect of guanidinium chloride on proteins and suggests that guanidinium chloride solubilizes groups involved in stabilizing the contracted structure. Removal of the guanidinium chloride results in a limited aggregation of four mucoprotein molecules. 6. These results show that caution must be exercised before interpreting the physical properties of mucoproteins which have been treated with CsCl and/or guanidinium chloride.

Animals↗

Chloride deficiency in Holstein calves from a low chloride diet and removal of abomasal contents.

Chloride deficiency signs were produced in young Holstein calves by a low chloride diet (.063% chlorine) and daily removal of chloride in abomasal contents. General clinical signs included anorexia, weights loss, lethargy, mild polydipsia, and mild polyuria. In latter stages of the deficiency, severe eye defects (scleral injection, sunken eyes, scaliness around eyes) and reduced respiration rate became evident. Feces contained varying amounts of blood and mucus. The chloride imbalance resulted in severe alkalosis and hypochloremia leading to secondary hypokalemia, hyponatremia, and azotemia. All deficient calves died after 24, 28, 38, and 46 days of treatment. Chloride concentrations of plasma in each of the calves just prior to death were similar at 31 to 35 meq/liter, which compares with normal 96 meq/liter. One additional calf made chloride deficient was recovered to normal health in 9 days following a single treatment with salt water and feeding of control diet containing .48% chlorine. Control calves fed a diet with .48% chlorine and which also had their abomasal contents removed daily grew normally and exhibited no deficiency signs. When dietary chloride was adequate, removal of abomasal contents (and chlorine) had no adverse effects on the animals.

Abomasum↗

Effects of chloride replacement and chloride transport blockade on the tonic tension of frog atrial trabeculae.

The effects of a chloride-poor medium (methanesulfonate substituted) and a chloride transport inhibitor (SITS) on the outward delayed current and the tonic tension were studied on frog atrial trabeculae under voltage-clamp conditions. The outward delayed current decreased in low-chloride medium (10.5 mmol/l) or in the presence of SITS (2 mmol/l). The tonic tension increased in chloride-poor solution and decreased following SITS. The replacement of chloride by methanesulfonate enhanced the transient increase of tonic tension induced by low external sodium concentration while SITS reduced it. In the same conditions, the effect of the chloride-poor medium was abolished in the presence of SITS. The results showing an increase in Na-Ca exchange in low-chloride medium and a decrease by SITS are discussed assuming that changes in the inner negative charge density influenced the Na-Ca exchange mechanism; the influence of pHi variation are also considered.

4-Acetamido-4'-isothiocyanatostilbene-2,2'-disulfo↗

THE MECHANISM OF SODIUM AND CHLORIDE UPTAKE BY THE GILLS OF A FRESH-WATER FISH, CARASSIUS AURATUS. I. EVIDENCE FOR AN INDEPENDENT UPTAKE OF SODIUM AND CHLORIDE IONS.

Carassius auratus placed in a dilute sodium chloride solution (400 microM) is able to absorb sodium and chloride ions at very different rates, or to absorb one ion and to lose the other. This is the case not only for fish which have been previously kept in choline chloride or sodium sulfate solutions or deionized water, in order to stimulate their absorption processes, but also in control fish which have not been deprived of sodium or chloride. The absorption of sodium or chloride appears to be unaffected by the presence of a nonpermeant co-ion such as choline or sulfate. Conductivity measurements of the external medium show that during ion uptake the conductivity is constant or increases slowly. This suggests the existence of exchange processes between the ions absorbed and endogenous ions excreted. It is unlikely that potassium or calcium is exchanged for sodium, because of the low permeability of the gills to these ions. Finally, the flux ratios observed for both sodium and chloride ions in the present investigation can only be explained, in relation to their electrochemical gradients across the gills, in terms of active transport.

Animals↗

Thermodynamic characterization of the partially denatured states of ribonuclease A in calcium chloride and lithium chloride.

The denaturations of ribonuclease A by calcium chloride and lithium chloride were studied by circular dichroism measurements in the far-ultraviolet region. The temperature dependence of the equilibrium constant for the unfolding of the protein by calcium chloride and lithium chloride gave values of 46 and 52 kcal mol-1 (1 cal = 4.1868 J) for the enthalpy of denaturation at 25 degrees C and pH 7.0, respectively. Thermodynamic parameters for the denaturation by calcium chloride and lithium chloride are compared with those for the heat and guanidine hydrochloride denaturation. It has been observed that the thermodynamic quantity, be it free energy, entropy, or enthalpy, cannot be related quantitatively to the extent of unfolding measured by various conformational properties of the protein.

Animals↗

The chloride channel ClC-4 co-localizes with cystic fibrosis transmembrane conductance regulator and may mediate chloride flux across the apical membrane of intestinal epithelia.

Cystic fibrosis (CF) causing mutations in the cystic fibrosis transmembrane conductance regulator (CFTR) lead to mislocalization of CFTR protein from the brush border membrane of epithelial tissues and/or its dysfunction as a chloride channel. In initial reports, it was proposed that certain channels from the ClC family of chloride channels may provide compensatory or alternative pathways for epithelial chloride secretion in tissues from cystic fibrosis patients. In the present work, we provide the first evidence that ClC-4 protein is functionally expressed on the surface of the intestinal epithelium and hence, is appropriately localized to act as a therapeutic target in this CF-affected tissue. We show using confocal and electron microscopy that ClC-4 co-localizes with CFTR in the brush border membrane of the epithelium lining intestinal crypts in mouse and human tissues. In Caco-2 cells, a cell line thought to model human enterocytes, ClC-4 protein is expressed on the cell surface and also partially co-localizes with EEA1 and transferrin, marker molecules of early and recycling endosomes, respectively. Hence, like CFTR, ClC-4 may cycle between the plasma membrane and endosomal compartment. Furthermore, we show that ClC-4 functions as a chloride channel on the surface of these epithelial cells as antisense ClC-4 cDNA expression reduced the amplitude of endogenous chloride currents by 50%. These studies provide the first evidence that ClC-4 is endogenously expressed and may be functional in the brush border membrane of enterocytes and hence should be considered as a candidate channel to provide an alternative pathway for chloride secretion in the gastrointestinal tract of CF patients.

Caco-2 Cells↗

Stability and sorption of FK 506 in 5% dextrose injection and 0.9% sodium chloride injection in glass, polyvinyl chloride, and polyolefin containers.

The effects of the diluent, the storage container, light, and infusion through various types of tubing on the stability and sorption of FK 506 were studied. Solutions of FK 506 in 0.9% sodium chloride injection or 5% dextrose injection were stored at room temperature (24 +/- 2 degrees C) in glass i.v. bottles, polyvinyl chloride (PVC) minibags, and polyolefin containers. FK 506 solution in 0.9% sodium chloride injection was stored in plastic syringes at room temperature and either exposed to normal room light or stored in the dark. FK 506 solution in 5% dextrose injection was placed in plastic syringes and infused through PVC anesthesia extension tubing, PVC i.v. administration set tubing, and fat emulsion tubing over a two-hour period. The infused samples and samples collected from the containers and syringes at intervals up to 48 hours were analyzed for FK 506 concentration by high-performance liquid chromatography. FK 506 concentrations remained greater than 90% of initial concentration for admixtures in 5% dextrose injection stored in glass bottles for 48 hours and for admixtures in 5% dextrose injection or 0.9% sodium chloride injection stored in polyolefin containers for 48 hours. No change in concentration was measured for admixtures in 0.9% sodium chloride injection stored in plastic syringes, and exposure to light did not affect the stability of FK 506 solution. No substantial change in concentration occurred in FK 506 solution in 5% dextrose injection infused through PVC anesthesia extension tubing, PVC i.v. administration set tubing, or fat emulsion tubing. FK 506 admixtures prepared with 5% dextrose injection or 0.9% sodium chloride injection should be stored in polyolefin containers. If polyolefin containers are not available, solutions should be prepared with 5% dextrose injection and stored in glass bottles.

Adsorption↗

Chloride transport across kidney epithelia through CLC chloride channels.

This review summarizes recent progress in elucidating the chloride-transporting mechanisms in kidney epithelia, focusing particularly on those which act through the newly identified chloride channels. A family of chloride channel proteins (ClC chloride channels) consisting of at least 9 members (ClC-1, 2, 3, 4, 5, 6, 7, K1 and K2) has recently been identified in mammals. Although all of these ClC channels, except for skeletal muscle-specific ClC-1, are expressed in the kidney, only ClC-K1 and K2 are kidney-specific ClC chloride channels, suggesting that they play an important role in the kidney. The functional properties and intrarenal localization of these chloride channels are summarized, and their involvement in certain tubular dysfunctions and physiological roles are discussed in this report.

Biological Transport↗

Loss of chloride in the official method for the determination of sodium chloride in cereal foods.

The official final action method for sodium chloride in cereal foods, 14.129, was found to give erroneously low results because of loss of chloride during ashing. Comparison of the data with values obtained by the official first action potentiometric method, 32.A01-32.A06, which does not require ashing, showed that large and variable losses of chloride occurred. Official ashing methods for other foods specify addition of sodium carbonate to prevent conversion of chloride to volatile forms, but this was not specified in 14.129. In the present study it was found that sodium carbonate did not completely prevent loss of chloride. The official first action potentiometric method, 32.A01-32.A06, has been adopted as official first action for the determination of chloride in cereal foods to replace 14.129, which was repealed, official first action. A cross-reference to 32.A01-32.A06 has been added to 14.096.

Bread↗

Mercury toxicity in the shark (Squalus acanthias) rectal gland: apical CFTR chloride channels are inhibited by mercuric chloride.

In the shark rectal gland, basolateral membrane proteins have been suggested as targets for mercury. To examine the membrane polarity of mercury toxicity, we performed experiments in three preparations: isolated perfused rectal glands, primary monolayer cultures of rectal gland epithelial cells, and Xenopus oocytes expressing the shark cystic fibrosis transmembrane conductance regulator (CFTR) chloride channel. In perfused rectal glands we observed: (1) a dose-dependent inhibition by mercury of forskolin/3-isobutyl-1-methylxanthine (IBMX)-stimulated chloride secretion; (2) inhibition was maximal when mercury was added before stimulation with forskolin/IBMX; (3) dithiothrietol (DTT) and glutathione (GSH) completely prevented inhibition of chloride secretion. Short-circuit current (Isc) measurements in monolayers of rectal gland epithelial cells were performed to examine the membrane polarity of this effect. Mercuric chloride inhibited Isc more potently when applied to the solution bathing the apical vs. the basolateral membrane (23 +/- 5% and 68 +/- 5% inhibition at 1 and 10 microM HgCl2 in the apical solution vs. 2 +/- 0.9% and 14 +/- 5% in the basolateral solution). This inhibition was prevented by pre-treatment with apical DTT or GSH; however, only the permeant reducing agent DTT reversed mercury inhibition when added after exposure. When the shark rectal gland CFTR channel was expressed in Xenopus oocytes and chloride conductance was measured by two-electrode voltage clamping, we found that 1 microM HgCl2 inhibited forskolin/IBMX conductance by 69.2 +/- 2.0%. We conclude that in the shark rectal gland, mercury inhibits chloride secretion by interacting with the apical membrane and that CFTR is the likely site of this action.

1-Methyl-3-isobutylxanthine↗

Effects of ionic strength and chloride ion on activities of the glucose-6-phosphatase system: regulation of the biosynthetic activity of glucose-6-phosphatase by chloride ion inhibition/deinhibition.

Certain amino acids stimulate glycogenesis from glucose. The regulatory volume decrease mechanism explaining these effects was defined by Meijer et al. (1992, J. Biol. Chem. 267, 5823-5828). It involves amino acid-induced swelling of hepatocytes resulting in loss of chloride ions which leads to deinhibition of glycogen synthase phosphatase. This results in enhanced conversion of the inactive to active form of glycogen synthase and thus enhanced glycogen synthesis. We have studied the effects of amino acids and chloride ion on the glucose-6-phosphatase system (Glc-6-Pase) with rat liver microsomal preparations, and correlated our results with those reported by others with glycogen synthase. Glc-6-Pase activities are increased by elevated ionic strength varied by increasing the concentration of various buffers or charged amino acids but are not affected by changes in osmolarity, varied with disaccharides or uncharged amino acids. With undisrupted microsomes, chloride ion competitively inhibits carbamyl phosphate: glucose phosphotransferase (KCP,t,UMi,Cl- = 19 mM) more extensively than Glc-6-P phosphohydrolase (KG6P,h,UMi,Cl- = 117 mM). Inhibition by chloride ion and activation due to ionic strength may be important considerations when assessing in vitro Glc-6-Pase activities where an attempt is made to replicate physiologic conditions. Further we propose that amino acids may play a role in increasing biosynthetic activity of Glc-6-Pase, as well as previously characterized glycogen synthase (Meijer et al., op. cit.), via the regulatory volume decrease mechanism through diminished chloride ion inhibition. Reduced concentration of chloride ion will (1) deinhibit the biosynthetic activity of Glc-6-Pase, while still inhibiting Glc-6-P hydrolysis, leading to an increased cellular concentration of Glc-6-P (an important glycogenic intermediate as well as allosteric activator of glycogen synthase) and (2) increase the active form of glycogen synthase by deinhibiting glycogen synthase phosphatase both through the previously defined mechanism (see above) and via Glc-6-P-enhanced conversion of glycogen synthase from its inactive to active form. We propose that the biosynthetic activity of Glc-6-Pase may act in concert with glycogen synthase during amino acid-induced glycogenesis from glucose.

Amino Acids↗

Membrane chloride transport measured using a chloride-sensitive fluorescent probe.

Transport of chloride across cell membranes through exchange, cotransport, or conductive pathways is a subject of great biological importance. Current methods of measurement are restricted in their sensitivity, time resolution, and applicability. A new transport measurement technique has been developed on the basis of the fluorescence quenching by chloride of the dye 6-methoxy-N-(3-sulfopropyl)quinolinium (SPQ). SPQ fluorescence quenching by chloride is rapid (less than 1 ms) and sensitive, with a greater than 50% decrease in fluorescence at 10 mM chloride. SPQ fluorescence is not altered by other physiological anions or by pH and can be used to measure both neutral and conductive transport processes. The high water solubility and membrane permeability properties of SPQ make it ideal for use in both membrane vesicles and cells. Chloride transport determined with SPQ was validated by measurement of erythrocyte chloride/anion exchange and membrane vesicle chloride conductance.

Biological Transport↗

Blood pressure, fluid compartments and utilization of chloride in rats fed various chloride diets.

The effects of various levels and types of dietary chloride salts on blood pressure were examined in three studies. Weanling Sprague-Dawley rats were fed semipurified diets that contained moderate (1.9 mg Cl/g diet) and supplemental (15.6 mg Cl/g diet) chloride as NaCl, KCl, lysine monohydrochloride with or without CaCO3, or MgCl2 for 56 or 119 d. Rats fed excess chloride excreted more than 84% of the chloride in urine, excreted increased urine volumes (from 3 to 7 wk), tended to consume more fluids (especially if NaCl was fed), had significantly increased blood pressure (7 and 13 wk), had hypertrophied kidneys (8 and 17 wk) and had altered levels of sodium and potassium in their kidneys (17 wk), but experienced no changes in the size of fluid compartments, such as plasma volume or bromine space. Altogether, 56% of the variance in blood pressure measurements at wk 7 could be predicted on the basis of urinary chloride excretion during wk 7 and kidney weight as a percentage of body weight and kidney sodium concentration, but only 30% of the variance in blood pressure measurements at wk 16 could be predicted on the basis of urinary chloride excretion during wk 16 and kidney sodium concentrations.

Administration, Oral↗