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Computer-based approach to chelation therapy: a theoretical study of some chelating agents for the selective removal of toxic metal ions from plasma.

COMICS is a computer programme for calculating equilibrium concentrations of metal complexes and reactive species in multi-metal-multi-ligand systems. Its usefulness for analysing metal ion equilibria in blood plasma has been improved by including albumin as a ligand. Using this model system the distribution and removal of copper(II) and zinc ions in histidinaemia, lead poisoning and Wilson's disease have been examined. The efficacy of TRIEN in removing excess copper(II) is shown. The use of specific tripeptides such as Gly-Gly-His methyl ester for the selective removal of copper(II) is suggested. A possible chemoprophylaxis of influenza based on complexation of zinc is discussed. Calculations confirm that thiosemicarbazones such as methisazone and 2-acetylpyridine thiosemicarbazone are effective competitors for heavy metal ions under physiological conditions.

Amino Acid Metabolism, Inborn Errors

Toxic metals in street and household dusts.

Street and household dusts have been sampled within the Lancaster area (U.K.), and analysed for Pb, Cd, Cr, Co, Cu, Ni and Zn. The concentration of each metal has been determined both as total and extractable metal, the latter referring to metal soluble in a 0.07N hydrochloric acid solution. The results are discussed in relation to the sources of the metals, and possible health hazards to children exposed to the dusts.

Child

[Identification of toxic metals after extraction and thin-layer chromatograpy of their dithizonates. Toxicological applications (author's transl)].

The technique consists in employing successively an extraction method using the dithizone-carbon tetrachloride system, at 4 different pH values, then thin-layer chromatography on silica gel, to identify and separate Ag, Cd, Co, Cu, Hg, Ni, Pb, and Zn in the form of their dithizonates. Sensitivity is of the order of 10(-7) g ion/l. This method is directly applicable in hydrology; after destruction of organic matter in the case of biological samples (blood, urine, excrement). We have applied it in toxicological analysis together with other methods for the detection of copper, lead, mercury and zinc in cases of poisoning.

Azo Compounds

Colored gift wrapping papers as a potential source of toxic metals.

Sanitary land fills are the alternate to waste incineration in New Jersey. While industrial waste disposal is controlled, few restrictions apply to the disposal of domestic solid waste. Among the materials of concern from domestic sources are colored gift wrapping papers. Cadmium, chromium, copper, iron, manganese, molybdenum, nickel, lead and zinc were determined in some dozen and a half samples of gift wrapping paper by atomic absorption spectrometry after wet ashing and after simulated leaching. High levels of lead and chromium were found in many of the papers. The leachates showed correspondingly high levels of lead.

Metals

Protective effects of ascorbic acid against toxicity of heavy metals.

Toxicity of cadmium in the young Japanese quail rapidly produced moderate growth depression, hypogonadism in the male, decreased bone ash, severe anemia, alterations of "indicator" tissue levels of several essential inorganic elements, and marked histological abnormalities of the duodenum, bone marrow, adrenal medulla, and esophageal mucus glands. Cadmium appeared to have direct effects on zinc and iron, particularly iron (III), by decreasing intestinal absorption of these elements. Small amounts of dietary ascorbic acid were protective against many of the adverse effects of cadmium. The young quail proved to be a useful species for these studies. The experience with cadmium may have some facets that would prove useful in further studies of the effects of ascorbic acid on the toxicity of other metals.

Anemia, Hypochromic

Measurement of enzymes in environmental intoxications.

The paper details the enzymes which have been shown to be affected by certain zenobiotics, principally industrial pollutants, toxic metals, toxic gases and food additives. The role of mixed function oxidases is discussed and methods of assessing their activity indicated.

Acetylcholinesterase

Toxic trace metals in food. I. A new voltammetric procedure for toxic trace metal control of wines.

A new highly sensitive and particularly reliable analytical procedure for the precise determination of the most relevant toxic trace metals cadmium, lead and copper in wine is presented. It consists of a simple and convenient sample pretreatment by UV irradiation (1,5 h, 500-W-Hg-lamp) to release the toxic trace metals bound by organic substances and subsequent voltammetry (DPASV) of cadmium and lead simultaneously at a mercury film electrode (MFE) formed in situ on a vitreous carbon carrier and of copper on a gold electrode. Particular emphasis has been placed on the efficient exclusion of interference due to contamination. Only special wines, with more than 10% of sugar, require substitution of UV irradiation by a wet digestion also described. The procedure may be easily expanded to include the determination of mercury and zinc.

Electrodes

Toxic trace metals in food. II. A comparative study of the levels of toxic trace metals in wine by differential pulse anodic stripping voltammetry and electrothermal atomic absorption spectrometry.

A new high-performance analytical procedure for the determination of the toxic trace metals cadmium, lead and copper in wines by differential pulse anodic-stripping voltammetry (DPASV) subsequent to UV irradiation of the sample is compared with the hitherto more common application of electrothermal atomic absorption spectrometry (AAS). In this manner also mutually the accuracy attainable with both alternatives has been established. The particularly favourable potentialities of the new voltammetric approach for toxic metal control of wines are demonstrated by the investigation of a typical selection of 36 wines from recent vintages and common vine types of the German and some European wine cultivating regions.

Cadmium

Effect of H+ ion activity and Ca2+ on the toxicity of metals in the environment.

The role of acidity in determining and restricting plant distribution and performance is discussed. In soils especially, a key effect of H+ ion concentration is on the solubility of potentially toxic heavy metals such as aluminum, managenese, zinc, iron, copper, and nickel. Al has been reported from many studies since the 1920's as the key determining toxic factor in acid soils. Some acid-tolerant species have been shown to be especially tolerant of Al, and mechanisms of tolerance have been suggested. Mn is also a commonly toxic factor at soil pH less than 5.0. Calcium has been shown to alleviate Mn toxicity. Low pH soils are also generally low in Ca, K, Na, and P; all essential major elements for plant growth. In lakes and marine situations acidic waters are uncommon as the waters are buffered. Calcium is again ameliorative of metal toxicities. The pH, redox, and valency state are critical in determining nutrient availability and metal speciation. Recent increases in the H+ ion content of precipitation have caused increased acidities of freshwater lakes in Scandinavia and eastern North America, which have depleted biota, including fish populations.

Animals

Role of metallothioneins in disease.

Metallothioneins are small proteins (6,000 to 10,000 mw) with similar amino acid compositions, high content of sulfhydryl amino acids and no aromatic amino acids. Emax at 250 nm is due to cadmium mercaptide bond. Synthesis is induced by a number of metals including zinc, cadmium, mercury, copper, bismuth, gold and silver. These proteins function as a mechanism of intracellular storage of some essential metals such as zinc and copper. Binding of potentially toxic metals like cadmium may be protective; but with saturation of protein by metal, toxicity may occur. Excessive cadmium-thionein may have a role in the pathogenesis of cadmium induced kidney disease. A more sensitive method for detection adn measurement of this protein will greatly enhance future studies, particularly the potential for clinical application.

Animals

Heavy metals and lysosomes.

Much can be gained by reassessing the processes which determine the ability of lysosomes to take up or exclude, sequester and mobilize heavy metals. To achieve a better understanding of these events, the chemical forms, intracellular pathways and modes of delivery of metals to lysosomes, as well as the specific physiologic ligands and molecular targets susceptible to metal toxicity have to be identified. None of these can be derived from measurements of metal contents of whole lysosomal fractions because the metal's "effective concentration" at a specific target site may be affected by the binding properties of the lysosomal ligand as well as by those of cation carrier proteins present in the cytosol (e.g., metallothionein), and by interactions with and competitions by other cellular organelles. Therefore, the possibility of such events diminishing or enhancing a metal's direct effect observable in in vitro systems has to be considered before extrapolating to the in vivo situation. Another pitfall to be wary of is the equation of an organelle's relative affinity for a metal in vitro with its susceptibility to the metal's toxic effects. This is evident, albeit at a tissue level rather than at that of organelles, from the discordance between the low affinity of nervous tissue for lead and this metal's pronounced encephalopathic effect. The answers to some of the questions raised in this review may possibly lead to pharmacologic applications, particularly to the development of effective agents for the removal from or the inactivation of toxic metals deposited in lysosomes. At present, considerable uncertainty exists regarding the possible interaction of therapeutic chelating agents with lysosomes in vivo. We do not know, for example, whether the contrasts between the remarkable effectiveness of penicillamine in mobilizing copper from tissues and the limited effectiveness of desferioxamine in removing excess iron stores can be accounted for by differences in accessibility of these two chelators to lysosomes. Or, alternatively, can these differences in effectiveness be related to different ligands or macromolecules interacting with each metal? At least part of the lysosomal iron is bound to ferritin molecules which may not be susceptible to the action of chelating agents after incorporation. Such speculation is not without foundation since ferritin molecules are heterogeneous. However, whether this heterogeneity, which is reflected in different organ-specific patterns of distribution (Powell et al. 1973), is the result of differing affinities of the isoferritins for specific subcellular organelles has not been established. It is conceivable that ferritin molecules present in the cytoplasm may be subtly different from those taken up by lysosomes, implying that the latter are endowed with capabilities for selection of specific macromolecules...

Animals