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Studies on the inhibition of brain synaptosomal Na+/K+-ATPase by mercury chloride and methyl mercury chloride.

The effect of mercury chloride (HgCl2) and methyl mercury chloride (MeHg) on brain synaptosomal Na+/K+-ATPase was determined in vitro. It was shown that HgCl2 is a more powerful inhibitor than MeHg. The IC50 were 5 X 10(-7) M for HgCl2 and 2.3 X 10(-6) M for MeHg. A non-competitive type of inhibition was observed with the two mercurials. Removal of contaminating lipids with the non-ionic detergent Lubrol did not affect the inhibition of either mercurial. It is concluded that non-essential lipids do not play a significant role in the inhibitory effect of MeHg and that the potency of these mercurials on to inhibit brain synaptosomal Na+/K+-ATPase largely depends on their capacity to block sulfhydryl groups.

Animals↗

Nitric oxide-dependent vasorelaxation and endothelial cell damage caused by mercury chloride.

Mercury and its derivatives are known to constrict vascular smooth muscle cells. However, little is known about the role of endothelial cells in mercury-induced vasoreactivity. Using isolated, norepinephrine preconstricted rat aorta and pulmonary artery rings with intact endothelium, we demonstrate that mercury chloride (HgCl2) induces an endothelial-dependent vasorelaxation which was totally blocked by the nitric oxide inhibitor L-NAME. Besides this vasorelaxant effect, treatment with HgCl2 resulted in functional and morphological alterations of the endothelial cells. On aortic rings, endothelial cells were partly lifted from the basal membrane when incubated for 20 min in HgCl2 (10(-7) M)-containing buffer. At a concentration of 10(-6) M, the endothelial cells were completely denuded and acetylcholine vasorelaxation was abolished. Endothelial cell structure and function was preserved by incubating the vessels in HgCl2-containing rat blood instead of buffer. We conclude that HgCl2 induces an endothelial-dependent vasorelaxation and alters structure and function of vascular endothelial cells.

Animals↗

Mercury chloride--and methyl mercury chloride--induced inhibition in NOR activity.

Previous work has raised the question of whether mercury compounds inhibit the activity of the nucleolar organizing genes. For that reason we performed a cytophotodensitometric analysis on silver-stained interphase nuclei from human peripheral blood lymphocytes exposed to various concentrations of HgCl2 (0-150 X 10(-6) M), CH3HgCl (0-50 X 10(-6) M), and actinomycin D (0-0.1 microgram/ml). The last compound was used as a positive control. The cells were exposed to the compounds either during G1-early S phase, allowing recovery after the exposure, or from G1 until harvest; thus no recovery was allowed in this case. Like actinomycin D, both mercury compounds were shown to inhibit the NOR activity. This inhibition was furthermore more evident during the short exposure experiment. Our results do confirm that mercury compounds may, to a certain extent, influence some factors regulating the nucleolus-organizing activity.

Adult↗

The effect of mercury chloride and methyl mercury on brain microsomal Na+-K+-ATPase after partial delipidisation with Lubrol.

The microsomal Na+-K+-ATPase of rat brain was inhibited by mercury chloride and methyl mercury. The IC50 was 6.5 X 10(-7) M for mercury chloride and 3.5 X 10(-6) M for methyl mercury. The inhibition was of a non-competitive type with respect to ATP. The non-ionic detergent Lubrol potentiated the inhibitory effect of both mercurials. It is concluded that Lubrol removes the bulk lipids present outside the catalytic center of the enzyme. Consequently, the enzyme will become more sensitive to the inhibition by both mercurials.

Animals↗

Regulation of heme oxygenase activity in rat liver during oxidative stress induced by cobalt chloride and mercury chloride.

Activities of heme oxygenase and tryptophan-2,3-dioxygenase and cytochrome P450 content in liver as well as absorption of the Soret band and optical density at 280 nm in serum were determined 2 and 24 h after administration of HgCl(2) and CoCl(2) and after co-administration of the metal salts with alpha-tocopherol. Administration of HgCl(2) and CoCl(2) increased the contents of hemolysis products in the serum, induced heme oxygenase, and decreased cytochrome P450 content in the liver. Injection of HgCl(2) increased the activity of tryptophan-2,3-dioxygenase holoenzyme and enzyme saturation with the heme, but administration of CoCl(2) decreased these parameters. Pretreatment with alpha-tocopherol completely blocked the changes induced by HgCl(2) after 24 h. Induction of heme oxygenase induced by CoCl(2) was not blocked by alpha-tocopherol, but this antioxidant normalized the increase in the level of hemolysis products in the serum and decrease in tryptophan-2,3-dioxygenase holoenzyme activity and cytochrome P450 content. Mechanisms of regulation of heme oxygenase by mercury and cobalt ions are discussed.

Animals↗

Immune system alteration in the rat after indirect exposure to methyl mercury chloride or methyl mercury sulfide.

Methyl mercury is a well-recognized health hazard. It is an environmental contaminant that accumulates in the food chain. The primary source of mercury exposure for humans is through the consumption of contaminated fish. We studied the effects of indirect methyl mercury exposure on the immune system of Sprague-Dawley rats. The effects of different forms of methyl mercury on immune system development were studied in Sprague-Dawley rats at 6 and 12 weeks of age. Rats were indirectly exposed to mercury during gestation and during nursing by exposing pregnant rats to either 5 or 500 micrograms/liter of methyl mercury chloride (CH3HgCl) or 5 micrograms/liter of methyl mercury sulfide [(CH3Hg)2S] in their drinking water. Total body, splenic, and thymic weights were measured, and NK cell cytolytic activity and lymphoproliferative response to T and B cell mitogens were evaluated in the offspring. At 6 weeks of age, total body and splenic weights were significantly increased in both high- and low-dose methyl mercury chloride-exposed groups. Rats exposed to methyl mercury sulfide had a significant increase in thymic weight at 6 weeks of age. At 12 weeks, the total body and organ weights were not different from controls. The lymphocyte proliferative response of splenocytes to PWM was enhanced at 6 weeks in both CH3HgCl exposed groups and not affected in the (CH3Hg)2S exposed group. NK cell activity was not affected in either group at 6 weeks of age. At age 12 weeks, NK cell activity was statistically significantly decreased by 56.6% in both CH3HgCl-exposed groups and not affected in the (CH3Hg)2S-exposed rats. The lymphocyte proliferative response of splenocytes to the B cell mitogen pokeweed remained increased in the CH3HgCl groups. Indirect exposure of rats (during gestation and nursing) to different forms of methyl mercury reveals that chloride forms have prolonged predominantly enhancing effects on lymphoproliferative response of splenocytes, followed by significant depression of NK cell activity.

Animals↗

Genotoxic activity of methyl mercury chloride and dimethyl mercury in human lymphocytes.

The genotoxicity of methyl mercury chloride (MMC, 0-25 x 10(-6) M) and dimethyl mercury (DMM, 0-434 x 10(-6) M) was evaluated by chromosome metaphase analysis in human lymphocytes treated in vitro for 24 h. Structural (CA) and numerical (AN) chromosomal aberrations were scored for the assessment of induced genotoxic effects, while the variation in mitotic index (MI) was considered a monitor for induced cellular toxicity. MMC induced CA and AN in a dose-related manner at doses exceeding 0.6 x 10(-6) M, and the proportion of cells with CA was constantly and significantly higher than that of cells with AN. DMM was able to induce both effects as well, although to a lesser extent than MMC, CA and AN being induced at doses exceeding 43.4 x 10(-6) M and 1.73 x 10(-6) M, respectively. MMC was 6-fold more effective in inducing CA than DMM at equivalent toxic doses. On the other hand, no significant difference was observed between the two compounds in inducing AN. Therefore MMC was much more clastogenic than DMM, whereas mitotic spindle disturbances appeared to be almost equally induced by both compounds.

Adult↗

Different histochemical findings in the brain produced by mercuric chloride and methyl mercury chloride in rats.

The chemical form of mercury reactive by the histochemical technique was studied by using rats and mice treated with mercuric chloride (HgCl2) and methyl mercury chloride (MeHgCl). Mercury granules were demonstrated histochemically in the brain of HgCl2-treated rats with higher levels of inorganic mercury. However, mercury granules were not demonstrated in the brain of MeHgCl-treated rats in spite of a considerably high organic mercury level. In rats and mice with significant biotransformation of injected MeHg to inorganic mercury, the appearance of the peak inorganic mercury level and mercury granules in the brain seemed to occur on the same day. These results suggested that mercury granules in the brain represent inorganic mercury, but not organic mercury. In the brains showing mercury granules, the lowest level of inorganic mercury was 0.12 micrograms/g in HgCl2-treated rats, 0.14 micrograms/g in MeHgCl-treated rats, and 0.12 micrograms/g in MeHgCl-treated mice. These values were similar to the level of inorganic mercury in the brain from human autopsy cases. Mercury granules were demonstrated histochemically in nerve cells, choroid plexus and phagocytes in the brain of both HgCl2-and MeHgCl-treated rats, and in ependyma of MeHgCl-treated rats. The level of inorganic mercury of the brains showing mercury granules in phagocytes was lower in MeHgCl-treated rats than in HgCl2-treated rats. The numbers of mercury granules in nerve cells increased with the rising level of inorganic mercury in the brain of MeHgCl-treated rats.

Animals↗

Reduced mercury excretion with feces in germfree mice after oral administration of methyl mercury chloride.

When methyl mercury chloride was administered orally the amount of mercury excretion with feces of germfree mice was noticeably lower than that of the control mice. Germfree mice excreted 24 percent of the administered mercury within 10 days of administration while the control mice excreted 46 percent. Mercury retention in the organs of germfree mice was slightly higher than in the control mice. These results suggest that the existence of microorganisms in animal intestines are concerned with mercury excretion in the animal body.

Animals↗

Allergic contact dermatitis and mercury exanthem due to mercury chloride in plastic boots.

We report a 5-year-old child with previous skin intolerance from Mercurochrome (merbromin), who developed a severe allergic contact dermatitis of both feet when wearing new polyvinyl chloride (PVC) boots. Within a few days, he developed a mercury exanthem involving both legs, groins and lateral parts of the trunk. Patch tests showed strong reactions to organic and inorganic mercury compounds, in particular to mercury chloride (mercury chloride; HgCl2), 0.01% pet., which was identified by atomic absorption spectrometry and polarography in the boots worn. New hidden sources of mercury in consumer goods may represent a potential source of danger for the future, if its use is not more strictly regulated.

Anti-Infective Agents, Local↗

Mercury chloride modulation of the GABAA receptor-channel complex in rat dorsal root ganglion neurons.

Mercury compounds affect synaptic transmission through multiple actions on various receptors and ion channels. One of their target sites is the GABAA receptor-channel complex, which is stimulated by mercury chloride (1-10 microM) in a potent and efficacious manner. We studied the mechanisms by which mercury chloride modulates the activity of the GABA system of rat dorsal root ganglion neurons in primary culture using the whole-cell patch clamp technique. The active form of mercury chloride was determined by measuring mercury potentiation of GABA-induced currents as a function of extracellular pH and chloride concentration. Experiments with various chloride concentrations indicated that Hg2+ was far less potent than HgCl2 and HgCl4(2-). Experiments with pH changes indicated that the mercury chloride-hydroxyl complex, predominantly HgCl4(OH)3-, was equally potent to non-complexed mercury chloride, predominantly HgCl4(2-). Mercury chloride potentiation of GABA-induced currents was use dependent, increasing with the frequency of channel openings. However, the potentiation was independent of membrane potential suggesting that mercury chloride binds to an external site of the receptor. Also supporting an external binding site is the observation that preapplication of mercury chloride alone for up to 60-sec potentiated GABA-induced currents. This site appears to be distinct from the zinc binding site. Desensitization of GABA-induced currents was accelerated by mercury chloride. Mercury chloride potentiation of the currents was blocked by cysteine and iodoacetamide suggesting involvement of sulfhydryl groups in this action.

Animals↗

[Promoter effect of mercury chloride and methyl-mercury on human keratinocytes in culture].

Mercury has received considerable media focus because it is present in dental amalgams and seafood. There is potential exposure in gas meters, thermometers and fluorescent lamps workers. To evaluate its possible epigenetic carcinogen effect, cultures of human keratinocytes were treated with increasing doses of HgCl2 for 30 min, 24 h and of CH3HgCl for 24 h, respectively. The red neutral method was used to evaluate the doses of HgCl2 and CH3HgCl which had no cytotoxic effect. Then, the dye transfer method was used to investigate the gap junctions-mediated intercellular communication (GJIC). Cells were microinjected with Lucifer Yellow CH by using the Eppendorf Apparatus and the Leica inverted microscope. After 30 min incubation at the concentration of 10 microM, HgCl2 did not exert inhibition of GJIC. Conversely, after 24 h at the concentration of 10 nM, HgCl2 inhibited GJIC. Incubation with CH3HgCl at the concentration of 250 nM for 24 h reduced the number of fluorescent cells, thus denoting a inhibition of GJIC. Taken together our data demonstrated that: i) HgCl2 and CH3HgCl exerted an inhibitory effect upon GJIC; ii) HgCl2 resulted to inhibit GJIC at concentrations 25 folds lower than CH3HgCl. Further studies will be addressed to evaluate whether the reversal of GJIC inhibition could be obtained by withdrawal of toxic substance, or by the addition of a GJIC activator like the retinoic acid. Finally to shed light on the possible effect of mercury derivates at the transcriptional or translational levels, the expression profile of the connexin 43 gene after HgCl2 and CH3HgCl exposure of cultured human keratinocytes will be investigated.

Cell Communication↗

Mercury chloride genotoxicity in rats following oral exposure, evaluated by comet assay and micronucleus test.

Mercury is a toxic element which is easily absorbed after ingestion or inhalation and deposited mainly in the kidney. The aim of this study was to evaluate the effects of mercury chloride in rats. Female rats, aged 14 weeks, were receiving mercury chloride in oral doses of 0.068, 0.136, and 0.272 mg kg(-1) body weight (b.wt.) for five consecutive days. Three days after the last dose, the animals were killed. The liver and the kidney were dissected and mercury measured using vapour generation atomic absorption spectrometry. The results show a significant increase in mercury mass fraction in the kidney after two higher doses of mercury chloride, while liver mercury burden showed a significant increase only after the highest dose. Blood samples were analysed using the comet assay and supravitally acridine orange stained micronucleus test. Tail length, tail moment and micronucleus frequency were significantly higher in the treated rats than in control rats, regardless of the dose of mercury chloride, while the difference between the treated groups for both comet and micronucleus parameters was not statistically significant.

Administration, Oral↗