PubMed HealthSearch

SEARCH · PubMed Health

Results for “metal homeostasis”

Explore indexed PubMed citations for clinical trials, systematic reviews and public health research. Read source abstracts and follow each citation to its original PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 19 recordsLinked to original sources

Effect of an acute injection of nickel upon essential metal homeostasis in the rat. Influence of sex and pregnancy.

The content of calcium, copper, iron, magnesium and zinc in the plasma, liver and kidney of control female and male, as well as pregnant rats on days 12 and 19 after a i.p. injection of 4 mg/kg of nickel was studied. The content of 19-day conceptuses was also measured. The injection of nickel provoked significant alterations in the essential metal homeostasis, more marked in the case of pregnant rats, with additional differences between male and female animals. In general, nickel provoked increases in metal concentrations in tissues, with diverse changes in plasma. In a number of tissues and metals, the effects lasted up to 48 hours after the single injections, long after the nickel being washed off the animal. The results suggest some sort of long-lasting nickel effect upon metal homeostasis, which is postulated not to be directly related to acute effects and which is enhanced by pregnancy.

Animals

Effects of acute nickel toxicity upon plasma and liver metal homeostasis as a function of sex.

The effects of an acute dose of nickel chloride (4 mg Ni/kg body wt) upon liver and plasma essential metal homoeostasis were studied in male and female rats. Total levels of copper and zinc in the tissues and in the fractions of chromatographic profiles (Sephadex G-100 and G-150) were determined. Plasma and liver levels of both metals rose significantly. The higher levels of copper in plasma are associated with increased ceruloplasmin activity and the initial increase of zinc in plasma is due to higher zinc content in the plasma albumin fraction. In the liver, the higher levels of both metals similarly affected all the metal-containing chromatographic fractions, although a significant increase is only observed in metallothionein-containing fractions, which agrees with previous reports on increased levels of metallothionein after nickel treatment. Regarding the sex-dependent changes, both sexes showed the same alterations, yet males recovered faster than females from all the nickel-induced changes in metal homoeostasis.

Animals

Metallothionein induction and metal homeostasis in rainbow trout hepatocytes exposed to mercury.

Rainbow trout hepatocytes were exposed to a sublethal concentration of mercury (Hg) (100 nM) for 0, 5, 10, 15, 20, 25, 30 and 35 h at 15 degrees C. The hepatocytes were found to accumulate appreciable quantities of Hg. The presence of Hg led to elevated Ca, Cu and Zn levels in cells. Hg was bound mainly to low-molecular-weight components, although it induced the synthesis of metallothionein (MT). The results suggest that when hepatocytes are exposed to low levels of Hg, MT does not play a significant role in the sequestration of the metal. The elevated cellular Cu and Zn levels could be associated with the induction of MT.

Animals

Silicon-mediated alleviation of mercury toxicity requires coordinated regulation of antioxidant defense, metal homeostasis, and nodule function in mung bean.

Mercury (Hg) contamination and accumulation in agricultural soil represent a major hazardous environmental concern, posing serious threats to living organisms, including plants. Silicon (Si) has been widely recognized to mitigate heavy metal (loid) toxicity; however, the underlying mechanism of Si-mediated mitigation of Hg-stress in mung bean remains unclear. In this study, we addressed this research gap by thoroughly examining the potential effects of Si supplementation on Hg-stressed mung bean plants, with particular emphasis on investigating the possible effects of Si on plant biomass, nodulation traits, antioxidant defense, and expression of metal-transporter and detoxification genes. Our findings demonstrated that Hg stress significantly impaired plant growth by inducing oxidative stress and reducing biological nitrogen fixation efficiency whereas Si application significantly alleviated the Hg-induced toxicity. Specifically, Si increased shoot dry biomass by +113% (2.13-fold), root dry biomass by +60% (1.60-fold), nodule number by +152% (2.52-fold), and nodule dry weight by +273% (3.73-fold) under Hg stress compared to Hg treated plants only. Furthermore, Si enhanced antioxidant defense system, restricted the uptake and accumulation of Hg in different plant tissues, and regulated the expression of genes related to metal transport and detoxification, contributing to improved nodulation and nitrogen fixation under Hg stress. Overall, our findings demonstrate that Si application mitigates the Hg-induced toxicity in mung bean plants by enhancing antioxidant defense, improving nitrogen fixation, regulation of genes involved in metal transport and detoxification, and limiting Hg accumulation.

Vigna radiata

Metal homeostasis and metallothionein induction in rainbow trout hepatocytes exposed to cadmium.

This study was undertaken to investigate the cellular effects of Cd and metallothionein (MT) metabolism using a primary cell culture system composed of isolated rainbow trout (Salmo gairdneri) hepatocytes. The cells were exposed to 89 nM Cd for 0, 5, 12, 20, 25, 30, 35, and 40 hr at 15 degrees C. The concentration of Cd used did not cause significant cell damage, as estimated by lactate dehydrogenase (LDH) release into the extracellular medium. However, the presence of the metal led to increased cellular levels of calcium within the first 12 hr of incubation. Later, these returned to control values and remained as such for the rest of the examination period. A transient increase in intracellular copper and zinc also occurred during the initial incubation period. In parallel, the hepatocytes were found to accumulate appreciable quantities of Cd, a significant proportion of which were detected in the cytosol. Distribution profiles of cytosolic Cd obtained through Sephadex G-75 chromatography showed that the metal was associated mainly with the high-molecular-weight (HMW) and middle-molecular-weight (MMW) protein fractions. At t = 12 hr, there was a maximum in the proportion of Cd in the MMW fractions, which was accompanied by a decrease in the proportion of Cu in the same fractions. At this time, cellular MT exhibited the highest levels. MMW fractions were further resolved using anion-exchange chromatography. Although Cd was present in the peaks corresponding to MT, the data indicated that these peaks also contained detectable amounts of Cu and Zn.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Systematic mining and characterization of metal transporter families regulating zinc homeostasis provide insights into metal homeostasis in Camellia sinensis.

BACKGROUND AND AIMS: Zinc is essential for tea plant growth and quality formation, yet its homeostatic mechanisms remain poorly understood. This study identified metal transporter families regulating zinc homeostasis, analyzed their evolution, structure, and expression, and clarified zinc uptake, transport, detoxification networks, and their links to metabolism. METHODS: This study identified zinc homeostasis-related metal transporter families in the tea plant genome, characterized their structural features and expression profiles across tissues and developmental stages through integrative bioinformatics and transcriptomic analyses, and delineated the molecular mechanisms underlying zinc uptake, translocation, and detoxification by systematically integrating published evidence. RESULTS: This study identified 74 metal transporter genes from six families: 13 CsZIPs, 12 CsNRAMPs, 10 CsHMAs, 10 CsYSLs, 14 CsMTPs, and 15 CsCAXs in the 'Shuchazao2' genome, revealing closer affinity to woody species than to Arabidopsis. These proteins exhibit conserved domains, diverse subcellular localizations (cell membrane, vacuole, chloroplast, and Golgi apparatus), and tissue-specific expression with abundant stress/hormone-responsive cis-elements. At the plant-soil interface, tea plants mobilize rhizospheric zinc via proton and organic acid secretion; CsYSLs, CsNRAMPs, and CsZIPs mediate zinc uptake, aided by arbuscular mycorrhizal fungi (AMF) and plant growth-promoting rhizobacteria (PGPR) that expand root absorption zones. Xylem CsHMAs and phloem CsYSLs coordinate root-to-shoot zinc translocation, and vacuolar transporters (CsMTPs, CsCAXs), cell wall immobilization, and antioxidant systems alleviate high-zinc stress injury. CONCLUSIONS: These findings collectively delineate an integrated zinc "acquisition-distribution-buffering" network in tea plants, offering a repertoire of candidate genes with potential utility in zinc biofortification breeding and improving acid soil adaptation. Further experimental validation, including tea transgenesis, zinc-stress qRT-PCR, and heterologous functional complementation, is essential to substantiate their biological roles.

Camellia sinensis

Metal ion resistance in fungi: molecular mechanisms and their regulated expression.

One stress response in cells is the ability to survive in an environment containing excessive concentrations of metal ions. This paper reviews current knowledge about cellular and molecular mechanisms involved in the response and adaptation of various fungal species to metal stress. Most cells contain a repertoire of mechanisms to maintain metal homeostasis and prevent metal toxicity. Roles played by glutathione, related (gamma-EC)nG peptides, metallothionein-like polypeptides, and sulfide ions are discussed. In response to cellular metal stress, the biosynthesis of some of these molecules are metalloregulated via intracellular metal sensors. The identify of the metal sensors and the role of metal ions in the regulation of biosynthesis of metallothionein and (gamma-EC)nG peptides are subjects of much current attention and are discussed herein.

Drug Resistance, Microbial

Battle for Metals: Regulatory RNAs at the Front Line.

Metal such as iron, zinc, manganese, and nickel are essential elements for bacteria. These nutrients are required in crucial structural and catalytic roles in biological processes, including precursor biosynthesis, DNA replication, transcription, respiration, and oxidative stress responses. While essential, in excess these nutrients can also be toxic. The immune system leverages both of these facets, to limit bacterial proliferation and combat invaders. Metal binding immune proteins reduce the bioavailability of metals at the infection sites starving intruders, while immune cells intoxicate pathogens by providing metals in excess leading to enzyme mismetallation and/or reactive oxygen species generation. In this dynamic metal environment, maintaining metal homeostasis is a critical process that must be precisely coordinated. To achieve this, bacteria utilize diverse metal uptake and efflux systems controlled by metalloregulatory proteins. Recently, small regulatory RNAs (sRNAs) have been revealed to be critical post-transcriptional regulators, working in conjunction with transcription factors to promote rapid adaptation and to fine-tune bacterial adaptation to metal abundance. In this mini review, we discuss the expanding role for sRNAs in iron homeostasis, but also in orchestrating adaptation to the availability of other metals like manganese and nickel. Furthermore, we describe the sRNA-mediated interdependency between metal homeostasis and oxidative stress responses, and how regulatory networks controlled by sRNAs contribute to survival and virulence.

Bacteria

Microbial membrane transporters reveal trace metal niche adaptation in distinct water masses of the Southern Ocean.

BACKGROUND: Trace metals are co-factors for enzymes that are essential for microbial metabolism and the cycling of major elements. Membrane transporters allow microbes to sense and react to trace elements in the environment and to balance their uptake and export for the regulation of intracellular metal homeostasis. The acquisition and efflux of trace metals could lead to reciprocal feedbacks between microbes and the surrounding environment. Whether these processes vary among trace metals and across habitats is presently not known. We used membrane transporters into and out of the cell as indicators for the uptake and efflux of trace metals and provide a detailed picture of the distribution of the respective genes in distinct provinces in surface waters and in subsurface water masses across a transect in the Southern Indian Ocean. RESULTS: We observed marked spatial and vertical patterns in normalized gene abundances of transporters of iron (Fe), manganese (Mn), nickel (Ni) and copper (Cu). Changes in gene abundances were specific to the type of transporter and trace metal, and pronounced differences between surface and specific water masses emerged. We found an enrichment in genes related to efflux and homeostasis of Fe, Ni and Cu in two water masses of the deep ocean that are North Atlantic Deep Water (NADW) and Lower Circumpolar Deep Water (LCDW). This pattern was observed on the community level and for metagenome-assembled genomes (MAGs) affiliated with Alteromonadaceae and Burkholderiaceae that were abundant in these two water masses. CONCLUSIONS: The enrichment in trace metal efflux and resistance genes points to microbially mediated processes, exerted by homeostasis, with potential influence on the trace metal speciation and distribution in specific water masses in the deep ocean. The gene repertoire and distinct distribution pattern of the taxa identified as potential key players could reflect an adaptation to these old water masses with trace metals acting as selective driver. Video Abstract.

Membrane Transport Proteins

Fluoride as a Modifier of Metallome Homeostasis: A Systematic Review of Animal Studies.

Fluoride is widely used for caries prevention due to its effects on mineralized tissues, yet its potential role as a modifier of systemic metal homeostasis remains insufficiently explored. This systematic review synthesizes preclinical evidence on the association between fluoride exposure and changes in metal and semi-metal concentrations across biological matrices. A comprehensive search strategy was conducted across major databases without language or date restrictions, following SyRF, CAMARADES and PRISMA 2020 guidelines. Thirty-one animal studies were included, encompassing multiple species, exposure conditions and analytical approaches. Despite substantial methodological heterogeneity, consistent patterns emerged. Fluoride exposure was associated with element-specific redistribution of the metallome rather than uniform change. Essential elements were predominantly depleted, most consistently zinc, copper and manganese, whereas the toxic metals lead and cadmium tended to be retained. This contrast between homeostatically regulated essential elements that are lost and non-regulated toxic metals that accumulate supports the hypothesis that fluoride differentially modifies the distribution and retention of co-existing elements. The novelty of this review lies in integrating metallomic outcomes across experimental models, highlighting fluoride as a potential systemic modulator rather than a tissue-specific agent. Although variability in study design and risk of bias limits causal inference, the consistent directionality of findings across models reinforces their biological plausibility and translational relevance.

Animals

Intracellular compartmentation of metals in aquatic organisms: roles in mechanisms of cell injury.

The intracellular compartmentation of essential and toxic metals is of intense scientific interest because of its potential for adding to our understanding of both normal homeostatic mechanisms for metals and of the mechanisms which underlie metal-induced cell injury. High-affinity metal-binding proteins, lysosomes, and precipitates such as inclusion bodies or concretions, play major roles in the regulation of divalent-metal cation bioavailability. The contribution of a given compartment toward metal homeostasis is dependent upon the level exposure, cell type, organ, species, and life cycle of the organism. Toxic metals may move between these compartments, but the rates and determinants of such exchanges have not been characterized. Available data clearly indicate that sequestration of toxic metals in these specialized compartments can produce profound disturbances in the subcellular handling of essential metals. Further studies of the mechanisms by which metals partition and/or transfer among these compartments are essential to understand and predict toxicity of this important class of toxic agents.

Animals

Acute exposure to formaldehyde induces hepatic metallothionein synthesis in mice.

Humans risk inadvertent intraperitoneal or intravenous exposure to formaldehyde (HCHO), commonly used for disinfection of implanted or extracorporeal medical devices. Various chemical and physical stresses are known to induce hepatic metallothionein. This study examined the effect of acute parenteral administration of HCHO on induction of hepatic metallothionein synthesis. Adult male CF1 mice were administered HCHO ip and hepatic metallothionein was quantified by the cadmium-radioassay method. HCHO (50 mg/kg) increased hepatic metallothionein as early as 8 hr after dosing with maximal levels (27-fold increase) occurring at 72 hr. Metallothionein concentrations were elevated (15-fold) 24 hr after 50 or 100 mg HCHO/kg but not at lower dosages. Concomitant elevations in hepatic zinc and copper content were observed. No increases in metallothionein were observed in kidney, pancreas, or intestine 24 hr after HCHO administration (100 mg/kg, ip). Induction of metallothionein by HCHO may reflect direct de novo synthesis since the response was abolished by pretreatment with the RNA synthesis inhibitor, actinomycin D. HCHO induction of metallothionein also does not appear to be mediated by stress-induced release of corticosteroids or catecholamines from the adrenal since the response was unaltered in adrenalectomized mice. Interference with the glutathione (GSH)-dependent oxidation of HCHO by reducing hepatic GSH concentrations to 40% of control after a 2-hr pretreatment with phorone decreased the metallothionein induction response to HCHO by 33%. This result suggests that the induction may be partially due to a HCHO metabolite, e.g., formate. Confirmation of metallothionein synthesis was obtained following spectral and chromatographic analysis. Thus, HCHO and/or a metabolite produces a marked increase in hepatic metallothionein and alters hepatic zinc and copper homeostasis, all of which are transient responses. Although HCHO was only mildly hepatotoxic at the highest dose (as evidenced by an increase in plasma alanine aminotransferase activity), such changes in metallothionein synthesis and essential metal homeostasis may be part of a cellular repair mechanism operant after acute toxic cell injury.

Animals

In vitro degradation of apo-, zinc-, and cadmium-metallothionein by cathepsins B, C, and D.

Metallothionein (MT) has been extensively studied over the past several years because of its probable role in endogenous metal homeostasis and cellular protection. A large body of knowledge now exists describing the physicochemical properties of MT as well as the mechanisms involved in MT induction. It has been well established that MT protects tissues from metal toxicity by chelating metals that would otherwise be available to interact with and disrupt vital cell functions. Information on the degradation of metal-saturated MT and the fate of the metals associated with it would be extremely important in predicting metal toxicity. Lysosomes have been targeted as a possible subcellular site for the turnover of MT; however, the susceptibility of MT to degradation by specific acidic proteases (i.e., cathepsins) has not been described. Therefore, the purpose of the present study was to examine the relative abilities of cathepsins B, C, and D to degrade Zn7-MT, Cd7-MT, and apo-MT in vitro. In so doing, the effects of metal species, degree of metal saturation, and pH on the degradation processes were evaluated. Time course experiments revealed that apo-MT was rapidly degraded by all three cathepsins. Cathepsin B degraded apo-MT approximately 36-fold more rapidly than cathepsin C and 45-fold more rapidly than cathepsin D. Therefore, under the in vitro conditions used in this study, the relative potency of the cathepsins tested was cathepsin B much much greater than cathepsin C greater than cathepsin D. In comparison, metal-saturated MT was more than 1000-fold more resistant to degradation by the cathepsins tested. In order to determine how much metal was needed to protect MT against degradation, apo-MT was reconstituted with increasing molar equivalents of Zn2+. The results suggest that as metal to apo-MT ratios increase, less apo-MT substrate is available to the protease and degradation decreases.

Animals

Metallothionein Mto gene of Drosophila melanogaster: structure and regulation.

We report the sequence of the Mto gene, one of the two known metallothionein genes of Drosophila melanogaster, and compare its structure with that of the other metallothionein gene, Mtn. The main structural features are the presence of a small intron (61 base-pairs), the presence of four potential MREs (metal regulatory elements) and the absence of a TATA box in the promoter region. Of all metals tested, Hg2+, Cd2+ and Cu2+ are the most efficient ions for inducing an increase in Mto gene transcription. The Mto and Mtn genes are differentially regulated during normal development. Transcription of Mto is detected early in embryogenesis (0 to 3 h) and persists to the third larval instar, while Mtn expression starts later in embryogenesis (12 to 15 h) and is thereafter maintained throughout larval development and adult stages. Sequencing of the Mto protein is in good agreement with the nucleic acid data. Surprisingly, attempts to isolate and characterize the Mtn protein were unsuccessful. Several lines of evidence suggest that this metallothionein is rapidly incorporated after its synthesis into lysosomes, where it would be processed in a way that would not permit its purification. The function of the Mtn protein thus appears to be mainly related to detoxification processes. The pattern of expression of Mto suggests that this gene may be involved in the control of metal homeostasis during development.

Amino Acid Sequence

Adaptation of the duodenum and ileum of the rat to mid-gut resection: enzyme activity and trace metal status.

Activities of the enzymes lactase, sucrase, maltase, alkaline phosphatase, and superoxide dismutase (SOD) were measured in mucosa of duodenum and ileum of the rat after 70% resection of mid-small intestine or sham operation (transection). We also measured the concentrations of zinc, copper, and manganese in several tissues to assess trace metal homeostasis postresection. Resection resulted in decreased specific activities of disaccharidases and alkaline phosphatase in duodenum, while specific activities remained unchanged in ileum. Specific activity of total SOD (the sum of Cu-Zn and Mn SOD) and Mn SOD was the same in duodenum after resection but was markedly increased in ileum. Tissue trace metal concentrations changed minimally. Because of postresection mucosal growth, total segmental activity of disaccharidases and alkaline phosphatase was the same in duodenum and increased in ileum of resected compared to transected rats. Segmental activity of total SOD and Mn SOD doubled in duodenum and trebled in ileum of resected as compared to transected rats. Thus, total segmental enzyme activity is maintained or increased postresection by increased enterocyte proliferation rate and mucosal growth.

Alkaline Phosphatase

Activation of delta-aminolevulinic acid dehydratase following donation of zinc from kidney metallothionein.

Metallothionein has been postulated to function in essential metal homeostasis. In this study, we demonstrate a 1.7-fold increase in purified bovine liver delta-aminolevulinic acid dehydratase (ALAD) activity following incubation with purified kidney Zn-thionein isolated from Zn-treated rats. The mechanism of enzyme activation, as demonstrated using 65Zn-labeled thionein, involves direct transfer of Zn from Zn-thionein to ALAD. These data support the hypothesis that metallothionein serves to regulate the intracellular bioavailability of essential cations, functioning as a reservoir or conduit through which metals are donated to enzymes which require them as cofactors.

Animals

Response to acute nickel toxicity in rats as a function of sex.

The effects of different nickel chloride doses upon blood and plasma glucose and essential metal homeostasis were studied in male and female rats. A definite sex-dependent response to injections of nickel has been observed for both the increase in plasma and blood glucose levels and the time at which these levels peak. Males showed a fast recovery from the rise in glucose levels and were much less affected by changes in the other parameters studied. In females, an extended rise in glucose levels was observed. All these effects are clearly nickel dose-dependent. Plasma, liver and kidney copper levels rose significantly in females while only a small decrease was observed in male kidneys. Zinc levels rose in all organs studied but males recovered to basal levels after the study period, whereas females maintained maximum levels at the end of the same period. An increase in urinary excretion of iron was observed. The present results show that the sex differences to acute nickel toxicity can be a helpful way to study metal interaction and discriminate between specific toxicity due to nickel or that induced by the associated hyperglucagonemia.

Animals