AI Article Synopsis

  • A new thiol-modified nanoporous silica material (SH-SAMMS) has been developed to effectively capture heavy metals for oral detoxification in cases of poisoning.
  • SH-SAMMS demonstrated high efficiency in binding heavy metals like methyl mercury, lead, and cadmium in both simulated gastrointestinal environments and in animal studies, outperforming existing treatments.
  • The material was found to be safe for intestinal cells and beneficial in reducing blood levels of heavy metals in rats, while also minimizing weight loss and organ retention of these toxins, showing promise for future therapeutic use.

Article Abstract

We have developed a thiol-modified nanoporous silica material (SH-SAMMS) as an oral therapy for the prevention and treatment of heavy metal poisoning. SH-SAMMS has been reported to be highly efficient at capturing heavy metals in biological fluids and water. Herein, SH-SAMMS was examined for efficacy and safety in both in vitro and in vivo animal models for the oral detoxification of heavy metals. In simulated gastrointestinal fluids, SH-SAMMS had a very high affinity (Kd) for methyl mercury (MeHg(I)), inorganic mercury (Hg(II)), lead (Pb(II)), and cadmium (Cd(II)) and was superior to other SAMMS with carboxylic acid or phosphonic acid ligands or commercially available metal chelating sorbents. SH-SAMMS also effectively removed Hg from biologically digested fish tissue with no effect on most nutritional minerals found in fish. SH-SAMMS could hold Hg(II) and MeHg(I) tightly inside the nanosize pores, thus preventing bacteria from converting them to more absorbable forms. Rats fed a diet containing MeHg(I), Cd(II), and Pb(II) and SH-SAMMS for 2 weeks had blood Hg levels significantly lower than rats fed the metal-rich diet only. Upon cessation of the metal-rich diet, continued administration of SH-SAMMS for 2 weeks facilitated faster and more extensive clearance of Hg than in animals not continued on oral SH-SAMMS. Rats receiving SH-SAMMS also suffered less weight loss as a result of the metal exposure. Retention of Hg and Cd in major organs was lowest in rats fed with SH-SAMMS throughout the entire four weeks. The reduction of blood Pb by SH-SAMMS was significant. SH-SAMMS was safe to intestinal epithelium model (Caco-2) and common intestinal bacteria (Escherichia coli). Altogether, it has great potential as a new oral drug for the treatment of heavy metal poisoning. This new application is enabled by the installation of tailored interfacial chemistry upon nontoxic nanoporous materials.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4004256PMC
http://dx.doi.org/10.1021/am5007707DOI Listing

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Article Synopsis
  • A new thiol-modified nanoporous silica material (SH-SAMMS) has been developed to effectively capture heavy metals for oral detoxification in cases of poisoning.
  • SH-SAMMS demonstrated high efficiency in binding heavy metals like methyl mercury, lead, and cadmium in both simulated gastrointestinal environments and in animal studies, outperforming existing treatments.
  • The material was found to be safe for intestinal cells and beneficial in reducing blood levels of heavy metals in rats, while also minimizing weight loss and organ retention of these toxins, showing promise for future therapeutic use.
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Electrochemical sensors have great potential for environmental monitoring of toxic metal ions in waters due to their portability, field-deployability and excellent detection limits. However, electrochemical sensors employing mercury-free approaches typically suffer from binding competition for metal ions and fouling by organic substances and surfactants in natural waters, making sample pretreatments such as wet ashing necessary. In this work, we have developed mercury-free sensors by coating a composite of thiol self-assembled monolayers on mesoporous supports (SH-SAMMS) and Nafion on glassy-carbon electrodes.

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The anodic stripping voltammetry at a carbon paste electrode modified with thiol terminated self-assembled monolayer on mesoporous silica (SH-SAMMS) provides a new sensor for simultaneous detection of lead (Pb2+) and mercury (Hg2+) in aqueous solutions. The overall analysis involved a two-step procedure: an accumulation step at open circuit, followed by medium exchange to a pure electrolyte solution for the stripping analysis. Factors affecting the performance of the SH-SAMMS modified electrodes were investigated, including electrode activation and regeneration, electrode composition, preconcentration time, electrolysis time, and composition of electrolysis and stripping media.

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