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Updated: Jun 26, 2026

In Vitro Scratch Assay to Demonstrate Effects of Arsenic on Skin Cell Migration
Published on: February 23, 2019
Pathogenesis, clinical features and pathology of chronic arsenicosis
Sujit Ranjan Sengupta1, Nilay Kanti Das, Pijush Kanti Datta
1Department of Dermatology, Medical College, Kolkata, India.
Abstract:
Arsenicosis is a multisystem disorder, with virtually no system spared from its vicious claw; though its predominant manifestations are linked to cutaneous involvement. Cutaneous effects take the form of pigmentary changes, hyperkeratosis, and skin cancers (Bowen's disease, squamous cell carcinoma, and basal cell epithelioma). Peripheral vascular disease (blackfoot disease), hypertension, ischemic heart disease, noncirrhotic portal hypertension, hepatomegaly, peripheral neuropathy, respiratory and renal involvement, bad obstetrical outcome, hematological disturbances, and diabetes mellitus are among the other clinical features linked to arsenic toxicity. The effects are mediated principally by the trivalent form of arsenic (arsenite), which by its ability to bind with sulfhydryl groups present in various essential compounds leads to inactivation and derangement of body function. Though the toxicities are mostly linked to the trivalent state, arsenic is consumed mainly in its pentavalent form (arsenate), and reduction of arsenate to arsenite is mediated through glutathione. Body attempts to detoxify the agent via repeated oxidative methylation and reduction reaction, leading to the generation of methylated metabolites, which are excreted in the urine. Understandably the detoxification/bio-inactivation process is not a complete defense against the vicious metalloid, and it can cause chromosomal aberration, impairment of DNA repair process, alteration in the activity of tumor suppressor gene, etc., leading to genotoxicity and carcinogenicity. Arsenic causes apoptosis via free radical generation, and the cutaneous toxicity is linked to its effect on various cytokines (e.g., IL-8, TGF-beta, TNF-alpha, GM-CSF), growth factors, and transcription factors. Increased expression of cytokeratins, keratin-16 (marker for hyperproliferation) and keratin-8 and -18 (marker for less differentiated epithelial cells), can be related to the histopathological findings of hyperkeratosis and dysplastic cells in the arsenicosis skin lesion.
Insights
Arsenic exposure causes multisystemic arsenicosis, primarily affecting the skin with pigmentary changes, hyperkeratosis, and cancers. Arsenic toxicity, mainly from arsenite, disrupts cellular functions and can lead to genotoxicity and apoptosis.
Area of Science:
- Toxicology
- Dermatology
- Environmental Health
Background:
- Arsenicosis is a severe multisystem disorder resulting from arsenic exposure.
- Cutaneous manifestations, including pigmentary changes, hyperkeratosis, and skin cancers, are predominant.
- Arsenic toxicity affects multiple organs, leading to conditions like peripheral vascular disease, hypertension, and diabetes mellitus.
Purpose of the Study:
- To elucidate the mechanisms of arsenic toxicity and its diverse clinical manifestations.
- To highlight the role of trivalent arsenic (arsenite) in cellular dysfunction.
- To explain the genotoxic and carcinogenic potential of arsenic exposure.
Main Methods:
- Review of existing literature on arsenicosis pathophysiology and clinical features.
- Analysis of the biochemical pathways involved in arsenic metabolism and detoxification.
- Examination of the molecular mechanisms underlying arsenic-induced cellular damage, apoptosis, and carcinogenesis.
Main Results:
- Arsenic toxicity is primarily mediated by arsenite, which binds to sulfhydryl groups, disrupting essential cellular functions.
- Detoxification pathways involving methylation and reduction are insufficient to prevent arsenic's harmful effects, including genotoxicity.
- Cutaneous toxicity is linked to arsenic's impact on cytokines, growth factors, and transcription factors, leading to characteristic histopathological findings.
Conclusions:
- Arsenic exposure poses a significant threat, causing widespread organ damage and increasing cancer risk.
- Understanding arsenic's molecular mechanisms is crucial for developing effective prevention and treatment strategies.
- Further research into arsenic's interaction with cellular pathways can inform public health interventions for arsenicosis.
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