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In Vitro Scratch Assay to Demonstrate Effects of Arsenic on Skin Cell Migration
Published on: February 23, 2019
Deficient arsenic methylation and global proteomic reprogramming in human keratinocytes during arsenic-induced skin
Alexandra N Nail1,2, Mayukh Banerjee1,2, Manting Xu1
1Department of Pharmacology and Toxicology, University of Louisville, Louisville, KY, USA.
Abstract:
Chronic inorganic arsenic (iAs) exposure affects > 220 million people worldwide and skin cancer is a hallmark of long-term iAs exposure. Limited information exists regarding arsenic methylation by human keratinocytes and how methylation influences skin carcinogenesis. Inorganic arsenite (iAsIII) and its methylated metabolites disrupt diverse zinc finger proteins, leading to differential toxicity patterns. We examined arsenic methylation capacity in non-malignant human keratinocytes and interrogated proteomic remodeling across three stages of iAsIII induced malignant transformation using the well-established preclinical HaCaT model. Arsenic methylation was assessed by hydride generation cryotrapping inductively coupled-mass spectrometry and global proteomic changes were analyzed by tandem-mass tagging liquid chromatography-tandem mass spectrometry. Primary, hTERT-immortalized and HaCaT human keratinocytes exhibited negligible arsenic methylation, with iAsIII comprising at least 98.5% of total intracellular arsenic, attributable to minimal expression of arsenite methyltransferase. Proteomic profiling identified over 275 differentially expressed proteins at each stage of transformation, including multiple zinc finger proteins implicated in cell cycle control, RNA metabolism, and genome stability. Ingenuity® Pathway Analysis revealed progressive, coordinated disruption of cancer-associated pathways and regulatory networks over the transformation timeline, including zinc-coordinating upstream regulators that may explain widespread pathway dysregulation. Collectively, our findings suggest that iAsIII promotes skin carcinogenesis by disrupting C3H1- and C4-type zinc finger protein-centered regulatory networks that coordinate cancer-associated signaling and metabolic pathways in human keratinocytes, highlighting key candidates for future mechanistic studies.
Insights
Chronic inorganic arsenic (iAs) exposure promotes skin cancer by disrupting zinc finger proteins in human keratinocytes. These cells show minimal arsenic methylation, indicating iAs toxicity is driven by direct protein disruption, not metabolites.
Area of Science:
- Toxicology
- Dermatology
- Molecular Biology
Background:
- Chronic inorganic arsenic (iAs) exposure affects over 220 million people globally.
- Skin cancer is a known consequence of long-term iAs exposure.
- The role of arsenic methylation in human keratinocytes and skin carcinogenesis is poorly understood.
Purpose of the Study:
- To investigate arsenic methylation capacity in human keratinocytes.
- To analyze proteomic changes during inorganic arsenite (iAsIII)-induced malignant transformation in a HaCaT cell model.
- To identify key molecular pathways and proteins dysregulated by iAsIII.
Main Methods:
- Arsenic methylation was quantified using hydride generation cryotrapping inductively coupled-mass spectrometry.
- Global proteomic profiles were analyzed using tandem-mass tagging liquid chromatography-tandem mass spectrometry.
- Ingenuity® Pathway Analysis was employed to interpret proteomic data and identify disrupted pathways.
Main Results:
- Human keratinocytes (primary, hTERT-immortalized, and HaCaT) exhibited negligible arsenic methylation, with iAsIII constituting over 98.5% of intracellular arsenic.
- Proteomic profiling revealed over 275 differentially expressed proteins at each stage of malignant transformation.
- Progressive disruption of cancer-associated pathways, including those involving zinc finger proteins, was observed during transformation.
Conclusions:
- Human keratinocytes have a limited capacity to methylate inorganic arsenic.
- Inorganic arsenite (iAsIII) promotes skin carcinogenesis primarily by disrupting zinc finger protein-centered regulatory networks.
- Dysregulation of C3H1- and C4-type zinc finger proteins impacts cell cycle control, RNA metabolism, and genome stability, contributing to skin cancer development.
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