Related Experiment Video
Updated: Jun 1, 2026

Electric Cell-Substrate Sensing for Real-Time Evaluation of Metal-Organic Framework Toxicological Profiles
Published on: May 26, 2023
Proteome profiling reveals potential toxicity and detoxification pathways following exposure of BEAS-2B cells to
Yue Ge1, Maribel Bruno, Kathleen Wallace
1National Health and Environmental Effects Research Laboratory, U.S. Environmental Protection Agency, NC 27711, USA. Ge.yue@epa.gov
Abstract:
Oxidative stress is known to play important roles in engineered nanomaterial-induced cellular toxicity. However, the proteins and signaling pathways associated with the engineered nanomaterial-mediated oxidative stress and toxicity are largely unknown. To identify these toxicity pathways and networks that are associated with exposure to engineered nanomaterials, an integrated proteomic study was conducted using human bronchial epithelial cells, BEAS-2B and nanoscale titanium dioxide. Utilizing 2-DE and MS, we identified 46 proteins that were altered at protein expression levels. The protein changes detected by 2-DE/MS were verified by functional protein assays. These identified proteins include some key proteins involved in cellular stress response, metabolism, adhesion, cytoskeletal dynamics, cell growth, cell death, and cell signaling. The differentially expressed proteins were mapped using Ingenuity Pathway Analyses™ canonical pathways and Ingenuity Pathway Analyses tox lists to create protein-interacting networks and proteomic pathways. Twenty protein canonical pathways and tox lists were generated, and these pathways were compared to signaling pathways generated from genomic analyses of BEAS-2B cells treated with titanium dioxide. There was a significant overlap in the specific pathways and lists generated from the proteomic and the genomic data. In addition, we also analyzed the phosphorylation profiles of protein kinases in titanium dioxide-treated BEAS-2B cells for a better understanding of upstream signaling pathways in response to the titanium dioxide treatment and the induced oxidative stress. In summary, the present study provides the first protein-interacting network maps and novel insights into the biological responses and potential toxicity and detoxification pathways of titanium dioxide.
Insights
This study reveals key proteins and pathways involved in titanium dioxide nanoparticle toxicity in lung cells, offering insights into cellular responses and potential detoxification mechanisms.
Area of Science:
- Environmental toxicology
- Nanomaterial safety
- Cellular biology
Background:
- Engineered nanomaterials can cause cellular toxicity via oxidative stress.
- The specific proteins and signaling pathways mediating this toxicity remain largely unidentified.
Purpose of the Study:
- To identify protein networks and signaling pathways involved in engineered nanomaterial-induced oxidative stress and toxicity.
- To investigate the biological responses to nanoscale titanium dioxide (TiO2) in human bronchial epithelial cells (BEAS-2B).
Main Methods:
- Integrated proteomic analysis using 2-DE and MS to identify differentially expressed proteins.
- Functional protein assays to verify identified protein changes.
- Pathway analysis using Ingenuity Pathway Analyses™ (IPA) to map protein-interacting networks and canonical pathways.
- Genomic data comparison and analysis of protein kinase phosphorylation profiles.
Main Results:
- Identified 46 proteins altered in expression levels, involved in stress response, metabolism, adhesion, cytoskeletal dynamics, cell growth, cell death, and signaling.
- Generated 20 protein canonical pathways and tox lists, showing significant overlap with genomic data.
- Revealed upstream signaling pathways and phosphorylation profiles related to TiO2 treatment and oxidative stress.
Conclusions:
- Provides the first protein-interacting network maps for TiO2 exposure in lung cells.
- Offers novel insights into biological responses, potential toxicity, and detoxification pathways associated with TiO2 nanoparticles.
- Highlights the interplay between proteomic and genomic data in understanding nanomaterial-induced cellular effects.
Related Concept Videos
Bioactivation and Tissue Toxicity
Toxic Reactions: Overview
Toxicity falls into two primary categories: local and systemic.
Local toxicity appears at the exposure site, such as protein denaturation caused by caustic substances.
In contrast, systemic toxicity requires the toxic agent's absorption and distribution,...

