Related Experiment Video
Updated: Mar 15, 2026

Author Spotlight: Advances in Evaluating Human Lung Epithelial Cells' Response to Metal-Organic Frameworks
Published on: May 26, 2023
Proteomic Assessment of Biochemical Pathways That Are Critical to Nickel-Induced Toxicity Responses in Human
Yue Ge1, Maribel Bruno1, Najwa Haykal-Coates1
1National Health and Environmental Effects Research Laboratory, US Environmental Protection Agency, Durham, NC, 27711, United States of America.
Abstract:
Understanding the mechanisms underlying toxicity initiated by nickel, a ubiquitous environmental contaminant and known human carcinogen is necessary for proper assessment of its risks to human and environment. Among a variety of toxic mechanisms, disruption of protein responses and protein response-based biochemical pathways represents a key mechanism through which nickel induces cytotoxicity and carcinogenesis. To identify protein responses and biochemical pathways that are critical to nickel-induced toxicity responses, we measured cytotoxicity and changes in expression and phosphorylation status of 14 critical biochemical pathway regulators in human BEAS-2B cells exposed to four concentrations of nickel using an integrated proteomic approach. A subset of the pathway regulators, including interleukin-6, and JNK, were found to be linearly correlated with cell viability, and may function as molecular determinants of cytotoxic responses of BEAS-2B cells to nickel exposures. In addition, 128 differentially expressed proteins were identified by two dimensional electrophoresis (2-DE) and mass spectrometry. Principal component analysis, hierarchical cluster analyses, and ingenuity signaling pathway analysis (IPA) identified putative nickel toxicity pathways. Some of the proteins and pathways identified have not previously been linked to nickel toxicity. Based on the consistent results obtained from both ELISA and 2-DE proteomic analysis, we propose a core signaling pathway regulating cytotoxic responses of human BEAS-2B cells to nickel exposures, which integrates a small set of proteins involved in glycolysis and gluconeogenesis pathways, apoptosis, protein degradation, and stress responses including inflammation and oxidative stress.
Insights
Nickel exposure causes cell damage and cancer by disrupting protein responses. This study identified key proteins and pathways, including inflammation and oxidative stress, that regulate nickel toxicity in human cells.
Area of Science:
- Environmental Toxicology
- Proteomics
- Carcinogenesis
Background:
- Nickel is a common environmental contaminant and a known human carcinogen.
- Disruption of protein responses is a key mechanism in nickel-induced cytotoxicity and carcinogenesis.
- Understanding these mechanisms is crucial for assessing nickel's risks.
Purpose of the Study:
- To identify critical protein responses and biochemical pathways involved in nickel toxicity.
- To investigate the correlation between specific pathway regulators and cell viability.
- To elucidate the core signaling pathway regulating nickel-induced cytotoxicity.
Main Methods:
- Integrated proteomic approach using ELISA and two-dimensional electrophoresis (2-DE) coupled with mass spectrometry.
- Measurement of cytotoxicity and changes in expression/phosphorylation of 14 critical pathway regulators in human BEAS-2B cells exposed to nickel.
- Bioinformatic analyses including Principal Component Analysis, Hierarchical Clustering, and Ingenuity Pathway Analysis (IPA).
Main Results:
- Interleukin-6 (IL-6) and c-Jun N-terminal kinase (JNK) levels linearly correlated with cell viability.
- 128 differentially expressed proteins were identified, with some not previously linked to nickel toxicity.
- Putative nickel toxicity pathways were identified, integrating glycolysis, gluconeogenesis, apoptosis, protein degradation, inflammation, and oxidative stress.
Conclusions:
- A core signaling pathway regulating nickel-induced cytotoxicity in human BEAS-2B cells was proposed.
- This pathway involves proteins in metabolic processes, cell death, protein turnover, and stress responses.
- The findings provide novel insights into nickel's toxicological mechanisms and potential biomarkers.
More Related Videos
06:32Development of Human Renal Tubular Epithelial Cell Primary Cultures in Monolayers and Three-Dimensional Conditions
Published on: June 13, 2025
08:23Real-Time Impedance-based Cell Analyzer as a Tool to Delineate Molecular Pathways Involved in Neurotoxicity and Neuroprotection in a Neuronal Cell Line
Published on: August 9, 2014