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High Content Screening Analysis to Evaluate the Toxicological Effects of Harmful and Potentially Harmful Constituents HPHC
Published on: May 10, 2016
Systematic network assessment of the carcinogenic activities of cadmium
Peizhan Chen1, Xiaohua Duan1, Mian Li1
1Key Laboratory of Food Safety Research, Institute for Nutritional Sciences, Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, Shanghai, China.
Abstract:
Cadmium has been defined as type I carcinogen for humans, but the underlying mechanisms of its carcinogenic activity and its influence on protein-protein interactions in cells are not fully elucidated. The aim of the current study was to evaluate, systematically, the carcinogenic activity of cadmium with systems biology approaches. From a literature search of 209 studies that performed with cellular models, 208 proteins influenced by cadmium exposure were identified. All of these were assessed by Western blotting and were recognized as key nodes in network analyses. The protein-protein functional interaction networks were constructed with NetBox software and visualized with Cytoscape software. These cadmium-rewired genes were used to construct a scale-free, highly connected biological protein interaction network with 850 nodes and 8770 edges. Of the network, nine key modules were identified and 60 key signaling pathways, including the estrogen, RAS, PI3K-Akt, NF-κB, HIF-1α, Jak-STAT, and TGF-β signaling pathways, were significantly enriched. With breast cancer, colorectal and prostate cancer cellular models, we validated the key node genes in the network that had been previously reported or inferred form the network by Western blotting methods, including STAT3, JNK, p38, SMAD2/3, P65, AKT1, and HIF-1α. These results suggested the established network was robust and provided a systematic view of the carcinogenic activities of cadmium in human.
Insights
This study reveals cadmium's carcinogenic mechanisms by mapping its impact on protein interactions. Systems biology approaches identified key pathways involved in human cancers like breast, colorectal, and prostate cancer.
Area of Science:
- Environmental Toxicology
- Molecular Biology
- Systems Biology
Background:
- Cadmium is a human carcinogen, but its mechanisms and effects on protein interactions remain unclear.
- Understanding cadmium's cellular impact is crucial for cancer research.
Purpose of the Study:
- To systematically evaluate cadmium's carcinogenic activity using systems biology.
- To elucidate cadmium's influence on protein-protein interactions and signaling pathways.
Main Methods:
- Literature search of 209 studies on cellular models.
- Identification and Western blotting of 208 cadmium-influenced proteins.
- Construction and analysis of protein-protein interaction networks using NetBox and Cytoscape.
Main Results:
- A robust network of 850 nodes and 8770 edges was constructed, highlighting cadmium's rewiring of gene interactions.
- Nine key modules and 60 enriched signaling pathways (e.g., estrogen, RAS, PI3K-Akt, NF-κB, HIF-1α, Jak-STAT, TGF-β) were identified.
- Key genes (STAT3, JNK, p38, SMAD2/3, P65, AKT1, HIF-1α) were validated in breast, colorectal, and prostate cancer models.
Conclusions:
- The study provides a systematic view of cadmium's carcinogenic activities in human cells.
- The established network offers insights into cadmium-induced cellular changes and potential therapeutic targets.
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