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Proteome profiling of cadmium-induced apoptosis by antibody array analyses in human bronchial epithelial cells
Yan-Ming Xu1, Dan-Dan Wu1, Wei Zheng1
1Laboratory of Cancer Biology and Epigenetics, Department of Cell Biology and Genetics, Shantou University Medical College, Shantou, Guangdong, P. R. China.
Abstract:
Protein array technology is a powerful platform for the simultaneous determination of the expression levels of a number of proteins as well as post-translational modifications such as phosphorylation. Here, we screen and report for the first time, the dominant signaling cascades and apoptotic mediators during the course of cadmium (Cd)-induced cytotoxicity in human bronchial epithelial cells (BEAS-2B) by antibody array analyses. Proteins from control and Cd-treated cells were captured on Proteome Profiler™ Arrays for the parallel determination of the relative levels of protein phosphorylation and proteins associated with apoptosis. Our results indicated that the p38 MAPK- and JNK-related signal transduction pathways were dramatically activated by Cd treatment. Cd potently stimulates the phosphorylations of p38α (MAPK14), JNK1/2 (MAPK8/9), and JUN; while the phosphorylations of Akt1, ERK1/2 (MAPK3/1), GSK3β, and mTOR were suppressed. Moreover, there was an induction of proapoptotic protein BAX, release of cytochrome c (CYCS) from mitochondria, activation of caspase-3/9 (CASP3/9); as well as decreased expression of cell cycle checkpoint proteins (TP53, p21, and p27) and several inhibitors of apoptosis proteins (IAPs) [including cIAP-1/2 (BIRC2/3), XIAP (BIRC4), and survivin (BIRC5)]. Pretreatment of cells with the thiol antioxidant glutathione or p38 MAPK/JNK inhibitors before Cd treatment effectively abrogated ROS activation of p38 MAPK/JNK pathways and apoptosis-related proteins. Taken together, our results demonstrate that Cd causes oxidative stress-induced apoptosis; and the p38 MAPK/JNK and mitochondrial pathways are more importantly participated for signal transduction and the induction of apoptosis in Cd-exposed human lung cells.
Insights
Cadmium exposure activates p38 MAPK and JNK pathways, inducing apoptosis in human lung cells via oxidative stress. Antioxidants and pathway inhibitors mitigate these effects, highlighting key signaling cascades in cadmium toxicity.
Area of Science:
- Cell Biology
- Toxicology
- Molecular Biology
Background:
- Protein array technology enables simultaneous analysis of protein expression and post-translational modifications.
- Cadmium (Cd) is a toxic heavy metal with known adverse effects on cellular function.
- Understanding Cd-induced signaling and apoptosis is crucial for lung cell protection.
Purpose of the Study:
- To identify dominant signaling cascades and apoptotic mediators in human bronchial epithelial cells (BEAS-2B) following cadmium exposure.
- To elucidate the role of oxidative stress and specific pathways in Cd-induced cytotoxicity.
- To investigate potential protective mechanisms against Cd toxicity.
Main Methods:
- Utilized antibody array analyses (Proteome Profiler™ Arrays) to screen protein phosphorylation and apoptosis-related proteins.
- Compared protein profiles from control and Cd-treated BEAS-2B cells.
- Investigated the effects of glutathione and p38 MAPK/JNK inhibitors on Cd-induced cellular responses.
Main Results:
- Cadmium treatment significantly activated p38 MAPK and JNK signaling pathways.
- Cd exposure induced pro-apoptotic proteins (BAX), cytochrome c release, and caspase activation.
- Suppressed phosphorylation of Akt1, ERK1/2, GSK3β, and mTOR; decreased cell cycle proteins and inhibitors of apoptosis proteins (IAPs).
- Glutathione and pathway inhibitors abrogated ROS activation and apoptosis.
Conclusions:
- Cadmium induces apoptosis in human lung cells primarily through oxidative stress, activating p38 MAPK/JNK and mitochondrial pathways.
- These pathways are critical for signal transduction and apoptosis induction in Cd-exposed lung cells.
- Targeting these pathways or employing antioxidants may offer protective strategies against cadmium toxicity.

