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Autophagy is a cell self-protective mechanism against arsenic-induced cell transformation
Tao Zhang1, Yuanlin Qi, Mingjun Liao
1Department of Internal Medicine, University of Kentucky College of Medicine, Lexington, Kentucky 40536, USA.
Abstract:
Subchronic exposure to arsenic increases the incidence of human cancers such as skin, lung, colon, and rectal cancer. The mechanism for arsenic-induced tumorigenesis is still not clear. It is generally believed that DNA damage and genomic instability, generated by arsenic-promoted oxidative stress, account largely for this process. The major sources of reactive oxygen species (ROS) are arsenic-damaged mitochondria. Autophagy is a catabolic process functioning in turnover of long-lived proteins and dysfunctional organelles such as mitochondria. Defects of autophagy under stress conditions promote genomic instability and increase the risk of tumorigenesis. In the present study using a human bronchial epithelial cell line, BEAS-2B cells, we investigated the role of autophagy in arsenic-induced cell transformation, an important step in arsenic tumorigenesis. Our results show that subchronic arsenic exposure induces BEAS-2B cell transformation accompanied with increased ROS generation and autophagy activation. However, the patterns for ROS and autophagy alteration are different. Arsenic exposure generated a prolonged and steady increase of ROS levels, whereas the activation of autophagy, after an initial boost by arsenic administration, decreases in response to subchronic arsenic exposure, although the activity is still higher than a nontreated control. Further stimulation of autophagy increases mitochondria turnover and decreases ROS generation and arsenic-induced cell transformation. Contrarily, inhibition of autophagy activity decreases mitochondria turnover and enhances arsenic-induced ROS generation and cell transformation. In addition, the mammalian target of rapamycin signaling pathway is involved in arsenic-mediated autophagy activation. Our results suggest that autophagy is a cell self-protective mechanism against arsenic-induced cell transformation.
Insights
Autophagy, a cellular process, protects against arsenic-induced cell transformation by clearing damaged mitochondria. Activating autophagy reduces reactive oxygen species (ROS) and cancer risk.
Area of Science:
- Environmental toxicology
- Cellular biology
- Cancer research
Background:
- Arsenic exposure is linked to increased cancer incidence, including lung and colon cancer.
- Oxidative stress and DNA damage from arsenic are implicated in tumorigenesis, with mitochondria as a key source of reactive oxygen species (ROS).
- Autophagy, a cellular degradation process, is crucial for removing damaged mitochondria and maintaining genomic stability.
Purpose of the Study:
- To investigate the role of autophagy in arsenic-induced cell transformation in human bronchial epithelial cells (BEAS-2B).
- To elucidate the relationship between arsenic exposure, ROS generation, autophagy activation, and cell transformation.
Main Methods:
- Subchronic exposure of BEAS-2B cells to arsenic.
- Measurement of ROS levels and autophagy activity.
- Assessment of cell transformation.
- Manipulation of autophagy activity (stimulation and inhibition).
- Investigation of the mammalian target of rapamycin (mTOR) signaling pathway.
Main Results:
- Subchronic arsenic exposure increased ROS and initially activated autophagy, but autophagy levels decreased with prolonged exposure.
- Enhanced autophagy reduced ROS and arsenic-induced cell transformation.
- Inhibited autophagy increased ROS and enhanced cell transformation.
- The mTOR pathway was involved in arsenic-mediated autophagy activation.
Conclusions:
- Autophagy acts as a protective mechanism against arsenic-induced cell transformation.
- Modulating autophagy could be a therapeutic strategy to mitigate arsenic's carcinogenic effects.
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