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AKT/mTOR and c-Jun N-terminal kinase signaling pathways are required for chrysotile asbestos-induced autophagy
Ziying Lin1, Tie Liu2, David W Kamp3
1Clinical Research Center, Affiliated Hospital of Guangdong Medical College, Zhanjiang 524001, China.
Abstract:
Chrysotile asbestos is closely associated with excess mortality from pulmonary diseases such as lung cancer, mesothelioma, and asbestosis. Although multiple mechanisms in which chrysotile asbestos fibers induce pulmonary disease have been identified, the role of autophagy in human lung epithelial cells has not been examined. In this study, we evaluated whether chrysotile asbestos induces autophagy in A549 human lung epithelial cells and then analyzed the possible underlying molecular mechanism. Chrysotile asbestos induced autophagy in A549 cells based on a series of biochemical and microscopic autophagy markers. We observed that asbestos increased expression of A549 cell microtubule-associated protein 1 light chain 3 (LC3-II), an autophagy marker, in conjunction with dephosphorylation of phospho-AKT, phospho-mTOR, and phospho-p70S6K. Notably, AKT1/AKT2 double-knockout murine embryonic fibroblasts (MEFs) had negligible asbestos-induced LC3-II expression, supporting a crucial role for AKT signaling. Chrysotile asbestos also led to the phosphorylation/activation of Jun N-terminal kinase (JNK) and p38 MAPK. Pharmacologic inhibition of JNK, but not p38 MAPK, dramatically inhibited the protein expression of LC3-II. Moreover, JNK2(-/-) MEFs but not JNK1(-/-) MEFs blocked LC3-II levels induced by chrysotile asbestos. In addition, N-acetylcysteine, an antioxidant, attenuated chrysotile asbestos-induced dephosphorylation of P-AKT and completely abolished phosphorylation/activation of JNK. Finally, we demonstrated that chrysotile asbestos-induced apoptosis was not affected by the presence of the autophagy inhibitor 3-methyladenine or autophagy-related gene 5 siRNA, indicating that the chrysotile asbestos-induced autophagy may be adaptive rather than prosurvival. Our findings demonstrate that AKT/mTOR and JNK2 signaling pathways are required for chrysotile asbestos-induced autophagy. These data provide a mechanistic basis for possible future clinical applications targeting these signaling pathways in the management of asbestos-induced lung disease.
Insights
Chrysotile asbestos exposure triggers autophagy in lung cells via AKT/mTOR and JNK2 pathways. This asbestos-induced autophagy appears adaptive, not survival-promoting, offering new therapeutic targets for lung disease.
Area of Science:
- Cell Biology
- Toxicology
- Molecular Biology
Background:
- Chrysotile asbestos is linked to severe pulmonary diseases, including lung cancer and mesothelioma.
- The mechanisms by which asbestos fibers cause lung damage are partially understood, but the role of autophagy in human lung epithelial cells remains unclear.
Purpose of the Study:
- To investigate if chrysotile asbestos induces autophagy in human lung epithelial cells (A549).
- To elucidate the molecular mechanisms underlying asbestos-induced autophagy, focusing on signaling pathways.
Main Methods:
- Assessed autophagy markers (LC3-II) in A549 cells exposed to chrysotile asbestos.
- Utilized knockout cell models (AKT1/AKT2, JNK1/JNK2) and pharmacologic inhibitors (JNK, p38 MAPK).
- Examined the role of reactive oxygen species using an antioxidant (N-acetylcysteine).
- Investigated the impact of autophagy inhibition on asbestos-induced apoptosis.
Main Results:
- Chrysotile asbestos induced autophagy in A549 cells, evidenced by increased LC3-II.
- Asbestos exposure led to AKT/mTOR pathway dephosphorylation and JNK/p38 MAPK pathway activation.
- AKT signaling and specifically JNK2 were crucial for asbestos-induced autophagy.
- Antioxidant treatment partially reversed asbestos effects on AKT and JNK.
- Autophagy inhibition did not affect asbestos-induced apoptosis, suggesting an adaptive role.
Conclusions:
- Chrysotile asbestos induces autophagy in lung epithelial cells through AKT/mTOR and JNK2 signaling pathways.
- Asbestos-induced autophagy is likely an adaptive response, not a pro-survival mechanism.
- These findings identify potential therapeutic targets within these signaling pathways for managing asbestos-related lung diseases.
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