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Published on: November 10, 2021
ROS-ERK Pathway as Dual Mediators of Cellular Injury and Autophagy-Associated Adaptive Response in Urinary
Jian-Kun Deng1, Xueqin Zhang2, Hong-Luan Wu1
1Institute of Nephrology, Zhanjiang Key Laboratory of Prevention and Management of Chronic Kidney Disease, Guangdong Medical University, Zhanjiang, Guangdong 524001, China.
Abstract:
ERK, an extracellular signal-regulated protein kinase, is involved in various biological responses, such as cell proliferation and differentiation, cell morphology maintenance, cytoskeletal construction, apoptosis, and canceration of cells. In this study, we focused on ERK pathway on cellular injury and autophagy-associated adaptive response in urinary protein-irritated renal tubular epithelial cells and explored the potential mechanisms underlying it. By using antioxidants N-acetylcysteine and catalase, we found that ERK pathway was activated by a reactive oxygen species- (ROS-) dependent mechanism after exposure to urinary proteins. What is more, ERK inhibitor U0126 could decrease the release of neutrophil gelatinase-associated lipocalin (NGAL), kidney injury molecule-1 (KIM-1), and the number of apoptotic cells induced by urinary proteins, indicating the damaging effects of ERK pathway in mediating cellular injury and apoptosis in HK-2 cells. Interestingly, we also found that the increased expression of microtubule-associated protein 1 light chain 3 (LC3)-II (a key marker of autophagy) and the decreased expression of p62 (autophagic substrate) induced by urinary proteins were reversed by U0126, suggesting autophagy was activated by ERK pathway. Furthermore, rapamycin reduced urinary protein-induced NGAL and KIM-1 secretion and cell growth inhibition, while chloroquine played the opposite effect, indicating that autophagy activation by ERK pathway was an adaptive response in the exposure to urinary proteins. Taken together, our results indicate that activated ROS-ERK pathway can induce cellular injury and in the meantime provide an autophagy-associated adaptive response in urinary protein-irritated renal tubular epithelial cells.
Insights
The reactive oxygen species- (ROS-) extracellular signal-regulated kinase (ERK) pathway activates autophagy as an adaptive response to urinary protein-induced kidney injury, despite also mediating cellular damage.
Area of Science:
- Cell Biology
- Renal Physiology
- Molecular Mechanisms of Disease
Background:
- Extracellular signal-regulated kinase (ERK) is crucial for cellular processes like proliferation, differentiation, and apoptosis.
- Urinary proteins can cause renal tubular epithelial cell injury, but the underlying mechanisms involving ERK and adaptive responses are not fully understood.
Purpose of the Study:
- To investigate the role of the ERK pathway in cellular injury and autophagy-associated adaptive responses in renal tubular epithelial cells exposed to urinary proteins.
- To elucidate the mechanisms linking reactive oxygen species (ROS), ERK activation, and autophagy in this context.
Main Methods:
- Utilized antioxidants (N-acetylcysteine, catalase) and an ERK inhibitor (U0126) in HK-2 cells exposed to urinary proteins.
- Assessed markers of kidney injury (NGAL, KIM-1), apoptosis, and autophagy (LC3-II, p62).
- Investigated the effects of autophagy modulators (rapamycin, chloroquine).
Main Results:
- Urinary protein exposure activated the ERK pathway in a ROS-dependent manner.
- ERK inhibition reduced urinary protein-induced NGAL, KIM-1 release, and apoptosis.
- ERK inhibition reversed the induction of autophagy markers (LC3-II, p62) by urinary proteins.
- Autophagy activation (rapamycin) ameliorated injury markers, while inhibition (chloroquine) worsened them.
Conclusions:
- The ROS-ERK pathway mediates cellular injury and apoptosis in renal tubular epithelial cells exposed to urinary proteins.
- ERK-mediated activation of autophagy serves as an adaptive response to mitigate urinary protein-induced cellular stress.
- Targeting the ROS-ERK-autophagy axis may offer therapeutic strategies for proteinuric kidney diseases.
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