Pharmacological Activation of Nrf2 by Rosolic Acid Attenuates Endoplasmic Reticulum Stress in Endothelial Cells.
Karan Naresh AminPalanisamy RajagruKoustav SarkarM R GaneshTakayoshi SuzukiDaoud AliKunka Mohanram RamkumarPublished in: Oxidative medicine and cellular longevity (2021)
Endoplasmic reticulum (ER) plays a key role in the folding, modification, and trafficking of proteins. When the homeostasis of the ER is disturbed, un/misfolded proteins accumulate in the ER which leads to ER stress. Sustained ER stress results in apoptosis, which is associated with various diseases. Nuclear factor erythroid 2-related factor 2 (Nrf2) is a major transcription factor in redox homeostasis by regulating various genes associated with detoxification and cell-protective mechanisms. We found that Rosolic acid (RA) treatment dose-dependently activates Nrf2 in endothelial cells using the enzyme fragment complementation assay. The cytoprotective role of RA against ER stress-induced endothelial apoptosis and its molecular mechanism was explored in the present study. The Nrf2 and its target genes, as well as ER stress marker expressions, were measured by qPCR in ER stress-exposed endothelial cells. The contribution of Nrf2 in RA-mediated defense mechanism in endothelial cells was established by knockout studies using Nrf2-CRISPR/Cas9. The treatment with RA to ER stress-induced endothelial cells exhibited activation of Nrf2, as demonstrated by Nrf2 translocation and reduction of ER stress markers. We found that the Nrf2 knockout sensitized the endothelial cells against ER stress, and further, RA failed to mediate its cytoprotective effect. Proteomic studies using LC-MS/MS revealed that among the 1370 proteins detected, we found 296 differentially regulated proteins in ER stress-induced endothelial cells, and RA administration ameliorated 71 proteins towards the control levels. Of note, the ER stress in endothelial cells was attenuated by the treatment with the RA, suggesting the role of the Nrf2 activator in the pathological conditions of ER stress-associated diseases.
Keyphrases
- endothelial cells
- stress induced
- oxidative stress
- endoplasmic reticulum
- endoplasmic reticulum stress
- rheumatoid arthritis
- high glucose
- nuclear factor
- transcription factor
- crispr cas
- disease activity
- induced apoptosis
- estrogen receptor
- ankylosing spondylitis
- vascular endothelial growth factor
- breast cancer cells
- high throughput
- cell death
- stem cells
- immune response
- mesenchymal stem cells
- cell proliferation
- dna methylation
- genome editing
- toll like receptor
- gene expression
- systemic lupus erythematosus
- bone marrow
- signaling pathway
- replacement therapy