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Oxindole Compounds Induce NRF2-ARE Antioxidant Pathway in MCF7 Cells and Reduce Inflammatory Response in RAW264.7
Baskar Selvaraj1, Qui Ngoc Sang Nguyen1,2,3, Seong-Hee Ko4
1Center for Natural Product Efficacy Optimization, Gangneung Institute, Korea Institute of Science and Technology (KIST), Gangneung 25451, Republic of Korea.
Abstract:
Using previously reported chemical structures and synthetic methods, we prepared a series of 19 oxindole derivatives and evaluated their ability to activate the NRF2-ARE signaling pathway and induce the expression of downstream antioxidant genes. All 19 compounds activated NRF2-ARE signaling. Among them, OIC3 and OIC15 were selected for further investigation based on their relatively low EC50 values of 6.20 and 4.95 µM, respectively, as well as their favorable cytotoxicity profiles. Both compounds activated NRF2 in a concentration-dependent manner and progressively increased the expression of the NRF2 target genes HO-1 and NQO1 over 8-24 h. Their anti-inflammatory activities were further evaluated in RAW 264.7 macrophages. Quantum chemical calculations identified the exocyclic benzylidene carbon as the most probable electrophilic reaction site, while covalent docking suggested that the Cys151 adducts of both compounds could be structurally accommodated within the KEAP1 BTB domain. Collectively, these findings identify OIC3 and OIC15 as promising NRF2-ARE activators and support their further investigation as potential therapeutic candidates for oxidative stress- and inflammation-related diseases.
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