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Zha, Q.-b.

Publications and source records attributed to Zha, Q.-b..

2 recordsLinked to original sources

Scutellarin inhibits ferroptosis by promoting cellular antioxidant capacity through regulating the Nrf2 signaling

Ferroptosis is a lytic form of regulated cell death that is driven by iron-dependent lipid peroxidation, and has been implicated in various diseases including acute kidney injury (AKI). Scutellarin is a flavonoid isolated from Erigeron breviscapus (Vant.) Hand.-Mazz. and possesses various pharmacological activities including anti-inflammatory and antioxidative properties. Yet it is unclear whether scutellarin can inhibit ferroptosis and mitigate related diseases. In this study, we found that scutellarin was able to inhibit ferroptosis in both human HK-2 cells and mouse bone marrow-derived macrophages stimulated with RSL3 or erastin. Mitochondrial dysfunction and reactive oxygen species generation were counteracted by scutellarin treatment, suggesting involvement of its antioxidative activity. Furthermore, scutellarin increased the nuclear levels of Nrf2 and the expression of its target genes including HO-1 and GPX4. Scutellarin-mediated inhibition of ferroptosis and an increase of these proteins was abrogated by the co-treatment with brusatol, an Nrf2 inhibitor, indicating an essential role for Nrf2 in this process. In a mouse model of folic acid-induced AKI, scutellarin mitigated acute renal damage as revealed by histopathological analysis and serum blood urea nitrogen and creatinine assays. Folic acid-induced acute renal injury was associated with increased ferroptosis as revealed by elevated levels of 4-hydroxynonenal (4-HNE), a surrogate marker of ferroptosis, which were diminished by scutellarin cotreatment. Specifically, the elevated 4-HNE levels in macrophages (MAC-2 positive) and other renal cells were suppressed by scutellarin. Collectively, scutellarin can inhibit ferroptosis both in cultured cells and in a mouse model of AKI by regulating Nrf2 signaling.

pharmacology and toxicology↗

Andrographolide prevents necroptosis by suppressing generation of reactive oxygen species

Andrographolide (Andro), a natural product extracted from the Chinese traditional medicine herb Andrographis paniculata, has been applied for the treatment of diverse inflammatory diseases. However, its effects on necroptosis, a lytic form of cell death implicated in various inflammatory diseases, remain uncharacterized. In the current research, we investigate whether Andro and its derivatives can suppress necroptosis. The results demonstrate that Andro notably inhibits the necroptosis in in vitro cellular models induced by either lipopolysaccharide (LPS) plus IDN-6556 or a combination of TNF-, LCL-161 (Smac mimetic) and IDN-6556. In these cellular models, Andro exhibits inhibitory effects on the phosphorylation of receptor-interacting protein kinase 1 (RIPK1), RIPK3, and mixed lineage kinase domain-like protein (MLKL), as well as on the formation of necrosomes. Specifically, Andro reduces intracellular reactive oxygen species (ROS) and mitochondrial superoxide (mtROS), preserves mitochondrial membrane potential during necroptotic induction, and activates the antioxidant transcription factor nuclear factor E2-related factor 2 (Nrf2). Upon the necroptotic stimulation, some mitochondrial proteins such as Bcl-2 and Bak oligomerize and colocalize with RIPK1, RIPK3, and phosphorylated MLKL (p-MLKL) in necrosomes. However, such a process of necrosome formation can be prevented by Andro. In contrast, derivatives including dehydroandrographolide, neoandrographolide, 14-deoxy-11,12-didehydroandrographolide, and 14-deoxyandrographolide show no anti-necroptotic effects and fail to upregulate Nrf2. Collectively, our findings demonstrate that Andro specifically inhibits the RIPK1/RIPK3/MLKL signaling axis to suppress necroptosis, highlighting its therapeutic potential against necroptosis-related disorders.

pharmacology and toxicology↗