Quizartinib inhibits necroptosis by targeting receptor-interacting serine/threonine protein kinase 1
Min Li1,2,3, Jun Wei1,2,3, Guofeng Zhu1,2,3
1Institute of Neural Regeneration and Repair, The First College of Clinical Medical Science, China Three Gorges University, Yichang, China.
Abstract:
Systemic inflammatory response syndrome (SIRS), at least in part driven by necroptosis, is characterized by life-threatening multiple organ failure. Blocking the progression of SIRS and consequent multiple organ dysfunction is challenging. Receptor-interacting serine/threonine protein kinase 1 (RIPK1) is an important cell death and inflammatory mediator, making it a potential treatment target in several diseases. Here, using a drug repurposing approach, we show that inhibiting RIPK1 is also an effective treatment for SIRS. We performed cell-based high-throughput drug screening of an US Food and Drug Administration (FDA)-approved drug library that contains 1953 drugs to identify effective inhibitors of necroptotic cell death by SYTOX green staining. Dose-response validation of the top candidate, quizartinib, was conducted in two cell lines of HT-22 and MEFs. The effect of quizartinib on necroptosis-related proteins was evaluated using western blotting, immunoprecipitation, and an in vitro RIPK1 kinase assay. The in vivo effects of quizartinib were assessed in a murine tumor necrosis factor α (TNFα)-induced SIRS model. High-throughput screening identified quizartinib as the top "hit" in the compound library that rescued cells from necroptosis in vitro. Quizartinib inhibited necroptosis by directly inhibiting RIPK1 kinase activity and blocking downstream complex IIb formation. Furthermore, quizartinib protected mice against TNFα-induced SIRS. Quizartinib, as an FDA-approved drug with proven safety and efficacy, was repurposed for targeted inhibition of RIPK1. This work provides essential preclinical data for transferring quizartinib to the treatment of RIPK1-dependent necroptosis-induced inflammatory diseases, including SIRS.
Insights
Quizartinib, an FDA-approved drug, effectively inhibits RIPK1 kinase activity, blocking necroptosis. This repurposing strategy shows promise for treating Systemic Inflammatory Response Syndrome (SIRS) and related inflammatory diseases.
Area of Science:
- Biochemistry
- Immunology
- Pharmacology
Background:
- Systemic Inflammatory Response Syndrome (SIRS) involves multiple organ failure, often driven by necroptosis.
- Targeting Receptor-Interacting Serine/Threonine Protein Kinase 1 (RIPK1) is a potential therapeutic strategy for inflammatory diseases.
Purpose of the Study:
- To identify effective inhibitors of necroptosis using a drug repurposing approach.
- To evaluate quizartinib, an FDA-approved drug, as a potential treatment for SIRS by targeting RIPK1.
Main Methods:
- Conducted high-throughput screening of an FDA-approved drug library to identify necroptosis inhibitors.
- Validated quizartinib's efficacy in cell lines and assessed its mechanism via western blotting and kinase assays.
- Evaluated quizartinib's in vivo effects in a murine model of TNFα-induced SIRS.
Main Results:
- Quizartinib was identified as a potent inhibitor of necroptosis in vitro.
- Quizartinib directly inhibited RIPK1 kinase activity and downstream complex IIb formation.
- Quizartinib demonstrated protective effects against TNFα-induced SIRS in mice.
Conclusions:
- Repurposing quizartinib for RIPK1 inhibition offers a promising therapeutic avenue for SIRS.
- Provides preclinical data supporting the transfer of quizartinib for treating RIPK1-dependent inflammatory diseases.
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