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March 21, 2026Journal of Medicinal Chemistry0 citations

Design, Synthesis, and Evaluation of Indolizine Derivatives as Nonclassical Ferroptosis Inhibitors with Efficacy in Acute Liver Injury and Ischemic Stroke Models

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YSYijing ShuYJYong JiangYXYing Xiong

Key Points

  • The study aims to design and evaluate new indolizine derivatives as effective ferroptosis inhibitors for acute liver injury and ischemic stroke.
  • Synthesized 1,3-disubstituted indolizine derivatives
  • Conducted phenotypic screening and structure-activity relationship (SAR) optimization
  • Assessed potency in RSL3/erastin-induced PC12 cells
  • Evaluated in vivo efficacy in liver injury and ischemic stroke models
  • Identified D12 with an EC50 of 39.7 nM, outperforming Fer-1
  • Demonstrated improved metabolic stability and higher systemic exposure of D12
  • Showed strong brain penetration with a brain/plasma ratio of 6.31
  • D12 mitigated both acetaminophen-induced liver injury and cerebral ischemia-reperfusion injury

Abstract

Ferroptosis is a regulated form of cell death driven by iron-dependent lipid peroxidation. Inhibiting ferroptosis has emerged as a promising therapeutic strategy, but existing inhibitors suffer from limited chemical diversity and suboptimal drug-likeness. Here, we report 1,3-disubstituted indolizine derivatives as novel noncanonical ferroptosis inhibitors. Through phenotypic screening and SAR optimization, we identified D12 (3-(2-methylbenzoyl)indolizine-1-yl acetate). D12 exhibits nanomolar potency (EC50 = 39.7 nM) in RSL3/erastin-induced PC12 cells, outperforming Fer-1. Mechanistically, D12 acts independently of iron chelation, radical trapping, or direct Nrf2 activation; instead, it alleviates oxidative stress and lipid peroxidation upstream. Compared to Fer-1, D12 displays improved metabolic stability, markedly higher systemic exposure, and robust brain penetration (brain/plasma ratio = 6.31). In vivo, D12 attenuates acetaminophen-induced liver injury and cerebral ischemia-reperfusion injury. These findings establish D12 as a mechanistically distinct, drug-like preclinical candidate and. highlight the indolizine scaffold as a promising new chemotype for ferroptosis-targeted drug discovery.

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Cite This Study

Shu et al. (2026) studied this question.

synapsesocial.com/papers/69be37dd6e48c4981c677dfahttps://doi.org/10.1021/acs.jmedchem.5c03439
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