1. Beneficial impact of cardiac heavy metal scavenger metallothionein in sepsis-provoked cardiac anomalies dependent upon regulation of endoplasmic reticulum stress and ferroptosis but not autophagy
    Yuanzhuo Chen et al, 2023, Life Sciences CrossRef
  2. Current insight on the mechanisms of programmed cell death in sepsis-induced myocardial dysfunction
    An-Bu Liu et al, 2023, Front. Cell Dev. Biol. CrossRef
  3. GPX4, ferroptosis, and diseases.
    Wangzheqi Zhang et al, 2024, Biomed Pharmacother CrossRef
  4. Decoding ferroptosis: Revealing the hidden assassin behind cardiovascular diseases
    Zeyu Zhang et al, 2024, Biomedicine & Pharmacotherapy CrossRef
  5. Corylin alleviated sepsis-associated cardiac dysfunction via attenuating inflammation through downregulation of microRNA-214-5p
    Chunyan Li et al, 2024 CrossRef
  6. Phytochemistry of Genus Buxus and Pharmacology of Cyclovirobuxine D
    Sen Li et al, 2024, Chemistry & Biodiversity CrossRef
  7. Melatonin mitigates the lipopolysaccharide-induced myocardial injury in rats by blocking the p53/xCT pathway-mediated ferroptosis
    Xin Jing et al, 2024, Naunyn-Schmiedeberg's Arch Pharmacol CrossRef
  8. Focus on the role of calcium signaling in ferroptosis: a potential therapeutic strategy for sepsis-induced acute lung injury
    Yifei Xu et al, 2024, Front. Med. CrossRef
  9. ZC3H13 may participate in the ferroptosis process of sepsis-induced cardiomyopathy by regulating the expression of Pnn and Rbm25
    Wenji Lin et al, 2024, Gene CrossRef
  10. Ferroptosis in Cardiovascular Diseases and Ferroptosis-Related Intervention Approaches
    Xianpeng Zhou et al, 2024, Cardiovasc Drugs Ther CrossRef
  11. Unlocking the Stratum Corneum Barrier to Skin Penetration for the Transdermal Delivery of Cyclovirobuxine D
    Yun-Hao Ren et al, 2024, Pharmaceutics CrossRef