Design, Synthesis, and Protective Activity against Doxorubicin-Induced Cardiotoxicity of Novel Water-Soluble Small-Molecule GPx Mimics

  • ACS Med Chem Lett. 2026 Apr 24;17(5):1208-1213. doi: 10.1021/acsmedchemlett.6c00185.
Zhenming Yu  1  2 Wenxin Shi  3 Zhijie Qian  1  2 Xinning Mei  1  2 Xinhui Huang  2 Xi Chen  2 Wentao Wang  1  2 Tianyi Zhang  1  2 Xin Chen  1 Zhiyong Li  3 Canhui Zheng  2
Affiliations
  • 1. School of Life Science and Technology, Wuhan Polytechnic University, Wuhan 430023, China.
  • 2. The Center for Basic Research and Innovation of Medicine and Pharmacy (MOE), School of Pharmacy, Naval Medical University (Second Military Medical University), Shanghai 200433, China.
  • 3. Faculty of Medical Imaging, Second Military Medical University (Naval Medical University), Shanghai 200433, China.
Abstract

The clinical application of doxorubicin in Cancer therapy is significantly limited by its severe cardiotoxicity, with complex mechanisms. No effective protective agents are currently available, creating an urgent clinical need. In this study, through structural optimization of ebselen, we developed a series of isoselenazolinones with improved water solubility and Glutathione Peroxidase (GPx)-like activity. The most promising acidic and basic derivatives, 7 and 12, exhibited a 7.0- and 10.4-fold increase in activity compared to the lead compound, alongside a 16- and 160-fold improvement in water solubility. Frontier molecular orbital theory calculation results showed a good correlation with the observed structure-activity relationships. Furthermore, compound 7 significantly protected cardiomyocytes from doxorubicin-induced injury, preventing 75% of the loss in cell viability at 20 μM. Preliminary mechanistic studies suggested that this protection is mediated by inhibiting oxidative stress and Ferroptosis. This study provides a promising class of active compounds for the treatment of doxorubicin-induced cardiotoxicity.

Keywords
Doxorubicin-Induced Cardiotoxicity; Glutathione peroxidase mimics; Isoselenazolinones; Oxidative stress; Quantum chemical calculations.
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