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March 18, 2026Inorganics1 citationsOpen Access

Synthesis, Characterization, and Bioactivity of a Dioxime-Based Copper(II) Complex: SOD/Catalase Mimicry, DNA/HSA Binding, and In Silico Evaluation for Cuproptosis-Mediated Anticancer Activity

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MAMortaga M. Abou-KrishaARA RamadanHSHeba A. Sahyon

Key Points

  • To investigate the synthesis, characterization, and bioactivity of a novel copper(II) complex as a potential anticancer agent.
  • Synthesized copper(II) complex from a dioxime ligand and characterized its structure.
  • Conducted DFT calculations to assess electronic properties.
  • Performed biophysical studies on DNA and HSA binding affinities.
  • Executed in vitro assays on various cancer cell lines.
  • Utilized molecular docking to evaluate protein interactions.
  • Copper(II) complex exhibits high catalytic activity as a superoxide dismutase and catalase mimic.
  • Demonstrated strong affinity for DNA and Human Serum Albumin, suggesting groove-binding mechanisms.
  • Showed superior anticancer properties against multiple cancer cell lines compared to free ligand and doxorubicin.
  • Molecular docking revealed high binding affinity with key cancer-related proteins, indicating dual mechanisms of action.

Abstract

Cisplatin’s chemotherapy is hindered by drug resistance and toxicity, making copper complexes a potential alternative. A novel copper(II) complex, CuLBr, was synthesized from a tetradentate vicinal dioxime ligand (H2L) and characterized. CuLBr features a distorted square pyramidal geometry with a CuN4Br chromophore. DFT calculations showed a narrowed HOMO-LUMO gap and increased electrophilicity, enhancing its chemical reactivity. CuLBr exhibited potent biomimetic catalytic activity, functioning as an efficient superoxide dismutase mimic and catalase mimic. Biophysical studies (UV-Vis, fluorescence, and viscosity) demonstrated a strong, spontaneous affinity of CuLBr for calf thymus DNA and Human Serum Albumin, suggesting groove-binding and static quenching mechanisms. In vitro assays revealed superior anticancer activity against HepG-2, HCT-116, and MDA-MB-231 cell lines, with greater selectivity than the free ligand and doxorubicin. Molecular docking studies reveal a high binding affinity of CuLBr with key proteins, including ferredoxin-1 and VEGF. This may suggest potential dual mechanisms of action, involving the induction of cuproptosis and the inhibition of tumor angiogenesis. These findings position CuLBr as an effective multi-metal-based anticancer agent with advantageous selectivity.

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Cite This Study

Abou-Krisha et al. (2026) studied this question.

synapsesocial.com/papers/69ba425c4e9516ffd37a28c1https://doi.org/10.3390/inorganics14030084
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