Department of Chemistry, National Institute of Technology, Tiruchirappalli, Tamil Nadu, India-620015.
Facultad de Medicina, Universidad de Atacama, Los Carreras 1579, Copiapo 1532502, Chile.
ACS Appl Bio Mater. 2024 Aug 19;7(8):5622-5639. doi: 10.1021/acsabm.4c00689. Epub 2024 Aug 1.
Our study focuses on synthesizing and exploring the potential of three N-(4) substituted thiosemicarbazones derived from cinnamic aldehyde, alongside their Ru(II)-(η -p-cymene)/(η-benzene) complexes. The synthesized compounds were comprehensively characterized using a range of analytical techniques, including FT-IR, UV-visible spectroscopy, NMR (H, C), and HRMS. We investigated their electronic and physicochemical properties via density functional theory (DFT). X-ray crystal structures validated structural differences identified by DFT. Molecular docking predicted promising bioactivities, supported by experimental observations. Notably, docking with EGFR suggested an inhibitory potential against this cancer-related protein. Spectroscopic titrations revealed significant DNA/BSA binding affinities, particularly with DNA intercalation and BSA hydrophobic interactions. displayed the strongest binding affinity with DNA (K = 6.23 × 10 M) and BSA (K = 9.75 × 10 M). Assessed the cytotoxicity of the complexes on cervical cancer cells (HeLa), and breast cancer cells (MCF-7 and MDA-MB 231), revealing remarkable potency. Additionally, selectivity was assessed by examining MCF-10a normal cell lines. The active complexes were found to trigger apoptosis, a vital cellular process crucial for evaluating their potential as anticancer agents utilizing staining assays and flow cytometry analysis. Intriguingly, complexation with Ru(II)-arene precursors significantly amplified the bioactivity of thiosemicarbazones, unveiling promising avenues toward the creation of powerful anticancer agents.
我们的研究集中在合成和探索三种源自肉桂醛的 N-(4)取代缩硫代氨基脲及其 Ru(II)-(η -p-枯烯)/(η-苯)配合物的潜力。通过一系列分析技术,包括傅里叶变换红外光谱(FT-IR)、紫外可见光谱、核磁共振(H、C)和高分辨率质谱(HRMS),对合成的化合物进行了全面的表征。我们通过密度泛函理论(DFT)研究了它们的电子和物理化学性质。X 射线晶体结构验证了 DFT 确定的结构差异。分子对接预测了有前景的生物活性,实验观察结果也支持了这一预测。值得注意的是,与 EGFR 的对接表明其对这种与癌症相关的蛋白质具有抑制潜力。光谱滴定揭示了与 DNA/BSA 结合的显著亲和力,特别是与 DNA 嵌入和 BSA 疏水相互作用。与 DNA(K = 6.23×10 M)和 BSA(K = 9.75×10 M)的结合亲和力最强。评估了这些配合物对宫颈癌(HeLa)和乳腺癌(MCF-7 和 MDA-MB 231)细胞的细胞毒性,发现它们具有显著的功效。此外,通过检查 MCF-10a 正常细胞系来评估选择性。发现活性配合物能引发细胞凋亡,这是评估其作为抗癌剂潜力的关键细胞过程,通过染色测定和流式细胞术分析来评估。有趣的是,与 Ru(II)-芳烃前体的络合显著提高了缩硫代氨基脲的生物活性,为开发强效抗癌剂开辟了有前途的途径。