靶向CDK2的新型纳米n -噻唑基吡啶胺:设计、发散合成、构象研究和多方面的硅分析。

Chemico-biological interactions Pub Date : 2025-02-01 Epub Date: 2025-01-01 DOI:10.1016/j.cbi.2024.111366
Samir Bondock, Nada Alabbad, Aisha Hossan, Ibrahim A Shaaban, Ali A Shati, Mohammad Y Alfaifi, SeragE I Elbehairi, Rehab H Abd El-Aleam, Moaz M Abdou
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引用次数: 0

摘要

本研究涉及新型纳米n-噻唑基吡啶胺2-7和10作为潜在的细胞周期蛋白依赖性激酶2 (CDK2)抑制剂的设计、分化合成、构象和结构分析、目标预测和分子对接模拟。采用发散合成方法,设计了结构变化和优化的化合物。通过各种光谱技术探索了构象和结构性质,确定了结构、稳定性和首选构象。此外,纳米晶表征,包括x射线衍射分析,揭示了合成分子的纳米级结构特征。大多数化合物具有晶体性质,晶粒尺寸在10.75 ~ 57.77 nm之间,这对提高细胞摄取和抗癌功效至关重要。生物学试验评估化合物2-7和10对肝癌细胞系HepG2、MCF-7和HCT-116的细胞毒性。化合物5对MCF-7、HePG2和HCT116的IC50值分别为10.9±0.5 μM、6.98±0.3 μM和6.3±0.2 μM,具有显著的细胞毒性。其他化合物表现出不同的活性,其中化合物4、6和10对MCF-7细胞系表现出中等活性。计算技术表明,这些化合物很有可能靶向CDK2,并使用分子对接和动力学来预测它们的结合机制。这些发现提示n -噻唑基吡啶胺可以作为新的抗癌药物进一步优化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Novel nano-sized N-Thiazolylpyridylamines targeting CDK2: Design, divergent synthesis, conformational studies, and multifaceted In silico analysis.

This study involves the design, divergent synthesis, conformational and structural analysis, target prediction, and molecular docking simulations of novel nano N-thiazolylpyridylamines 2-7 and 10 as potential cyclin-dependent kinase 2 (CDK2) inhibitors. Using a divergent synthesis approach, the compounds were designed with structural variation and optimization in mind. The conformational and structural properties were explored through various spectroscopic techniques, confirming the structure, stability, and preferred conformations. Additionally, nanocrystalline characterization, including X-ray diffraction analysis, revealed the nanoscale structural features of the synthesized molecules. Most compounds exhibited a crystalline nature with crystallite sizes ranging from 10.75 to 57.77 nm, which is crucial for improving cellular uptake and anticancer efficacy. Biological testing was performed to evaluate the cytotoxicity of compounds 2-7 and 10 against cancer cell lines, including HepG2, MCF-7, and HCT-116. Compound 5 exhibited significant cytotoxicity with IC50 values of 10.9 ± 0.5 μM, 6.98 ± 0.3 μM, and 6.3 ± 0.2 μM against MCF-7, HePG2, and HCT116, respectively. Other compounds demonstrated varied activities, with compounds 4, 6, and 10 showing moderate activity against the MCF-7 cell line. Computational techniques suggested a strong probability of these compounds targeting CDK2, with molecular docking and dynamics used to predict their binding mechanisms. These findings suggest that N-thiazolylpyridylamines may serve as new anticancer agents for further lead optimization.

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