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采用多种方法进行研究,以探索咪唑衍生物作为MCF - 7抑制剂在治疗策略中的潜在治疗机制。

The combination of multi-approach studies to explore the potential therapeutic mechanisms of imidazole derivatives as an MCF-7 inhibitor in therapeutic strategies.

作者信息

Rashid Maryam, Maqbool Ayesha, Shafiq Nusrat, Bin Jardan Yousef A, Parveen Shagufta, Bourhia Mohammed, Nafidi Hiba-Allah, Khan Rashid Ahmed

机构信息

Synthetic and Natural Product Drug Discovery Laboratory, Department of Chemistry, Government College Women University Faisalabad, Faisalabad, Pakistan.

Department of Pharmaceutics, College of Pharmacy, King Saud University, Riyadh, Saudi Arabia.

出版信息

Front Chem. 2023 Jun 27;11:1197665. doi: 10.3389/fchem.2023.1197665. eCollection 2023.

Abstract

Breast cancer covers a large area of research because of its prevalence and high frequency all over the world. This study is based on drug discovery against breast cancer from a series of imidazole derivatives. A 3D-QSAR and activity atlas model was developed by exploring the dataset computationally, using the machine learning process of Flare. The dataset of compounds was divided into active and inactive compounds according to their biological and structural similarity with the reference drug. The obtained PLS regression model provided an acceptable = 0.81 and q = 0.51. Protein-ligand interactions of active molecules were shown by molecular docking against six potential targets, namely, TTK, HER2, GR, NUDT5, MTHFS, and NQO2. Then, toxicity risk parameters were evaluated for hit compounds. Finally, after all these screening processes, compound was recognized as the best-hit compound. This study identified a new inhibitor C10 against cancer and provided evidence-based knowledge to discover more analogs.

摘要

由于乳腺癌在全球范围内的普遍性和高发性,它涵盖了广泛的研究领域。本研究基于一系列咪唑衍生物进行抗乳腺癌药物发现。通过使用Flare的机器学习过程对数据集进行计算探索,开发了一个3D-QSAR和活性图谱模型。根据化合物与参考药物的生物学和结构相似性,将化合物数据集分为活性和非活性化合物。所获得的PLS回归模型提供了可接受的 = 0.81和q = 0.51。通过对六个潜在靶点(即TTK、HER2、GR、NUDT5、MTHFS和NQO2)进行分子对接,展示了活性分子的蛋白质-配体相互作用。然后,评估了命中化合物的毒性风险参数。最后,经过所有这些筛选过程,化合物 被认定为最佳命中化合物。本研究鉴定出一种新的抗癌抑制剂C10,并为发现更多类似物提供了循证知识。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/744b/10335751/f17e215b6e1d/fchem-11-1197665-g001.jpg

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