Purawarga Matada Gurubasavaraj Swamy, Dhiwar Prasad Sanjay, Abbas Nahid, Singh Ekta, Ghara Abhishek, Das Arka, Bhargava Sapna Vyas
Department of Pharmaceutical Chemistry, Acharya & BM Reddy College of Pharmacy, Rajiv Gandhi University of Health & Science Bengaluru, Karnataka, India.
Department of Zoology, Maa Bharti PG Science College, University of Kota, Rajasthan, India.
J Biomol Struct Dyn. 2022 Aug;40(13):6183-6192. doi: 10.1080/07391102.2021.1877823. Epub 2021 Feb 2.
Breast cancer (BC) is a second common malignancy in female globally. Hence, identification of novel therapeutic agents is extremely important. Molecular docking and MD simulation are the important tools in the process of drug discovery for searching the potential hits. The structure-based drug designing technique also reveals the information about ligands behavior in computational environment. Docking tools help in visualization and analysis of protein-ligand complex at atomic level. Molecular dynamics shows the stability of the molecules in the receptor cavity in the simulated environment. In this research work, we have screened potent phytochemicals against the BC. We docked the phytochemicals and examined the binding affinities of ligands towards the EGFR, HER2, estrogen and NF-B receptors. Pristimerin, ixocarpalactone A, viscosalactone B and zhankuic acid A have shown higher binding affinities and energies towards targeted receptors among the screened phytochemicals. MD simulation study shows stability of docked complex for pristimerin and HER2 receptor. These phytochemicals can be repurposed for their anticancer activity. This work provides a strong ground for further investigation of their anticancer activity.
乳腺癌(BC)是全球女性中第二常见的恶性肿瘤。因此,鉴定新型治疗药物极其重要。分子对接和分子动力学(MD)模拟是药物发现过程中寻找潜在靶点的重要工具。基于结构的药物设计技术还揭示了配体在计算环境中的行为信息。对接工具有助于在原子水平上可视化和分析蛋白质-配体复合物。分子动力学显示了分子在模拟环境中受体腔中的稳定性。在这项研究工作中,我们筛选了针对乳腺癌的有效植物化学物质。我们对接了这些植物化学物质,并检查了配体与表皮生长因子受体(EGFR)、人表皮生长因子受体2(HER2)、雌激素和核因子κB(NF-κB)受体的结合亲和力。在筛选出的植物化学物质中,扁蒴藤素、异卡波内酯A、粘质内酯B和展葵酸A对靶向受体表现出更高的结合亲和力和能量。分子动力学模拟研究表明扁蒴藤素与HER2受体对接复合物的稳定性。这些植物化学物质可因其抗癌活性而重新利用。这项工作为进一步研究它们的抗癌活性提供了有力依据。