Soni Jay Prakash, Chilvery Shrilekha, Sharma Anamika, Reddy G Nikitha, Godugu Chandraiah, Shankaraiah Nagula
Department of Medicinal Chemistry, National Institute of Pharmaceutical Education and Research (NIPER) Balanagar Hyderabad 500036 India
Department of Regulatory Toxicology, National Institute of Pharmaceutical Education and Research (NIPER) Balanagar Hyderabad 500036 India
RSC Med Chem. 2023 Jan 25;14(3):549-562. doi: 10.1039/d2md00442a. eCollection 2023 Mar 22.
In the pursuit of potential and effective chemotherapeutic agents, a series of 2-((3-(indol-3-yl)-pyrazol-5-yl)imino)thiazolidin-4-ones was designed and synthesized, conjoining salient pharmacophoric properties for directing prominent cytotoxicity. The cytotoxicity evaluation revealed potent compounds with IC values <10 μM on tested human cancer cell lines. Compound 6c exhibited the highest cytotoxicity with an IC value of 3.46 μM against melanoma cancer cells (SK-MEL-28) and was highly cytospecific and selective towards cancer cells. The traditional apoptosis assays revealed morphological and nuclear alterations such as apoptotic body formation, condensed/horseshoe-shaped/fragmented/blebbing nuclei, and the generation of ROS. Flow cytometric analysis revealed effective early-stage apoptosis induction and cell-cycle arrest in the G2/M phase. In addition, the enzyme-based effect of 6c on tubulin showed the inhibition of tubulin polymerization (about 60% inhibition, IC was <1.73 μM). Moreover, molecular modeling studies affirmed the constant accommodation of compound 6c at the active pocket of tubulin, establishing many electrostatic and hydrophobic interactions with the active pocket's residues. The tubulin-6c complex was stable during the MD simulation for 50 ns with the recommended range of RMSD value (2-4 Å) for each pose.
在寻找潜在且有效的化疗药物的过程中,设计并合成了一系列2-((3-(吲哚-3-基)-吡唑-5-基)亚氨基)噻唑烷-4-酮,这些化合物结合了显著的药效基团特性以产生显著的细胞毒性。细胞毒性评估显示,在测试的人类癌细胞系上,IC值<10 μM的化合物具有较强活性。化合物6c表现出最高的细胞毒性,对黑色素瘤癌细胞(SK-MEL-28)的IC值为3.46 μM,并且对癌细胞具有高度的细胞特异性和选择性。传统的凋亡检测揭示了形态学和核变化,如凋亡小体形成、细胞核浓缩/马蹄形/碎片化/起泡,以及活性氧的产生。流式细胞术分析显示在G2/M期有效诱导早期凋亡并使细胞周期停滞。此外,6c对微管蛋白的基于酶的作用显示出对微管蛋白聚合的抑制(约60%抑制,IC<1.73 μM)。而且,分子模拟研究证实化合物6c在微管蛋白的活性口袋中持续存在,与活性口袋中的残基建立了许多静电和疏水相互作用。在50 ns的分子动力学模拟过程中,微管蛋白-6c复合物是稳定的,每个构象的均方根偏差值(RMSD值)在推荐范围内(2-4 Å)。