Parusu Kavya Teja, Bao Q Ly, Vinal Upadhyay, Sourav Das, Santosh Kumar Behera, Amit Mandoli, Dhaval K Shah, Siddheshwar K Chauthe
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引用次数: 0
摘要
受我们之前对天然存在的吡喃吖啶酮进行半合成修饰的努力的启发,我们报道了靶向设计和半合成HDAC和拓扑异构酶II α (Topo II α)的双重抑制剂,这些抑制剂来源于Glycosmis pentaphylla des- n - methyl首字母缩略词(1)和去甲首字母缩略词(8)吡喃吖啶酮生物碱。从临床批准的SAHA设计,来自生物碱的细胞毒性pyrano吖啶酮核作为封盖基团,而羟肟酸部分作为锌结合基团。在体外细胞毒性试验中评估的16种化合物中,以去甲缩氨酸(8)为封顶基团的KT32 (10c)和五碳连接体羟肟酸侧链对MCF-7、CALU-3和SCC-25细胞系的IC50值分别为1.0、1.5和0.3 μM,显示出良好的细胞毒性活性。KT32 (10c)在两种酶分析中均表现出有效的HDAC抑制活性和部分Topo II α抑制活性。SAR结果与分子对接研究预测的结合亲和力强烈一致。我们进一步探索了KT32 (10c)以初步了解SCC-25细胞系的机制。流式细胞术分析表明KT32 (10c)通过凋亡诱导细胞死亡,晚期凋亡细胞数量大幅增加。
Semisynthesis of Glycosmis pentaphylla Alkaloid Derivatives: Pyranoacridone-Hydroxamic Acid Cytotoxic Conjugates with HDAC and Topoisomerase II α Dual Inhibitory Activity.
Inspired by our previous efforts in the semisynthetic modification of naturally occurring pyranoacridones, we report the targeted design and semisynthesis of dual inhibitors of HDAC and topoisomerase II α (Topo II α) derived from Glycosmis pentaphylla des-N-methylacronycine (1) and noracronycine (8) pyranoacridone alkaloids. Designed from the clinically approved SAHA, the cytotoxic pyranoacridone nuclei from the alkaloids served as the capping group, while a hydroxamic acid moiety functioned as the zinc-binding group. Out of 16 compounds evaluated in an in vitro cytotoxicity assay, KT32 (10c) with noracronycine (8) as the capping group and five-carbon linker hydroxamic acid side chains showed good cytotoxic activity with IC50 values of 1.0, 1.5, and 0.3 μM on MCF-7, CALU-3, and SCC-25 cell lines, respectively. KT32 (10c) showed potent HDAC inhibitory activity and partial Topo II α inhibitory activity in both enzyme assays. The SAR results strongly aligned with the predicted binding affinities from the molecular docking study. KT32 (10c) was further explored for a preliminary mechanistic understanding of SCC-25 cell lines. Flow cytometry analysis suggests that KT32 (10c) induces cell death through apoptosis, as evidenced by the substantial increase in the population of late apoptotic cells.
期刊介绍:
The Journal of Natural Products invites and publishes papers that make substantial and scholarly contributions to the area of natural products research. Contributions may relate to the chemistry and/or biochemistry of naturally occurring compounds or the biology of living systems from which they are obtained.
Specifically, there may be articles that describe secondary metabolites of microorganisms, including antibiotics and mycotoxins; physiologically active compounds from terrestrial and marine plants and animals; biochemical studies, including biosynthesis and microbiological transformations; fermentation and plant tissue culture; the isolation, structure elucidation, and chemical synthesis of novel compounds from nature; and the pharmacology of compounds of natural origin.
When new compounds are reported, manuscripts describing their biological activity are much preferred.
Specifically, there may be articles that describe secondary metabolites of microorganisms, including antibiotics and mycotoxins; physiologically active compounds from terrestrial and marine plants and animals; biochemical studies, including biosynthesis and microbiological transformations; fermentation and plant tissue culture; the isolation, structure elucidation, and chemical synthesis of novel compounds from nature; and the pharmacology of compounds of natural origin.