Department of Chemistry and Materials, Institute of High Technologies and Advanced Materials, FEFU Campus, Far Eastern Federal University, Ajax Bay 10, Russky Island, 690922 Vladivostok, Russia.
Department of Oncology, Hematology and Bone Marrow Transplantation with Section Pneumology, Hubertus Wald Tumorzentrum-University Cancer Center Hamburg (UCCH), University Medical Center Hamburg-Eppendorf, Martinistrasse 52, 20246 Hamburg, Germany.
Mar Drugs. 2023 Jul 25;21(8):424. doi: 10.3390/md21080424.
Fascaplysin is a marine alkaloid which is considered to be a lead drug candidate due to its diverse and potent biological activity. As an anticancer agent, fascaplysin holds a great potential due to the multiple targets affected by this alkaloid in cancer cells, including inhibition of cyclin-dependent kinase 4 (CDK4) and induction of intrinsic apoptosis. At the same time, the studies on structural optimization are hampered by its rather high toxicity, mainly caused by DNA intercalation. In addition, the number of methods for the syntheses of its derivatives is limited. In the current study, we report a new two-step method of synthesis of fascaplysin derivatives based on low temperature UV quaternization for the synthesis of thermolabile 9-benzyloxyfascaplysin and 6--butylfascaplysin. 9-Benzyloxyfascaplysin was used as the starting compound to obtain 9-hydroxyfascaplysin. However, the latter was found to be chemically highly unstable. 6--Butylfascaplysin revealed a significant decrease in DNA intercalation when compared to fascaplysin, while cytotoxicity was only slightly reduced. Therefore, the impact of DNA intercalation for the cytotoxic effects of fascaplysin and its derivatives needs to be questioned.
船形生物碱是一种海洋生物碱,因其具有多样而强大的生物活性而被认为是一种潜在的先导药物。作为一种抗癌药物,船形生物碱由于这种生物碱在癌细胞中影响多个靶标,包括抑制周期蛋白依赖性激酶 4(CDK4)和诱导内在凋亡,因此具有很大的潜力。同时,由于其较高的毒性,主要是由于 DNA 嵌入,对其结构优化的研究受到了阻碍。此外,其衍生物的合成方法数量有限。在本研究中,我们报告了一种基于低温 UV 季铵化的两步法合成船形生物碱衍生物的新方法,用于合成热敏 9-苄氧基船形生物碱和 6--丁基船形生物碱。9-苄氧基船形生物碱被用作起始化合物来获得 9-羟基船形生物碱。然而,后者被发现具有很高的化学不稳定性。与船形生物碱相比,6--丁基船形生物碱的 DNA 嵌入能力显著降低,而细胞毒性仅略有降低。因此,需要质疑 DNA 嵌入对船形生物碱及其衍生物细胞毒性的影响。