Cladolosides of Groups S and T: Triterpene Glycosides from the Sea Cucumber Cladolabes schmeltzii with Unique Sulfation; Human Breast Cancer Cytotoxicity and QSAR.

IF 5.4 2区 医学 Q1 CHEMISTRY, MEDICINAL
Marine Drugs Pub Date : 2025-06-25 DOI:10.3390/md23070265
Alexandra S Silchenko, Elena A Zelepuga, Ekaterina A Chingizova, Ekaterina S Menchinskaya, Kseniya M Tabakmakher, Anatoly I Kalinovsky, Sergey A Avilov, Roman S Popov, Pavel S Dmitrenok, Vladimir I Kalinin
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引用次数: 0

Abstract

Four new minor monosulfated triterpene penta- and hexaosides, cladolosides S (1), S1 (2), T (3), and T1 (4), were isolated from the Vietnamese sea cucumber Cladolabes schmeltzii (Sclerodactylidae, Dendrochirotida). The structures of the compounds were established based on extensive analysis of 1D and 2D NMR spectra as well as HR-ESI-MS data. Cladodosides S (1), S1 (2) and T (3), T1 (4) are two pairs of dehydrogenated/hydrogenated compounds that share identical carbohydrate chains. The oligosaccharide chain of cladolosides of the group S is new for the sea cucumber glycosides due to the presence of xylose residue attached to C-4 Xyl1 in combination with a sulfate group at C-6 MeGlc4. The oligosaccharide moiety of cladolosides of the group T is unique because of the position of the sulfate group at C-3 of the terminal sugar residue instead of the 3-O-Me group. This suggests that the enzymatic processes of sulfation and O-methylation that occur during the biosynthesis of glycosides can compete with each other. This can presumably occur due to the high level of expression or activity of the enzymes that biosynthesize glycosides. The mosaicism of glycoside biosynthesis (time shifting or dropping out of some biosynthetic stages) may indicate a lack of compartmentalization inside the cells of organism producers, leading to a certain degree of randomness in enzymatic reactions; however, this also offers the advantage of providing chemical diversity of the glycosides. Analysis of the hemolytic activity of a series of 26 glycosides from C. schmeltzii revealed some patterns of structure-activity relationships: the presence or absence of 3-O-methyl groups has no significant impact, hexaosides, which are the final products of biosynthesis and predominant compounds of the glycosidic fraction of C. schmeltzii, are more active than their precursors, pentaosides, and the minor tetraosides, cladolosides of the group A, are weak membranolytics and therefore are not synthesized in large quantities. Two glycosides from C. schmeltzii, cladolosides D (18) and H1 (26), display selectivity of cytotoxic action toward triple-negative breast cancer cells MDA-MB-231, while remaining non-toxic in relation to normal mammary cells MCF-10A. Quantitative structure-activity relationships (QSAR) were calculated based on the correlational analysis of the physicochemical properties and structural features of the glycosides and their hemolytic and cytotoxic activities against healthy MCF-10A cells and cancer MCF-7 and MDA-MB-231 cell lines. QSAR highlighted the complexity of the relationships as the cumulative effect of many minor contributions from individual descriptors can have a significant impact. Furthermore, many structural elements were found to have different effects on the activity of the glycosides against different cell lines. The opposing effects were especially pronounced in relation to hormone-dependent breast cancer cells MCF-7 and triple-negative MDA-MB-231 cells.

S和T基枝苷:独特磺化海参枝的三萜苷人乳腺癌细胞毒性和QSAR。
从越南海参中分离到4个新的单硫化三萜五萜和六萜S(1)、S1(2)、T(3)和T1(4)。化合物的结构是基于广泛的一维和二维核磁共振光谱分析以及HR-ESI-MS数据确定的。枝香苷S (1), S1(2)和T (3), T1(4)是两对具有相同碳水化合物链的脱氢/氢化化合物。由于C-4 - Xyl1与C-6 - MeGlc4上的硫酸盐基团结合,存在木糖残基,因此S基团的枝聚糖链是海参苷中新的寡糖链。T基枝苷的低聚糖部分是独特的,因为硫酸盐基在末端糖残基的C-3位置,而不是3-O-Me基。这表明在糖苷的生物合成过程中,硫酸化和o -甲基化的酶促过程可以相互竞争。这可能是由于生物合成糖苷的酶的高水平表达或活性造成的。糖苷生物合成的镶嵌性(时移或退出某些生物合成阶段)可能表明生物生产者细胞内缺乏区隔化,导致酶促反应具有一定程度的随机性;然而,这也提供了提供糖苷化学多样性的优势。通过对雪莲中26种苷类化合物的溶血活性分析,揭示了其构效关系:3- o -甲基的存在与否没有显著的影响,六苷作为生物合成的最终产物,是C. schmeltzii糖苷部分的主要化合物,比它们的前体五苷更有活性,而次要的四苷,A族的枝基苷,是弱的膜解活性,因此不会大量合成。schmeltzii的两种苷,枝状苷D(18)和H1(26),对三阴性乳腺癌细胞MDA-MB-231表现出选择性的细胞毒性作用,而对正常乳腺细胞MCF-10A则保持无毒。定量构效关系(Quantitative structure-activity relationship, QSAR)是通过对这些苷类化合物的理化性质、结构特征及其对健康MCF-10A细胞、肿瘤MCF-7和MDA-MB-231细胞系的溶血和细胞毒活性进行相关性分析计算得出的。QSAR强调了这些关系的复杂性,因为来自单个描述符的许多次要贡献的累积效应可能产生重大影响。此外,许多结构元素对糖苷对不同细胞系的活性有不同的影响。相反的效果在激素依赖性乳腺癌细胞MCF-7和三阴性MDA-MB-231细胞中尤为明显。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Marine Drugs
Marine Drugs 医学-医药化学
CiteScore
9.60
自引率
14.80%
发文量
671
审稿时长
1 months
期刊介绍: Marine Drugs (ISSN 1660-3397) publishes reviews, regular research papers and short notes on the research, development and production of drugs from the sea. Our aim is to encourage scientists to publish their experimental and theoretical research in as much detail as possible, particularly synthetic procedures and characterization information for bioactive compounds. There is no restriction on the length of the experimental section.
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