Lee Sang Hyup
College of Pharmacy, Duksung Women's University, Seoul, 132-714, Korea.
Arch Pharm Res. 2009 Mar;32(3):299-315. doi: 10.1007/s12272-009-1300-4. Epub 2009 Apr 23.
A variety of natural products that contain disulfide or multisulfide bonds were found to display potent biological activities, including antitumor activities. At the center of these biological activities are disulfide or multisulfide moieties. The importance of disulfide or multisulfide groups in the areas of chemistry, biology, and pharmacology has been well recognized. Among these agents, especially noteworthy are mitomycin disulfides, leinamycin, thiarubrines, varacins, calicheamicins, and esperamicins. Their general features, including their biological profiles, peculiar structures, and related chemistries, were summarized and more importantly, their working mechanisms were elucidated in detail in this review. Mechanistic studies of these compounds have provided evidence of the key role of disulfide or multisulfide groups. In general, the cleavage of disulfide or multisulfide bonds produces thiol (or thiolate), which triggers an activation cascade leading to the generation of highly reactive electrophile(s) or cytotoxic species that may cause DNA strand scission. The main concerns with the mode of action are the reactivity and stability of disulfide and multisulfide bonds, their cleavage conditions, and the generation of toxic species. A range of studies for each agent was executed to gather important information on their activation, and the obtained information was gradually integrated to give some clues to the agents' working mechanisms. Such information may be further used to generate biomechanistically designed and more potent derivatives.
人们发现,多种含有二硫键或多硫键的天然产物具有强大的生物活性,包括抗肿瘤活性。这些生物活性的核心是二硫键或多硫键部分。二硫键或多硫键基团在化学、生物学和药理学领域的重要性已得到充分认可。在这些药物中,特别值得注意的是丝裂霉素二硫化物、链黑霉素、硫红菌素、varacins、加利车霉素和esperamicins。本文综述了它们的一般特征,包括生物学特性、独特结构和相关化学性质,更重要的是,详细阐述了它们的作用机制。对这些化合物的作用机制研究提供了二硫键或多硫键基团关键作用的证据。一般来说,二硫键或多硫键的断裂会产生硫醇(或硫醇盐),从而引发激活级联反应,导致产生高活性亲电试剂或细胞毒性物质,可能导致DNA链断裂。作用方式的主要问题是二硫键和多硫键的反应性和稳定性、它们的断裂条件以及有毒物质的产生。针对每种药物进行了一系列研究,以收集有关其激活的重要信息,并将获得的信息逐步整合,为药物的作用机制提供一些线索。这些信息可进一步用于生成基于生物力学设计的更有效的衍生物。