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Privileged Structures: Efficient Chemical 'Navigators' toward Unexplored Biologically Relevant Chemical Spaces

机译:特权结构:高效的化学“导航器”通往未开发的生物相关化学空间

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摘要

In the search for new therapeutic agents for currently incurable diseases, attention has turned to traditionally "undruggable" targets, and collections of drug-like small molecules with high diversity and quality have become a prerequisite for new breakthroughs. To generate such collections, the diversity-oriented synthesis (DOS) strategy was developed, which aims to populate new chemical space with drug-like compounds containing a high degree of molecular diversity. The resulting DOS-derived libraries have been of great value for the discovery of various bioactive small molecules and therapeutic agents, and thus DOS has emerged as an essential tool in chemical biology and drug discovery. However, the key challenge has become how to design and synthesize drug-like small-molecule libraries with improved biological relevancy as well as maximum molecular diversity. This Perspective presents the development of privileged substructure-based DOS (pDOS), an efficient strategy for the construction of polyheterocyclic compound libraries with high biological relevancy. We envisioned the specific interaction of drug-like small molecules with certain biopolymers via the incorporation of privileged substructures into polyheterocyclic core skeletons. The importance of privileged substructures such as benzopyran, pyrimidine, and oxopiperazine in rigid skeletons was clearly demonstrated through the discovery of bioactive small molecules and the subsequent identification of appropriate target biomolecule using a method called "fluorescence difference in two-dimensional gel electro-phoresis". Focusing on examples of pDOS-derived bioactive compounds with exceptional specificity, we discuss the capability of privileged structures to serve as chemical "navigators" toward biologically relevant chemical spaces. We also provide an outlook on chemical biology research and drug discovery using biologically relevant compound libraries constructed by pDOS, biology-oriented synthesis, or natural product-inspired DOS.
机译:在寻找用于当前无法治愈的疾病的新治疗剂时,注意力已转向传统的“不可药物”靶标,并且具有高度多样性和高质量的类药物小分子的收集已成为新突破的先决条件。为了产生这样的集合,开发了面向多样性的合成(DOS)策略,该策略旨在用包含高度分子多样性的类药物化合物填充新的化学空间。所得的DOS衍生文库对于发现各种具有生物活性的小分子和治疗剂具有重要价值,因此DOS已成为化学生物学和药物发现中的重要工具。然而,关键的挑战已成为如何设计和合成具有改善的生物学相关性和最大分子多样性的药物样小分子文库。此观点介绍了基于特权子结构的DOS(pDOS)的开发,这是构建具有高生物学相关性的多杂环化合物库的有效策略。我们设想了通过将特权子结构并入多杂环核心骨架中,使药物样小分子与某些生物聚合物发生特定的相互作用。通过发现生物活性小分子并随后使用一种称为“二维凝胶电泳中的荧光差异”的方法来鉴定合适的目标生物分子,清楚地证明了刚性骨架中特权亚结构(如苯并吡喃,嘧啶和氧杂哌嗪)的重要性。 。着眼于具有非凡特异性的pDOS衍生生物活性化合物的实例,我们讨论了特权结构充当生物相关化学空间的化学“领航者”的能力。我们还提供了使用通过pDOS,面向生物学的合成或天然产物启发的DOS构建的生物学相关化合物库对化学生物学研究和药物开发进行展望。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2014年第42期|14629-14638|共10页
  • 作者单位

    Department of Chemistry, Seoul National University, Seoul 151-747, South Korea;

    Department of Chemistry, Seoul National University, Seoul 151-747, South Korea;

    Department of Chemistry, Seoul National University, Seoul 151-747, South Korea,Department of Biophysics and Chemical Biology/N-Bio Institute, Seoul National University, Seoul 151-747, South Korea;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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  • 入库时间 2022-08-18 03:11:17

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