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结构-活性关系和分子力学揭示了环熵在天然产物生物合成和活性中的重要性。

Structure-Activity Relationship and Molecular Mechanics Reveal the Importance of Ring Entropy in the Biosynthesis and Activity of a Natural Product.

机构信息

Department of Biology, California Institute for Biomedical Research , La Jolla, California 92037, United States.

Chemistry, Engineering, and Medicine for Human Health (ChEM-H), Stanford University , Stanford, California 94305, United States.

出版信息

J Am Chem Soc. 2017 Feb 22;139(7):2541-2544. doi: 10.1021/jacs.6b10792. Epub 2017 Feb 13.

Abstract

Macrocycles are appealing drug candidates due to their high affinity, specificity, and favorable pharmacological properties. In this study, we explored the effects of chemical modifications to a natural product macrocycle upon its activity, 3D geometry, and conformational entropy. We chose thiocillin as a model system, a thiopeptide in the ribosomally encoded family of natural products that exhibits potent antimicrobial effects against Gram-positive bacteria. Since thiocillin is derived from a genetically encoded peptide scaffold, site-directed mutagenesis allows for rapid generation of analogues. To understand thiocillin's structure-activity relationship, we generated a site-saturation mutagenesis library covering each position along thiocillin's macrocyclic ring. We report the identification of eight unique compounds more potent than wild-type thiocillin, the best having an 8-fold improvement in potency. Computational modeling of thiocillin's macrocyclic structure revealed a striking requirement for a low-entropy macrocycle for activity. The populated ensembles of the active mutants showed a rigid structure with few adoptable conformations while inactive mutants showed a more flexible macrocycle which is unfavorable for binding. This finding highlights the importance of macrocyclization in combination with rigidifying post-translational modifications to achieve high-potency binding.

摘要

大环化合物因其高亲和力、特异性和良好的药理学性质而成为有吸引力的药物候选物。在这项研究中,我们探讨了对天然产物大环化合物进行化学修饰对其活性、3D 几何形状和构象熵的影响。我们选择硫霉素作为模型系统,这是一种核糖体编码的天然产物家族中的硫肽,对革兰氏阳性菌具有很强的抗菌作用。由于硫霉素源自遗传编码的肽支架,因此定点突变允许快速生成类似物。为了了解硫霉素的结构-活性关系,我们生成了一个涵盖硫霉素大环环上每个位置的定点饱和突变文库。我们报告了八种比野生型硫霉素更有效的独特化合物的鉴定,其中最好的化合物的活性提高了 8 倍。对硫霉素大环结构的计算建模揭示了活性对低熵大环的惊人要求。活性突变体的占据集合显示出刚性结构,可采用的构象很少,而无活性的突变体显示出更灵活的大环,不利于结合。这一发现强调了大环化与刚性翻译后修饰相结合以实现高结合效力的重要性。

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