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结蛋白环化:对结构和动力学的影响。

Knottin cyclization: impact on structure and dynamics.

作者信息

Heitz Annie, Avrutina Olga, Le-Nguyen Dung, Diederichsen Ulf, Hernandez Jean-François, Gracy Jérôme, Kolmar Harald, Chiche Laurent

机构信息

CNRS, UMR5048, Université Montpellier 1 et 2, Centre de Biochimie Structurale, 34090 Montpellier, France.

出版信息

BMC Struct Biol. 2008 Dec 12;8:54. doi: 10.1186/1472-6807-8-54.

Abstract

BACKGROUND

Present in various species, the knottins (also referred to as inhibitor cystine knots) constitute a group of extremely stable miniproteins with a plethora of biological activities. Owing to their small size and their high stability, knottins are considered as excellent leads or scaffolds in drug design. Two knottin families contain macrocyclic compounds, namely the cyclotides and the squash inhibitors. The cyclotide family nearly exclusively contains head-to-tail cyclized members. On the other hand, the squash family predominantly contains linear members. Head-to-tail cyclization is intuitively expected to improve bioactivities by increasing stability and lowering flexibility as well as sensitivity to proteolytic attack.

RESULTS

In this paper, we report data on solution structure, thermal stability, and flexibility as inferred from NMR experiments and molecular dynamics simulations of a linear squash inhibitor EETI-II, a circular squash inhibitor MCoTI-II, and a linear analog lin-MCoTI. Strikingly, the head-to-tail linker in cyclic MCoTI-II is by far the most flexible region of all three compounds. Moreover, we show that cyclic and linear squash inhibitors do not display large differences in structure or flexibility in standard conditions, raising the question as to why few squash inhibitors have evolved into cyclic compounds. The simulations revealed however that the cyclization increases resistance to high temperatures by limiting structure unfolding.

CONCLUSION

In this work, we show that, in contrast to what could have been intuitively expected, cyclization of squash inhibitors does not provide clear stability or flexibility modification. Overall, our results suggest that, for squash inhibitors in standard conditions, the circularization impact might come from incorporation of an additional loop sequence, that can contribute to the miniprotein specificity and affinity, rather than from an increase in conformational rigidity or protein stability. Unfolding simulations showed however that cyclization is a stabilizing factor in strongly denaturing conditions. This information should be useful if one wants to use the squash inhibitor scaffold in drug design.

摘要

背景

结蛋白(也称为抑制剂胱氨酸结)存在于多种物种中,是一组具有多种生物活性的极其稳定的小蛋白。由于其体积小且稳定性高,结蛋白被认为是药物设计中优秀的先导物或骨架。两个结蛋白家族包含大环化合物,即环肽和南瓜抑制剂。环肽家族几乎只包含头对尾环化的成员。另一方面,南瓜家族主要包含线性成员。直观地预期头对尾环化会通过增加稳定性、降低灵活性以及对蛋白水解攻击的敏感性来提高生物活性。

结果

在本文中,我们报告了通过核磁共振实验和分子动力学模拟得出的线性南瓜抑制剂EETI-II、环状南瓜抑制剂MCoTI-II和线性类似物lin-MCoTI的溶液结构、热稳定性和灵活性的数据。令人惊讶的是,环状MCoTI-II中的头对尾连接子是这三种化合物中最灵活的区域。此外,我们表明,在标准条件下,环状和线性南瓜抑制剂在结构或灵活性上没有显示出很大差异,这就提出了一个问题,即为什么很少有南瓜抑制剂进化成环状化合物。然而,模拟结果表明,环化通过限制结构展开来提高对高温的抗性。

结论

在这项工作中,我们表明,与直观预期的相反,南瓜抑制剂的环化并没有提供明显的稳定性或灵活性修饰。总体而言,我们的结果表明,对于标准条件下的南瓜抑制剂,环化的影响可能来自于额外环序列的掺入,这可以有助于小蛋白的特异性和亲和力,而不是来自于构象刚性或蛋白质稳定性的增加。然而,展开模拟表明,在强变性条件下,环化是一个稳定因素。如果想在药物设计中使用南瓜抑制剂骨架,这些信息应该会很有用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a63a/2659701/d74159ca8e0d/1472-6807-8-54-1.jpg

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