解码 BCL9 三唑钉肽的动态变化

IF 3.3 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Vikram Gaikwad, Asha Rani Choudhury, Rajarshi Chakrabarti
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引用次数: 0

摘要

BCL9 是 Wnt 信号通路中的一个关键蛋白。它是β-catenin的转录共激活剂,这一通路的失调会导致肿瘤生长。抑制这种蛋白质间的相互作用被认为是一项治疗挑战。β-catenin和BCL9之间的相互作用是由BCL9的23个残基螺旋结构域和β-catenin的疏水沟促成的。为了阻止这种相互作用,可以设计一种模仿 BCL9 α-螺旋结构域的多肽。在设计这种肽的过程中,"缝合 "被认为是一种成功的策略,即利用化学分子将氨基酸的一侧缝合在一起。在各类交联剂中,三唑是通过点击反应合成的最快速有效的交联剂。然而,对维持钉肽二级结构背后的潜在相互作用的探索仍然较少。在目前的工作中,我们采用分子动力学模拟研究了实验合成的单三唑和双三唑钉合 BCL9 肽的构象行为。加入三唑钉书钉后,BCL9 的构象空间显著缩小。随着三唑交联剂之间的间隔增加,钉合肽的螺旋特性也随之增加。此外,我们还进行了带溶质温度的复制交换(REST2)模拟,以验证钉合肽的高温响应。REST2 的 PCA 和 t-SNE 显示,加入三唑主食后,不同簇的形成有所减少。我们的研究推断,这些三唑钉合的 BCL9 多肽将进一步发展成为有效的抑制剂,以靶向 β-catenin和BCL9之间的相互作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Decoding the dynamics of BCL9 triazole stapled peptide

Decoding the dynamics of BCL9 triazole stapled peptide

BCL9 is a key protein in Wnt signaling pathway. It acts as a transcriptional co-activator to β-catenin, and dysregulation in this pathway leads to tumor growth. Inhibiting such a protein-protein interaction is considered as a therapeutic challenge. The interaction between β-catenin and BCL9 is facilitated by a 23-residue helical domain from BCL9 and a hydrophobic groove of β-catenin. To prevent this interaction, a peptide that mimics the alpha-helical domain of BCL9 can be designed. Stapling is considered a successful strategy in the pursuit of designing such peptides in which amino acids side are stitched together using chemical moieties. Among the various types of cross-linkers, triazole is the most rapid and effective one synthesized via click reaction. However, the underlying interactions behind maintaining the secondary structure of stapled peptides remain less explored. In the current work, we employed the molecular dynamics simulation to study the conformational behavior of the experimentally synthesized single and double triazole stapled BCL9 peptide. Upon the addition of a triazole staple, there is a significant reduction in the conformational space of BCL9. The helical character of the stapled peptide increases with an increase in separation between the triazole cross-linkers. Also, we encompassed the Replica Exchange with Solute Tempering (REST2) simulation to validate the high-temperature response of the stapled peptide. From REST2, the PCA and t-SNE show the reduction in distinct cluster formation on the addition of triazole staple. Our study infers further development of these triazole-stapled BCL9 peptides into effective inhibitors to target the interaction between β-catenin and BCL9.

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来源期刊
Biophysical chemistry
Biophysical chemistry 生物-生化与分子生物学
CiteScore
6.10
自引率
10.50%
发文量
121
审稿时长
20 days
期刊介绍: Biophysical Chemistry publishes original work and reviews in the areas of chemistry and physics directly impacting biological phenomena. Quantitative analysis of the properties of biological macromolecules, biologically active molecules, macromolecular assemblies and cell components in terms of kinetics, thermodynamics, spatio-temporal organization, NMR and X-ray structural biology, as well as single-molecule detection represent a major focus of the journal. Theoretical and computational treatments of biomacromolecular systems, macromolecular interactions, regulatory control and systems biology are also of interest to the journal.
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