电荷操纵人胰岛素 B 链 C 端,揭示胰岛素纤维化的复杂机制

IF 2.8 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Mohammad Bagher Shahsavani , Masaru Hoshino , Ashutosh Kumar , Reza Yousefi
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引用次数: 0

摘要

胰岛素纤维化对糖尿病的发展和治疗构成了重大挑战。迄今为止,揭示其机制的工作仍未完成。为了揭示胰岛素纤维化背后错综复杂的过程,我们采用诱变技术在胰岛素 B 链的 C 端区域引入了额外的正电荷残基,该残基在胰岛素二聚化过程中发挥着重要作用。我们利用各种光谱方法、电子显微镜和分子动力学模拟进行了研究。通过这些方法,我们探索了在细菌宿主中表达并成功纯化后的工程 B 链的结构和纤维化行为。这种操作对胰岛素 B 链的寡聚行为有明显的影响。这些突变似乎延迟了二聚体状态向更大的寡聚体过渡的过程,从而导致了纤维化动力学的改变。我们的研究结果还表明,突变的胰岛素 B 链(Di-R、Di-K 和 Di-H)在启动纤溶过程中表现出抗性。这种阻力可归因于引入的正电荷产生的排斥力,它破坏了有利于成核的吸引力相互作用。值得注意的是,突变 B 链形成的低聚物和纤维较短且数量较少,这可归因于斥力引起的改变。我们设计的突变 B 链在应力诱导的纤维化方面表现出更强的稳定性,这表明它们在开发新的胰岛素类似物方面具有潜在的用途。这项研究强调了 C 端区域在胰岛素 B 链纤维化初始阶段的重要性,为了解其中的复杂机制及其潜在的药物应用提供了宝贵的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Charge manipulation of the human insulin B chain C-terminal to shed light on the complex mechanism of insulin fibrillation

Charge manipulation of the human insulin B chain C-terminal to shed light on the complex mechanism of insulin fibrillation

Charge manipulation of the human insulin B chain C-terminal to shed light on the complex mechanism of insulin fibrillation

Insulin fibrillation poses a significant challenge in the development and treatment of diabetes. Current efforts to unravel its mechanisms have thus far remained incomplete. To shed light on the intricate processes behind insulin fibrillation, we employed mutagenesis techniques to introduce additional positive charge residues into the C-terminal region of the insulin B chain which plays an important role in insulin dimerization. We employed our investigation with various spectroscopic methods, electron microscopy, and molecular dynamics simulations. These methods allowed us to explore the structure and fibrillation behavior of the engineered B chains following their expression in a bacterial host and successful purification. This manipulation had a pronounced impact on the oligomerization behavior of the insulin B chain. It appears that these mutations delay the formation of the dimeric state in the process of transitioning to larger oligomers, consequently, leading to an alteration in the kinetics of fibrillation. Our findings also indicated that the mutant insulin B chains (Di-R, Di-K, and Di-H) displayed resistance to the initiation of fibrillation. This resistance can be attributed to the repulsive forces generated by the introduced positive charges, which disrupt the attractive interactions favoring nucleation. Notably, the mutant B chains formed shorter and less abundant oligomers and fibrils, which can be ascribed to the alterations induced by repulsion. Our engineered mutant B chains exhibited enhanced stability against stress-induced fibrillation, hinting at their potential utility in the development of new insulin analogs. This study underscores the significance of the C-terminal region in the initial stages of insulin B chain fibrillation, providing valuable insights into the intricate mechanisms involved and their potential pharmaceutical applications.

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来源期刊
Biochimica et biophysica acta. General subjects
Biochimica et biophysica acta. General subjects 生物-生化与分子生物学
CiteScore
6.40
自引率
0.00%
发文量
139
审稿时长
30 days
期刊介绍: BBA General Subjects accepts for submission either original, hypothesis-driven studies or reviews covering subjects in biochemistry and biophysics that are considered to have general interest for a wide audience. Manuscripts with interdisciplinary approaches are especially encouraged.
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