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Derivation of Self-inhibitory Helical Peptides to Target Rho-kinase Dimerization in Cerebrovascular Malformation: Structural Bioinformatics Analysis and Peptide Binding Assay

机译:在脑血管畸形中自抑制性螺旋肽的目标Rho激酶二聚化的衍生:结构生物信息学分析和肽结合测定

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摘要

Rho-kinase dimerization is essential for its kinase activity and biological function; disruption of the dimerization has recently been established as a new and promising therapeutics strategy for cerebrovascular malformation (CM). Based on Rho-kinase dimer crystal structure we herein combined in silico analysis and in vitro assay to rationally derive self-inhibitory peptides from the dimerization interface. Three peptides namely Hlp1, Hlp2 and Hlp3 were successfully designed that have potential capability to rebind at the dimerization domain of Rho-kinase. Molecular dynamics (MD) simulations revealed that these peptides are helically structured when bound to Rho-kinase, but exhibit partially intrinsic disorder in unbound state. Binding free energy (BFE) analysis suggested that the peptides have a satisfactory energetic profile to interact with Rho-kinase. The computational findings were then substantiated by fluorescence anisotropy assays, conforming that the helical peptides can bind tightly to Rho-kinase with affinity K-D at micromolar level. These designed peptides are considered as lead molecular entities that can be further modified and optimized to obtain more potent peptidomimetics as self-competitors to disrupt Rho-kinase dimerization in CM.
机译:Rho激酶二聚化对其激酶活性和生物学功能至关重要。近来,二聚化的破坏已被确立为脑血管畸形(CM)的一种新的且有希望的治疗策略。基于Rho激酶二聚体晶体结构,我们在本文中结合计算机分析和体外测定以从二聚化界面合理地衍生出自抑制肽。成功设计了三种肽,即Hlp1,Hlp2和Hlp3,它们具有在Rho激酶二聚结构域重新结合的潜在能力。分子动力学(MD)模拟显示,这些肽与Rho激酶结合时呈螺旋结构,但在未结合状态下表现出部分固有的紊乱。结合自由能(BFE)分析表明,该肽具有令人满意的能谱,可与Rho激酶相互作用。然后,通过荧光各向异性测定证实了计算结果,证明螺旋肽可以在微摩尔水平以亲和力K-D紧密结合Rho激酶。这些设计的肽被认为是先导分子实体,可以进一步修饰和优化以获得更有效的拟肽作为自竞争者,以破坏CM中的Rho激酶二聚化。

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