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基于结构的自抑制肽的合理设计,以破坏神经病性疼痛中肌钙蛋白亚基 C 和 I 之间的分子间相互作用。

Structure-based rational design of self-inhibitory peptides to disrupt the intermolecular interaction between the troponin subunits C and I in neuropathic pain.

机构信息

Department of Pain Management, The Affiliated Hospital of Qingdao University, Qingdao 266003, China.

Department of Anesthesiology, The Affiliated Hospital of Qingdao University, Qingdao 266003, China.

出版信息

Bioorg Chem. 2017 Aug;73:10-15. doi: 10.1016/j.bioorg.2017.05.004. Epub 2017 May 3.

DOI:10.1016/j.bioorg.2017.05.004
PMID:28525735
Abstract

The troponin (Tn) is a ternary complex consisting of three subunits TnC, TnI and TnT; molecular disruption of the Tn complex has been recognized as an attractive strategy against neuropathic pain. Here, a self-inhibitory peptide is stripped from the switch region of TnI interaction interface with TnC, which is considered as a lead molecular entity and then used to generate potential peptide disruptors of TnC-TnI interaction based on a rational molecular design protocol. The region is a helical peptide segment capped by N- and C-terminal disorders. Molecular dynamics simulation and binding free energy analysis suggests that the switch peptide can interact with TnC in a structurally and energetically independent manner. Terminal truncation of the peptide results in a number of potent TnC binders with considerably simplified structure and moderately decreased activity relative to the native switch. We also employ fluorescence polarization assays to substantiate the computational findings; it is found that the rationally designed peptides exhibit moderate or high affinity to TnC with dissociation constants K at micromolar level.

摘要

肌钙蛋白(Tn)是一个由三个亚基 TnC、TnI 和 TnT 组成的三元复合物;Tn 复合物的分子破坏已被认为是治疗神经性疼痛的一种有吸引力的策略。在这里,从 TnI 与 TnC 相互作用界面的开关区域中去除一个自抑制肽,该肽被认为是一种先导分子实体,然后根据合理的分子设计方案,用于生成 TnC-TnI 相互作用的潜在肽破坏剂。该区域是一个由 N 端和 C 端无序区封闭的螺旋肽段。分子动力学模拟和结合自由能分析表明,开关肽可以以结构和能量上独立的方式与 TnC 相互作用。肽的末端截断导致大量的 TnC 结合物,与天然开关相比,其结构大大简化,活性适度降低。我们还采用荧光偏振测定法来证实计算结果;结果发现,经过合理设计的肽与 TnC 具有中等或高亲和力,解离常数 K 在微摩尔级。

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